Acessibilidade / Reportar erro

Taxonomic loss and functional reduction over time in the ichthyofauna of the Taquaruçu Reservoir, lower Paranapanema River, Southern Brazil

Abstract

We evaluated the fish composition and ecological attributes of the ichthyofauna collected in a limnological zone of the Taquaruçu Reservoir, lower Paranapanema River. Information about the fish community was updated when compared to the previous study (2006). Non-metric multidimensional scaling (NMDS) showed differences in species composition between periods and community weighted means (CWMs) exhibited changes in functional composition over time. Four functional indices were used in the principal coordinate analysis (PcoA) to measure changes in the functional space of species, whereas functional β-diversity inspected differences in the traits composition between the periods. 1,203 individuals were sampled of 43 species, being 16 non-native and 14 new records. Compared to 2006, 27 species were absent, most of them native to Loricariidae and Anostomidae, while Curimatidae and Pimelodidae decreased in abundance. Functional indexes showed a reduction in functional diversity, whereas new species records exhibited functional redundancy. It might have occurred a simplification of the fish community over time, excluding the migratory and specialists species such as the herbivores and detritivores. Accordingly, we concluded that the ichthyofauna of the Taquaruçu Reservoir might have been undergoing a process towards biotic homogenization.

Keywords:
Biological invasion; Damming; Homogenization; Long Term Changes; South America

Resumo

Avaliamos a composição de peixes e atributos ecológicos da ictiofauna coletada em uma zona limnológica do reservatório de Taquaruçu, baixo rio Paranapanema. As informações sobre a comunidade de peixes foram atualizadas quando comparadas ao estudo anterior (2006). O escalonamento multidimensional não métrico (NMDS) mostrou diferenças na composição de espécies entre os períodos, e as médias ponderadas da comunidade (CWMs) exibiram mudanças na composição funcional ao longo do tempo. Quatro índices funcionais foram utilizados na análise de coordenadas principais (PcoA) para medir as mudanças no espaço funcional das espécies, enquanto a β-diversidade funcional inspecionou diferenças na composição de traços entre os períodos. Foram amostrados 1,203 indivíduos de 43 espécies, sendo 16 não-nativas e 14 novos registros. Em comparação com 2006, 27 espécies estavam ausentes, a maioria nativa de Loricariidae e Anostomidae, enquanto Curimatidae e Pimelodidae diminuíram em abundância. Os índices funcionais mostraram redução na diversidade funcional, enquanto novos registros de espécies exibiram redundância funcional. Pode ter ocorrido uma simplificação da comunidade de peixes ao longo do tempo, excluindo as espécies migradoras e especialistas como os herbívoros e detritívoros. Dessa forma, concluímos que a ictiofauna do reservatório de Taquaruçu pode estar sofrendo um processo de homogeneização biótica.

Palavras-chave:
América do Sul; Barramento; Homogeneização; Invasão biológica; Mudanças de longo prazo

INTRODUCTION

Studies based on ichthyofauna surveys are relevant to unveil biodiversity patterns (Langeani et al., 2007Langeani F, Castro RMC, Oyakawa OT, Shibatta OA, Pavanelli CS, Casatti L. Diversidade da ictiofauna do alto rio Paraná: Composição atual e perspectivas futuras. Biota Neotrop. 2007; 7(3):181–97. https://doi.org/10.1590/S1676-06032007000300020
https://doi.org/10.1590/S1676-0603200700...
) and the effects of anthropogenic impacts on communities (Orsi, Britton, 2014Orsi ML, Britton JR. Long-term changes in the fish assemblage of a Neotropical hydroelectric reservoir. J Fish Biol. 2014; 84(6):1964–70. https://doi.org/10.1111/jfb.12392
https://doi.org/10.1111/jfb.12392...
; Loures, Pompeu, 2019Loures RC, Pompeu PS. Temporal changes in fish diversity in lotic and lentic environments along a reservoir cascade. Freshw Biol. 2019; 64(10):1806–20. https://doi.org/10.1111/fwb.13372
https://doi.org/10.1111/fwb.13372...
; Ganassin et al., 2021Ganassin MJM, Muñoz-Mas R, Oliveira FJM, Muniz CM, Santos NCL, García-Berthou E et al. Effects of reservoir cascades on diversity, distribution, and abundance of fish assemblages in three Neotropical basins. Sci Total Environ. 2021; 778:146246. https://doi.org/10.1016/j.scitotenv.2021.146246
https://doi.org/10.1016/j.scitotenv.2021...
). Nevertheless, studies based only on the taxonomic composition of communities may not cover all aspects of biodiversity (Mouchet et al., 2010Mouchet MA, Villéger S, Mason NWH, Mouillot D. Functional diversity measures: an overview of their redundancy and their ability to discriminate community assembly rules. Funct Ecol. 2010; 24(4):867–76. https://doi.org/10.1111/j.1365-2435.2010.01695.x
https://doi.org/10.1111/j.1365-2435.2010...
). Currently, the functional facet of communities has been used as a complementary measure of biodiversity (Villéger et al., 2017Villéger S, Brosse S, Mouchet M, Mouillot D, Vanni MJ. Functional ecology of fish: Current approaches and future challenges. Aquat Sci. 2017; 79(4):783–801. https://doi.org/10.1007/s00027-017-0546-z
https://doi.org/10.1007/s00027-017-0546-...
). The use of functional traits (i.e., any measurable biological characteristic that might influence the environmental fitness of species) has become key information to disentangle the aspects of functional ecology (Villéger et al., 2017Villéger S, Brosse S, Mouchet M, Mouillot D, Vanni MJ. Functional ecology of fish: Current approaches and future challenges. Aquat Sci. 2017; 79(4):783–801. https://doi.org/10.1007/s00027-017-0546-z
https://doi.org/10.1007/s00027-017-0546-...
; Pimiento et al., 2020Pimiento C, Leprieur F, Silvestro D, Lefcheck JS, Albouy C, Rasher DB et al Functional diversity of marine megafauna in the Anthropocene. Sci Adv. 2020; 6(16):eaay7650. https://doi.org/10.1126/sciadv.aay7650
https://doi.org/10.1126/sciadv.aay7650...
). Thus, the investigation of species organized in a multidimensional functional space can be a useful approach (Villéger et al., 2008Villéger S, Mason NWH, Mouillot D. New multidimensional functional diversity indices for a multifaceted framework in functional ecology. Ecology. 2008; 89(8):2290–301. https://doi.org/10.1890/07-1206.1
https://doi.org/10.1890/07-1206.1...
), resulting in a reliable source to evaluate biodiversity patterns and mechanisms (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
). This approach also provides a powerful tool when it comes to change and loss of biodiversity due to human activities (Toussaint et al., 2018Toussaint A, Charpin N, Beauchard O, Grenouillet G, Oberdorff T, Tedesco PA et al Non-native species led to marked shifts in functional diversity of the world freshwater fish faunas. Ecol Lett. 2018; 21(11):1649–59. https://doi.org/10.1111/ele.13141
https://doi.org/10.1111/ele.13141...
; McLean et al., 2019McLean M, Mouillot D, Lindegren M, Villéger S, Engelhard G, Murgier J et al Fish communities diverge in species but converge in traits over three decades of warming. Glob Change Biol. 2019; 25(11):3972–84. https://doi.org/10.1111/gcb.14785
https://doi.org/10.1111/gcb.14785...
), as well as the dynamics of native and non-native species (Olden et al., 2006Olden JD, Poff NL, Bestgen KR. Life-history strategies predict fish invasions and extirpations in the Colorado River basin. Ecol Monogr. 2006; 76(1):25–40. https://doi.org/10.1890/05-0330
https://doi.org/10.1890/05-0330...
; Pool et al., 2010Pool TK, Olden JD, Whittier JB, Paukert CP. Environmental drivers of fish functional diversity and composition in the Lower Colorado River basin. Can J Fish Aquat Sci. 2010; 67(11):1791–807. https://doi.org/10.1139/F10-095
https://doi.org/10.1139/F10-095...
). Hence, functional diversity indexes can be used to compare biodiversity patterns across spatial and temporal scales (Mouchet et al., 2010Mouchet MA, Villéger S, Mason NWH, Mouillot D. Functional diversity measures: an overview of their redundancy and their ability to discriminate community assembly rules. Funct Ecol. 2010; 24(4):867–76. https://doi.org/10.1111/j.1365-2435.2010.01695.x
https://doi.org/10.1111/j.1365-2435.2010...
; Pimiento et al., 2020Pimiento C, Leprieur F, Silvestro D, Lefcheck JS, Albouy C, Rasher DB et al Functional diversity of marine megafauna in the Anthropocene. Sci Adv. 2020; 6(16):eaay7650. https://doi.org/10.1126/sciadv.aay7650
https://doi.org/10.1126/sciadv.aay7650...
).

The upper Paraná River basin is known to be exploited by hydropower (Agostinho et al., 2007Agostinho AA, Gomes LC, Pelicice FM. Ecologia e manejo de recursos pesqueiros em reservatórios do Brasil. Maringá: EDUEM; 2007.), regardless of its importance for hydrological and ichthyofaunistic aspects (Langeani et al., 2007Langeani F, Castro RMC, Oyakawa OT, Shibatta OA, Pavanelli CS, Casatti L. Diversidade da ictiofauna do alto rio Paraná: Composição atual e perspectivas futuras. Biota Neotrop. 2007; 7(3):181–97. https://doi.org/10.1590/S1676-06032007000300020
https://doi.org/10.1590/S1676-0603200700...
). The biotic-abiotic interactions in reservoirs are classified in distinct temporal phases (Agostinho et al., 1999Agostinho AA, Miranda LE, Bini LM, Gomes LC, Thomaz SM, Suzuki HI. Patterns of colonization in neotropical reservoirs, and prognoses on aging. In: Tundisi JG, Straskraba M, editors. Theoretical reservoir ecology and its applications. Leiden: Backhuys Publishers; 1999. p.227–65. Available from: http://repositorio.uem.br:8080/jspui/handle/1/5322
http://repositorio.uem.br:8080/jspui/han...
), and these interactions may act as an environmental filter on the composition and structure of fish communities (Orsi, Britton, 2014Orsi ML, Britton JR. Long-term changes in the fish assemblage of a Neotropical hydroelectric reservoir. J Fish Biol. 2014; 84(6):1964–70. https://doi.org/10.1111/jfb.12392
https://doi.org/10.1111/jfb.12392...
; Smith et al., 2018Smith WS, Pereira CGF, Espindola ELG, Rocha O. Trophic structure of the fish community throughout the reservoirs and tributaries of the middle and lower Tietê River (São Paulo, Brazil). Acta Limnol Bras. 2018; 30:e308. https://doi.org/10.1590/s2179-975X0618
https://doi.org/10.1590/s2179-975X0618...
). Reservoirs might select fish individuals with biological characteristics suitable for such environments (Oliveira et al., 2018Oliveira AG, Baumgartner MT, Gomes LC, Dias RM, Agostinho AA. Long-term effects of flow regulation by dams simplify fish functional diversity. Freshw Biol. 2018; 63(3):293–305. https://doi.org/10.1111/fwb.13064
https://doi.org/10.1111/fwb.13064...
), where some species may be non-natives (Olden et al., 2006Olden JD, Poff NL, Bestgen KR. Life-history strategies predict fish invasions and extirpations in the Colorado River basin. Ecol Monogr. 2006; 76(1):25–40. https://doi.org/10.1890/05-0330
https://doi.org/10.1890/05-0330...
; Pool et al., 2010Pool TK, Olden JD, Whittier JB, Paukert CP. Environmental drivers of fish functional diversity and composition in the Lower Colorado River basin. Can J Fish Aquat Sci. 2010; 67(11):1791–807. https://doi.org/10.1139/F10-095
https://doi.org/10.1139/F10-095...
). Thus, a taxonomic and/or functional simplification of the ichthyofauna may occur, as non-adapted native species, such as dourado Salminus brasiliensis (Cuvier, 1816) and pintado Pseudoplatystoma corruscans (Spix & Agassiz, 1829) decline and/or disappear over time (Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
). Therefore, reservoirs should become faunistically similar due to a biotic homogenization process (Daga et al., 2020Daga VS, Olden JD, Gubiani EA, Piana PA, Padial AA, Vitule JRS. Scale-dependent patterns of fish faunal homogenization in Neotropical reservoirs. Hydrobiologia. 2020; 847(18):3759–72. https://doi.org/10.1007/s10750-019-04145-5
https://doi.org/10.1007/s10750-019-04145...
; Magalhães et al., 2020Magalhães ALB, Daga VS, Bezerra LAV, Vitule JRS, Jacobi CM, Silva LGM. All the colors of the world: Biotic homogenization-differentiation dynamics of freshwater fish communities on demand of the Brazilian aquarium trade. Hydrobiologia. 2020; 847(18):3897–915. https://doi.org/10.1007/s10750-020-04307-w
https://doi.org/10.1007/s10750-020-04307...
). In this sense, studies on the structure and composition of ichthyofauna in reservoirs across time are essential to understand the impact of human activity on fish communities (Loures, Pompeu, 2019Loures RC, Pompeu PS. Temporal changes in fish diversity in lotic and lentic environments along a reservoir cascade. Freshw Biol. 2019; 64(10):1806–20. https://doi.org/10.1111/fwb.13372
https://doi.org/10.1111/fwb.13372...
; Ganassin et al., 2021Ganassin MJM, Muñoz-Mas R, Oliveira FJM, Muniz CM, Santos NCL, García-Berthou E et al. Effects of reservoir cascades on diversity, distribution, and abundance of fish assemblages in three Neotropical basins. Sci Total Environ. 2021; 778:146246. https://doi.org/10.1016/j.scitotenv.2021.146246
https://doi.org/10.1016/j.scitotenv.2021...
).

The Paranapanema River, one of the major tributaries of the upper Paraná River (Agostinho et al., 2007Agostinho AA, Gomes LC, Pelicice FM. Ecologia e manejo de recursos pesqueiros em reservatórios do Brasil. Maringá: EDUEM; 2007.), is heavily fragmented by dams into a cascade of 11 reservoirs (Duke Energy, 2008Duke Energy. Peixes do rio Paranapanema. São Paulo: Horizonte Geográfico; 2008.), and it is as well highly impacted by invasive species (Garcia et al., 2018Garcia DAZ, Britton JR, Vidotto-Magnoni AP, Orsi ML. Introductions of non-native fishes into a heavily modified river: Rates, patterns and management issues in the Paranapanema River (upper Paraná ecoregion, Brazil). Biol Invasions. 2018; 20(5):1229–41. https://doi.org/10.1007/s10530-017-1623-x
https://doi.org/10.1007/s10530-017-1623-...
; Pelicice et al., 2018Pelicice FM, Azevedo-Santos VM, Esguícero ALH, Agostinho AA, Arcifa MS. Fish diversity in the cascade of reservoirs along the Paranapanema River, southeast Brazil. Neotrop Ichthyol. 2018; 16(2):e170150. https://doi.org/10.1590/1982-0224-20170150
https://doi.org/10.1590/1982-0224-201701...
; Jarduli et al., 2020Jarduli LR, Garcia DAZ, Vidotto-Magnoni AP, Casimiro ACR, Vianna NC, Almeida FS et al Fish fauna from the Paranapanema River basin, Brazil. Biota Neotrop. 2020; 20(1):e20180707. https://doi.org/10.1590/1676-0611-bn-2018-0707
https://doi.org/10.1590/1676-0611-bn-201...
). Biological invasions in this basin are mainly influenced by the flooding of a natural barrier by the Itaipu Reservoir (e.g., Sete Quedas Falls) (Júlio Junior et al., 2009Júlio Junior HF, Dei To’s C, Agostinho AA, Pavanelli CS. A massive invasion of fish species after eliminating a natural barrier in the upper Paraná River basin. Neotrop Ichthyol. 2009; 7(4):709–18. https://doi.org/10.1590/S1679-62252009000400021
https://doi.org/10.1590/S1679-6225200900...
). Also, stocking programs (Agostinho et al., 2007Agostinho AA, Gomes LC, Pelicice FM. Ecologia e manejo de recursos pesqueiros em reservatórios do Brasil. Maringá: EDUEM; 2007.), aquaculture escapes (Casimiro et al., 2018Casimiro ACR, Garcia DAZ, Vidotto-Magnoni AP, Britton JR, Agostinho AA, Almeida FS et al. Escapes of non-native fish from flooded aquaculture facilities: The case of Paranapanema River, southern Brazil. Zoologia. 2018; 35:e14638. https://doi.org/10.3897/zoologia.35.e14638
https://doi.org/10.3897/zoologia.35.e146...
), sporting angling and aquarium dumping (Langeani et al., 2007Langeani F, Castro RMC, Oyakawa OT, Shibatta OA, Pavanelli CS, Casatti L. Diversidade da ictiofauna do alto rio Paraná: Composição atual e perspectivas futuras. Biota Neotrop. 2007; 7(3):181–97. https://doi.org/10.1590/S1676-06032007000300020
https://doi.org/10.1590/S1676-0603200700...
; Jarduli et al., 2020Jarduli LR, Garcia DAZ, Vidotto-Magnoni AP, Casimiro ACR, Vianna NC, Almeida FS et al Fish fauna from the Paranapanema River basin, Brazil. Biota Neotrop. 2020; 20(1):e20180707. https://doi.org/10.1590/1676-0611-bn-2018-0707
https://doi.org/10.1590/1676-0611-bn-201...
) have all negatively affects this area (Garcia et al., 2018Garcia DAZ, Britton JR, Vidotto-Magnoni AP, Orsi ML. Introductions of non-native fishes into a heavily modified river: Rates, patterns and management issues in the Paranapanema River (upper Paraná ecoregion, Brazil). Biol Invasions. 2018; 20(5):1229–41. https://doi.org/10.1007/s10530-017-1623-x
https://doi.org/10.1007/s10530-017-1623-...
; Pelicice et al., 2018Pelicice FM, Azevedo-Santos VM, Esguícero ALH, Agostinho AA, Arcifa MS. Fish diversity in the cascade of reservoirs along the Paranapanema River, southeast Brazil. Neotrop Ichthyol. 2018; 16(2):e170150. https://doi.org/10.1590/1982-0224-20170150
https://doi.org/10.1590/1982-0224-201701...
). The Taquaruçu Reservoir is the penultimate one in a series of reservoirs in the lower Paranapanema River (Duke Energy, 2008Duke Energy. Peixes do rio Paranapanema. São Paulo: Horizonte Geográfico; 2008.). This reservoir belongs to the portion of the basin with the largest amount of non-native species, such as the South American silver croaker Plagioscion squamosissimus (Heckel, 1840) and the armored catfish Loricariichthys platymetopon Isbrücker & Nijssen, 1979 (Garcia et al., 2018Garcia DAZ, Britton JR, Vidotto-Magnoni AP, Orsi ML. Introductions of non-native fishes into a heavily modified river: Rates, patterns and management issues in the Paranapanema River (upper Paraná ecoregion, Brazil). Biol Invasions. 2018; 20(5):1229–41. https://doi.org/10.1007/s10530-017-1623-x
https://doi.org/10.1007/s10530-017-1623-...
), and it is known to be under additional anthropogenic activities like deforestation and discharge of human effluents (Vidotto-Magnoni et al., 2015Vidotto-Magnoni AP, Garcia DAZ, Costa ADA, Souza JG, Yabu MHS, Almeida FS et al Ichthyofauna of streams of the Lower Paranapanema River basin, state of Paraná, Brazil. Check List. 2015; 11(5):1756. https://doi.org/10.15560/11.5.1756
https://doi.org/10.15560/11.5.1756...
).

The ichthyofauna of the Taquaruçu Reservoir was widely investigated more than ten years ago (data ranging from 1993 to 2000) (Britto, Carvalho, 2006Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
). Based on knowledge about the dynamics in reservoirs and its implications to the ichthyofauna, we aimed here to update the previous information on the ichthyofauna (i.e., Britto, Carvalho, 2006Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
), and to elucidate changes overtime in the taxonomic and functional composition of the fish community. Our hypotheses were coined after the damming period, as follows: (1) The taxonomic and functional composition of the fish community changed between the distinct time-periods analyzed; (2) Generalist species that are functionally similar, mostly non-natives, are favored over specialist native species between the distinct time-periods.

MATERIAL AND METHODS

Study area. The Paranapanema River rises in the Atlantic Plateau of the “Serra de Paranapiacaba”, municipality of Capão Bonito, in the São Paulo State, Southeastern Brazil (Sampaio, 1944Sampaio T. Relatório sobre os estudos efetuados nos rios Itapetininga e Paranapanema. Rev Inst Geogr Geol. 1944; 2(3):30–81.). It runs through approximately 930 km until it flows into the upper Paraná River (Sampaio, 1944Sampaio T. Relatório sobre os estudos efetuados nos rios Itapetininga e Paranapanema. Rev Inst Geogr Geol. 1944; 2(3):30–81.). Extending from the Southeast of SP to the North of the Paraná State, about 330 km from its main channel define the borders between these Brazilian states (Maack, 1981Maack R. Geografia física do Estado do Paraná. 2nd ed. Rio de Janeiro: José Olympio; 1981.). The lower Paranapanema River is the portion of the basin that begins after Salto Grande Falls (currently flooded by the Salto Grande Reservoir), covering in extension (from upstream to downstream) the reservoirs of Salto Grande, Canoas II, Canoas I, Capivara, Taquaruçu (our study area), and Rosana (Duke Energy, 2008Duke Energy. Peixes do rio Paranapanema. São Paulo: Horizonte Geográfico; 2008.).

The hydroelectric power plant “Escola Politécnica” (Taquaruçu Dam) was built in 1989 and started to operate in 1991. The Taquaruçu Reservoir is characterized by a run-of-river regime, a length of 80 km, a surface area of ​​105.5 km2, and a maximum depth of 18 m (Britto, Carvalho, 2006Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
). This reservoir has few tributaries, and among them, the most important ones are located on the left bank, following: the Capim, Centenário, and Tenente rivers; and on the right bank: the Anhumas River. Nonetheless, a large part of those tributaries is undergoing several impacts due to anthropogenic activities, such as riparian forest deforestation, land use (agriculture and pasture), urbanization, and discharge of domestic and industrial effluents (Vidotto-Magnoni et al., 2015Vidotto-Magnoni AP, Garcia DAZ, Costa ADA, Souza JG, Yabu MHS, Almeida FS et al Ichthyofauna of streams of the Lower Paranapanema River basin, state of Paraná, Brazil. Check List. 2015; 11(5):1756. https://doi.org/10.15560/11.5.1756
https://doi.org/10.15560/11.5.1756...
).

Samplings sites. Samplings were performed from September 2018 to September 2019 at four sites in the reservoir transitional zone: site 1 (22°39’15.0”S 51°40’42.0”W); site 2 (22°39’37.0”S 51°37’53.8”W); site 3 (22°41’24.7”S 51°34’50.5”W); site 4 (22°41’10.8”S 51°32’20.9”W) (Fig. 1). The transitional zone was determined according to Ward et al., (1999)Ward JV, Tockner K, Schiemer F. Biodiversity of floodplain river ecosystems: Ecotones and connectivity. Regul Rivers Res Manage. 1999; 15(1–3):125–39. https://doi.org/10.1002/(SICI)1099-1646(199901/06)15:1/3%3C125::AID-RRR523%3E3.0.CO;2-E
https://doi.org/10.1002/(SICI)1099-1646(...
to survey species that inhabit lacustrine and fluvial zones. Following the approach used by Britto, Carvalho, (2006)Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
, our samplings were standardized and carried out quarterly, where fish were caught using gill-nets (30 to 120 mm between opposed knots), which were set for 24 h and checked every 12 h.

Fish were anesthetized and euthanized by overexposure to 1g/ml clove oil, fixed with 10% formalin, and further transferred to 70% alcohol. The fishes identification were carried out using specific literature (Ota et al., 2018Ota RR, Deprá GC, Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes: Revised, annotated and updated. Neotrop Ichthyol. 2018; 16(2):e170094. https://doi.org/10.1590/1982-0224-20170094
https://doi.org/10.1590/1982-0224-201700...
), and with the help of a specialist (Dr. Fernando C. Jerep, Museu de Zoologia da Universidade Estadual de Londrina, MZUEL). Further, a collection of voucher specimens was deposited at MZUEL. As for the previous data (Britto, Carvalho, 2006Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
), all species captured in the reservoir transitional zone and their abundances were selected. Subsequently, species were organized according to Fricke et al., (2021)Fricke R, Eschmeyer WN, Fong JD. Eschmeyer’s catalog of fishes: species by family/subfamily [Internet]. San Francisco: California; 2021. Available from: https://researcharchive.calacademy.org/research/ichthyology/catalog/SpeciesByFamily.asp
https://researcharchive.calacademy.org/r...
.

FIGURE 1 |
Location of the samplings points in the Taquaruçu Reservoir, lower Paranapanema River (transitional zone, 2020). Hydroelectric power plants: 1– Rosana; 2– Taquaruçu; 3– Capivara. MS = Mato Grosso do Sul State; PR = Paraná State; SP = São Paulo State.

Functional traits. Ten functional traits were selected to cover the largest spectrum possible of the fish community functional space. Hence, traits selected here were associated with habitat occupation, feeding habits, life-history, and reproductive strategy (Villéger et al., 2017Villéger S, Brosse S, Mouchet M, Mouillot D, Vanni MJ. Functional ecology of fish: Current approaches and future challenges. Aquat Sci. 2017; 79(4):783–801. https://doi.org/10.1007/s00027-017-0546-z
https://doi.org/10.1007/s00027-017-0546-...
).

For habitat occupation, we used the following range of adult maximum body size: small size (≤ 200 mm), medium size (≥ 200 – 400 ≤ mm), and large size (≥ 400 mm) (Ota et al., 2018Ota RR, Deprá GC, Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes: Revised, annotated and updated. Neotrop Ichthyol. 2018; 16(2):e170094. https://doi.org/10.1590/1982-0224-20170094
https://doi.org/10.1590/1982-0224-201700...
). Regarding the water column position, the following classification was utilized: benthonic, demersal, and pelagic (Graça, Pavanelli, 2007Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes. Maringá: EDUEM; 2007.). Classification in trophic guilds was used as feeding habit traits (i.e., detritivore, herbivore, insectivore, invertivore, omnivore, and piscivore) (Hahn et al., 2002Hahn NS, Fugi R, Peretti D, Russo MR, Loureiro-Crippa VE. Estrutura trófica da ictiofauna da planície de inundação do alto rio Paraná. In: Seeliger U, Cordazzo CV, Barbosa FAR, editors. Os sites e o programa brasileiro de pesquisas ecológicas de longa duração. Belo Horizonte: UFMG; 2002. p.123–26.; Vidotto-Magnoni, 2009Vidotto-Magnoni AP. Ecologia trófica das assembléias de peixes do reservatório de Chavantes (Médio rio Paranapanema, SP/PR). [PhD Thesis]. Botucatu: Universidade Estadual Paulista “Júlio de Mesquita Filho”; 2009. Available from: https://repositorio.unesp.br/handle/11449/106518
https://repositorio.unesp.br/handle/1144...
). As traits associated with life-history, our classification followed: periodic, equilibrium, opportunistic, or intermediate (Winemiller, 1995Winemiller KO. Aspects structurels et fonctionnels de la biodiversité des peuplements de poissons. Bull Fr PêchePiscic. 1995; 1995(337–338–339):23–45. https://doi.org/10.1051/kmae:1995007
https://doi.org/10.1051/kmae:1995007...
). Finally, for traits related to reproductive strategies, we utilized: migratory behavior (non-migratory, short-distance migratory, long-distance migratory); fertilization (internal or external); parental care (parental care or non-parental care) (Agostinho et al., 2003Agostinho AA, Gomes LC, Suzuki HI, Júlio Jr HF. Migratory fishes of the upper Paraná River basin, Brazil. In: Carolsfeld J, Harvey B, Ross C, Baer A, editors. Migratory fishes of South America: Biology, fisheries and conservation status. Ottawa: IRDC, The World Bank & World Fisheries Trust; 2003. p.19–98.); spawning (single or multiple); oocyte diameter (mm), and fecundity (number of oocytes matured/gonad mature) (Vazzoler, 1996Vazzoler AEAM. Biologia da reprodução de peixes teleósteos: Teoria e prática. Maringá: EDUEM; 1996.; Orsi, 2010Orsi ML. Estratégias Reprodutivas de Peixes: Estratégias reprodutivas de peixes da região média-baixa do rio Paranapanema, reservatório de Capivara. São Paulo: Editora Edgard Blucher Ltda.; 2010.; Froese, Pauly, 2020Froese R, Pauly D. FishBase [Internet]. Leiden: Netherlands; 2020. Available from: https://www.fishbase.org
https://www.fishbase.org...
).

Functional indexes. The distribution of species and their abundance in the functional space characterize functional diversity (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
). Here, we evaluated functional diversity based on four indexes: richness, evenness, divergence, and dispersion. Functional richness (FRic) was defined as the position occupied by species in the functional space (Villéger et al., 2008Villéger S, Mason NWH, Mouillot D. New multidimensional functional diversity indices for a multifaceted framework in functional ecology. Ecology. 2008; 89(8):2290–301. https://doi.org/10.1890/07-1206.1
https://doi.org/10.1890/07-1206.1...
), while functional evenness (FEve) was based on the uniformity of their abundance in this same space (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
). Functional divergence (FDiv) was calculated as the proportional abundance that was concentrated in species occupying the extremes of the functional space, in the same way as functional dispersion (FDis) was calculated by weighting the average distance of abundance for the extreme traits in this same space (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
).

Statistical analyses. Non-metric multidimensional scaling (NMDS) ordination was employed to elucidate the differences in species composition between the time-periods (i.e., 2006 and 2020). Based on a matrix of distances (e.g., Jaccard method), we verified the degree of similarity between the periods following the species composition data. Thus, in our functional space, we plotted our species composition based on the first two dimensions of the NMDS (final stress level = 0.181). NMDS was run using the function “metaMDS” in the Vegan package (version 2.4–1; Oksanen et al., 2019Oksanen J, Blanchet FG, Friendly M, Kindt R, Legendre P, McGlinn D et al Vegan: Community Ecology Package [Internet]. R Package version 2.5-6; 2019. Available from: https://cran.r-project.org/package=vegan
https://cran.r-project.org/package=vegan...
). Also, to test for significant differences between the groupings of the NMDS, we utilized permutational analysis of variance (PERMANOVA) (Anderson, 2008Anderson MJ. A new method for non-parametric multivariate analysis of variance. Austral Ecol. 2008; 26(1):32–46. https://doi.org/10.1111/j.1442-9993.2001.01070.pp.x
https://doi.org/10.1111/j.1442-9993.2001...
) using 999 permutations and the function “adonis” in the Vegan package (Oksanen et al., 2019Oksanen J, Blanchet FG, Friendly M, Kindt R, Legendre P, McGlinn D et al Vegan: Community Ecology Package [Internet]. R Package version 2.5-6; 2019. Available from: https://cran.r-project.org/package=vegan
https://cran.r-project.org/package=vegan...
).

We used the community‐weighted mean (CWM) to characterize the functional structure of fish community calculated by each time-period. The CWMs were calculated as the abundance-weighted mean of trait values in the community, which shows an advantage to face the absolute increase or decrease in trait composition (McLean et al., 2019McLean M, Mouillot D, Lindegren M, Villéger S, Engelhard G, Murgier J et al Fish communities diverge in species but converge in traits over three decades of warming. Glob Change Biol. 2019; 25(11):3972–84. https://doi.org/10.1111/gcb.14785
https://doi.org/10.1111/gcb.14785...
). As a result, the proportions of categorical and continuous trait values can be determined (McLean et al., 2019McLean M, Mouillot D, Lindegren M, Villéger S, Engelhard G, Murgier J et al Fish communities diverge in species but converge in traits over three decades of warming. Glob Change Biol. 2019; 25(11):3972–84. https://doi.org/10.1111/gcb.14785
https://doi.org/10.1111/gcb.14785...
). For species with no trait data available, we have completed the dataset using the closest phylogenetic equivalent at the genus level (Penone et al., 2014Penone C, Davidson AD, Shoemaker KT, Di Marco M, Rondinini C, Brooks TM et al Imputation of missing data in life-history trait datasets: Which approach performs the best? Methods Ecol Evol. 2014; 5(9):961–70. https://doi.org/10.1111/2041-210X.12232
https://doi.org/10.1111/2041-210X.12232...
). We assessed changes in the functional structure of the fish community by estimating and comparing the four indexes described above (i.e., richness, evenness, divergence, and dispersion) (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
). When plotted in a two-dimensional functional space, this approach enables the visualization of potential changes in different components of the community’s functional structure, where the axis represents the qualitative traits extracted from a principal coordinates analysis (PCoA) (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
). To verify significant differences in the functional diversity indices between the periods was used a one-tailed test (p < 0.05) proposed by Swenson, (2014)Swenson NG. Functional and phylogenetic ecology in R. New York: Springer; 2014. https://doi.org/10.1007/978-1-4614-9542-0
https://doi.org/10.1007/978-1-4614-9542-...
. We also used functional dissimilarity indexes to assess the changes in the functional β-diversity based on its functional turnover and functional nestedness-resultant components. Hence, in our study, functional β-diversity measured the functional trait composition differences between two distinct periods in time (i.e., 2006 and 2020 datasets) (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
; Villéger et al., 2013Villéger S, Grenouillet G, Brosse S. Decomposing functional β-diversity reveals that low functional β-diversity is driven by low functional turnover in European fish assemblages. Glob Ecol Biogeogr. 2013; 22(6):671–81. https://doi.org/10.1111/geb.12021
https://doi.org/10.1111/geb.12021...
).

The multidimensional functional spaces were computed based on a dissimilarity matrix using a principal coordinates analysis (PCoA, a generalization of the principal component analysis (PCA)), which produces a Euclidean space encompassing the two first PCoA axis minus one (Maire et al., 2015Maire E, Grenouillet G, Brosse S, Villéger S. How many dimensions are needed to accurately assess functional diversity? A pragmatic approach for assessing the quality of functional spaces. Glob Ecol Biogeogr. 2015; 24(6):728–40. https://doi.org/10.1111/geb.12299
https://doi.org/10.1111/geb.12299...
). This distance matrix was computed using Gower’s distance (Gower, 1971Gower JC. A general coefficient of similarity and some of its properties. Biometrics. 1971; 27(4):857–71. https://doi.org/10.2307/2528823
https://doi.org/10.2307/2528823...
), allowing thus quantitative and qualitative variables to be mixed while giving them equal weights. Also, we compared the mean squared deviation of the functional spaces. Following the approach devised by Maire et al., (2015)Maire E, Grenouillet G, Brosse S, Villéger S. How many dimensions are needed to accurately assess functional diversity? A pragmatic approach for assessing the quality of functional spaces. Glob Ecol Biogeogr. 2015; 24(6):728–40. https://doi.org/10.1111/geb.12299
https://doi.org/10.1111/geb.12299...
, a PCoA was run using this functional distance matrix, and the best functional dendrogram was obtained based on the procedure implemented by Mouchet et al., (2008)Mouchet M, Guilhaumon F, Villéger S, Mason NWH, Tomasini JA, Mouillot D. Towards a consensus for calculating dendrogram-based functional diversity indices. Oikos. 2008; 117(5):794–800. https://doi.org/10.1111/j.0030-1299.2008.16594.x
https://doi.org/10.1111/j.0030-1299.2008...
: using the multidimensional functional spaces from two to seven dimensions, and corresponding to the axis obtained after running the PCoA. Finally, we retained the species coordinates on the first three PCoA axis as the values of the traits (10 traits) describing our fish functional strategies (Villéger et al., 2011Villéger S, Novack-Gottshall PM, Mouillot D. The multidimensionality of the niche reveals functional diversity changes in benthic marine biotas across geological time. Ecol Lett. 2011; 14(6):561–68. https://doi.org/10.1111/j.1461-0248.2011.01618.x
https://doi.org/10.1111/j.1461-0248.2011...
; Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
). We performed analyses on the functional structure of community using a set of functions: “quality_funct_space”, “plot_funct_space”, “multidimFD”, “multidimFbetaD” (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
; Villéger et al., 2013Villéger S, Grenouillet G, Brosse S. Decomposing functional β-diversity reveals that low functional β-diversity is driven by low functional turnover in European fish assemblages. Glob Ecol Biogeogr. 2013; 22(6):671–81. https://doi.org/10.1111/geb.12021
https://doi.org/10.1111/geb.12021...
). All these functions are available from (http://villeger.sebastien.free.fr/Rscripts.html), and analyses were carried out using the R Programming software version 3.5.3 (R Development Core Team, 2020R Development Core Team. A language and environment for statistical computing [Internet]. Vienna: R Foundation for Statistical Computing; 2020. Available from: https://www.R-project.org
https://www.R-project.org...
).

RESULTS

We had 1,203 individuals captured belonging to five orders, 17 families, and 43 species. Out of the 43 species, 16 were non-natives to the upper Paraná River basin (Tab. 1). The families showing the greatest richness were: Pimelodidae (seven species), followed by Anostomidae, Cichlidae, and Serrasalmidae (five species each); whereas the most abundant families were Characidae (n = 338), Loricariidae (n = 195), and Sciaenidae (n = 136). Out of the fish composition data obtained by Britto, Carvalho, (2006)Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
, 27 species were not captured, being most of them native species of Loricariidae (e.g., nine species) and Anostomidae (e.g., six species). Also, 14 species in our results (i.e., mostly non-native species from different families) were new records to the reservoir transitional zone (Tab. 1). The families with a decrease in abundance were Loricariidae, Anostomidae, Curimatidae, and Pimelodidae; whereas Characidae, Cichlidae, and Parodontidae have displayed an increase in abundance (Tab. 1).

TABLE 1 |
Ichthyofauna and functional traits of the Taquaruçu Reservoir, lower Paranapanema River (the transitional zone between 2006 and 2020). * = non-native species to the upper Paraná River basin; # = species only recorded in 2006; + = species only recorded in 2020; n = abundance; SI = size (mm); WP = water column position; TG = trophic guild; LH = life-history; MB = migratory behavior; FE = fertilization; PC = parental care; SP = spawning; OD = oocyte diameter (mm); FC = fecundity (number of oocytes matured/gonad mature). SM = small; MD = medium; LA = large; BE = benthonic; DE = demersal; PE = pelagic; DET = detritivore; HER = herbivore; INS = insectivore; INV = invertivore; OMN = omnivore; PIS = piscivore; E = equilibrium; O = opportunistic; P = periodic; NM = non-migratory; SDM = short-distance migratory; LDM = long-distance migratory; EF = external fertilization; IF = internal fertilization; PC = parental care; NPC = non-parental care; MU = Multiple; SI = single. P&DII 1092 = field number, MZUEL voucher uncataloged.

NMDS evidenced a clustering of three groups (i.e., species occurring in both years, species captured exclusively in 2006, and species captured exclusively in 2020), indicating divergences in the fish community over time (Fig. 2). The PERMANOVA confirmed that the species composition in 2006 was significantly distinct from that in 2020 (R2= 0.22, P = 0.01). The CWMs demonstrated a change in six out of ten traits between the datasets of 2006 and 2020, following: size, water column position, trophic guild, migratory behavior, oocyte diameter, and fecundity (Tab. 2). All the functional indexes calculated showed a decreased between 2006 and 2020 datasets (Fig. 3). Changes in functional β-diversity between 2006 and 2020 datasets were observed as well, where the turnover component was almost the total value of total functional β-diversity (Fig. 4).

The results of one-tailed test showed a significant difference in each functional diversity index between the two time-periods. FRic (t = 80.253; P = 0.007), FDiv (t = 28.903; P = 0.02), FEve (t = 33.508; P = 0.01) and FDis (t = 31.17; P = 0.02) showed decreasing trends along of the two time-periods (2006 to 2020) indicating the loss of several functional traits and change in the abundance of species with restricted to specific groups functional traits.

TABLE 2 |
Functional composition by community-weighted means (CWMs), and changes in the ichthyofauna of the Taquaruçu Reservoir, lower Paranapanema River (the transitional zone between 2006 and 2020).

FIGURE 2 |
Non-metric multidimensional scaling (NMDS) of the ichthyofauna composition of the Taquaruçu Reservoir, lower Paranapanema River (the transitional zone between 2006 and 2020).

FIGURE 3 |
Two-dimensional functional space (PCoA) of the ichthyofauna of the Taquaruçu Reservoir, lower Paranapanema River (transitional zone between 2006 and 2020). A, B, C, D = 2006. E, F, G, H = 2020. FRic = Functional richness; FEve = Functional evenness; FDiv = Functional divergence; FDis = Functional dispersion.

FIGURE 4 |
Two-dimensional functional space (PCoA) of the functional β-diversity of the ichthyofauna of the Taquaruçu Reservoir, lower Paranapanema River (the transitional zone between 2006 and 2020).

DISCUSSION

We observed the absence of several native species that were registered in 2006, especially from the Loricariidae and Anostomidae families, and the reduction in the abundance of Curimatidae and Pimelodidae families. On the other hand, 14 species were new records for this current study. However, most of them are non-native to the lower Paranapanema River. Statistical analysis provided indications that there was a significant taxonomic discrepancy between the time-periods. In this sense, the CWMs of traits demonstrated that six out of ten traits considered here had changed over time, a fact corroborated by the decrease in all functional indexes between the time-periods. Finally, the β-functional diversity showed that the new species were functionally redundant.

Changes in the functional composition of the fish community might be related to rearrangements in the ichthyofauna between the time-periods of 2006 and 2020, which have acted predominantly in the loss of richness in Loricariidae and Anostomidae, and it has also decreased the abundance in Curimatidae and Pimelodidae. Most of the species pertaining to the Anostomidae and Pimelodidae in the upper Paraná River display medium to large body size (Graça, Pavanelli, 2007Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes. Maringá: EDUEM; 2007.; Ota et al., 2018Ota RR, Deprá GC, Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes: Revised, annotated and updated. Neotrop Ichthyol. 2018; 16(2):e170094. https://doi.org/10.1590/1982-0224-20170094
https://doi.org/10.1590/1982-0224-201700...
), and migratory behavior (Agostinho et al., 2003Agostinho AA, Gomes LC, Suzuki HI, Júlio Jr HF. Migratory fishes of the upper Paraná River basin, Brazil. In: Carolsfeld J, Harvey B, Ross C, Baer A, editors. Migratory fishes of South America: Biology, fisheries and conservation status. Ottawa: IRDC, The World Bank & World Fisheries Trust; 2003. p.19–98.). As shown in previous studies (e.g., Agostinho et al., 2007Agostinho AA, Gomes LC, Pelicice FM. Ecologia e manejo de recursos pesqueiros em reservatórios do Brasil. Maringá: EDUEM; 2007.; Hoeinghaus et al., 2009Hoeinghaus DJ, Agostinho AA, Gomes LC, Pelicice FM, Okada EK, Latini JD et al Effects of river impoundment on ecosystem services of large tropical rivers: Embodied energy and market value of artisanal fisheries. Conserv Biol. 2009; 23(5):1222–31. https://doi.org/10.1111/j.1523-1739.2009.01248.x
https://doi.org/10.1111/j.1523-1739.2009...
), large migratory fish in the upper Paraná River have been harmed, after the damming, by the blocking of movements and the disconnection of critical habitats to life cycles. Besides, the dam’s water level control neutralizes seasonal floods, which restrains the connection with the marginal lagoons utilized by early life stages to hide, develop, feed, and grow, thus leading to population depletion (Agostinho et al., 2004Agostinho AA, Gomes LC, Veríssimo S, Okada EK. Flood regime, dam regulation and fish in the upper Paraná River: Effects on assemblage attributes, reproduction and recruitment. Rev Fish Biol Fish. 2004; 14(1):11–19. https://doi.org/10.1007/s11160-004-3551-y
https://doi.org/10.1007/s11160-004-3551-...
; Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
). In this sense, several studies have pointed out a graduate occupation of the reservoirs by opportunistic species of smaller body size (Alvim, Peret, 2004Alvim MCC, Peret AC. Food resources sustaining the fish fauna in a section of the upper São Francisco River in Três Marias, MG, Brazil. Braz J Biol. 2004; 64(2):195–202. https://doi.org/10.1590/S1519-69842004000200003
https://doi.org/10.1590/S1519-6984200400...
; Lima et al., 2016Lima AC, Agostinho CS, Sayanda D, Pelicice FM, Soares AMVM, Monaghan KA. The rise and fall of fish diversity in a neotropical river after impoundment. Hydrobiologia. 2016; 763(1):207–21. https://doi.org/10.1007/s10750-015-2377-z
https://doi.org/10.1007/s10750-015-2377-...
; Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
).

Changes in body size and position in the water column due to anthropogenic impacts have been registered in marine ecosystems (e.g., continental shelves of the Atlantic Ocean), where smaller and pelagic fish with short life cycles are favored due to reply faster to environmental changes (McLean et al., 2019McLean M, Mouillot D, Lindegren M, Villéger S, Engelhard G, Murgier J et al Fish communities diverge in species but converge in traits over three decades of warming. Glob Change Biol. 2019; 25(11):3972–84. https://doi.org/10.1111/gcb.14785
https://doi.org/10.1111/gcb.14785...
). In the Paraná River, damming has caused changes in the composition of ichthyofauna, varying from pelagic to benthopelagic habitat usage (Oliveira et al., 2018Oliveira AG, Baumgartner MT, Gomes LC, Dias RM, Agostinho AA. Long-term effects of flow regulation by dams simplify fish functional diversity. Freshw Biol. 2018; 63(3):293–305. https://doi.org/10.1111/fwb.13064
https://doi.org/10.1111/fwb.13064...
), whereas we have found a different pattern (from demersal to pelagic usage of habitat). One could find an explanation for this change in the fish feeding habits, based on the fact that much of Anostomidae species feed on plant material and Pimelodidae species show predator/omnivore feeding, both favored by their sub-terminal mouths (Graça, Pavanelli, 2007Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes. Maringá: EDUEM; 2007.), and demersal behavior in the bottom (Vidotto-Magnoni, 2009Vidotto-Magnoni AP. Ecologia trófica das assembléias de peixes do reservatório de Chavantes (Médio rio Paranapanema, SP/PR). [PhD Thesis]. Botucatu: Universidade Estadual Paulista “Júlio de Mesquita Filho”; 2009. Available from: https://repositorio.unesp.br/handle/11449/106518
https://repositorio.unesp.br/handle/1144...
). Since the previous study was performed few years after the dam has closed (Britto, Carvalho, 2006Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
), species belonging to Anostomidae may have been favored by the trophic upsurge period in the early years of the reservoir, where the increase in transparency and carriage of organic matter from terrestrial floods facilitated primary production (Agostinho et al., 1999Agostinho AA, Miranda LE, Bini LM, Gomes LC, Thomaz SM, Suzuki HI. Patterns of colonization in neotropical reservoirs, and prognoses on aging. In: Tundisi JG, Straskraba M, editors. Theoretical reservoir ecology and its applications. Leiden: Backhuys Publishers; 1999. p.227–65. Available from: http://repositorio.uem.br:8080/jspui/handle/1/5322
http://repositorio.uem.br:8080/jspui/han...
). However, these individuals were probably overcome by smaller and pelagic fish (except in the case of the large pelagic invasive P. squamosissimus) due to changes in the availability of food as the reservoir aged (Cunha-Santino et al., 2013Cunha-Santino MB, Bitar AL, Bianchini Jr I. Chemical constraints on new man-made lakes. Environ Monit Assess. 2013; 185(12):10177–90. https://doi.org/10.1007/s10661-013-3322-0
https://doi.org/10.1007/s10661-013-3322-...
; Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
), as well as specialized feeding habits that precluded the use of different resources (Luz-Agostinho et al., 2006Luz-Agostinho KDG, Bini LM, Fugi R, Agostinho AA, Júlio Jr HF. Food spectrum and trophic structure of the ichthyofauna of Corumbá reservoir, Paraná river Basin, Brazil. Neotrop Ichthyol. 2006; 4(1):61–68. https://doi.org/10.1590/S1679-62252006000100005
https://doi.org/10.1590/S1679-6225200600...
). On the other hand, for the Pimelodidae individuals, this may have occurred mildly due to their wide feeding capacity (Vidotto-Magnoni, 2009Vidotto-Magnoni AP. Ecologia trófica das assembléias de peixes do reservatório de Chavantes (Médio rio Paranapanema, SP/PR). [PhD Thesis]. Botucatu: Universidade Estadual Paulista “Júlio de Mesquita Filho”; 2009. Available from: https://repositorio.unesp.br/handle/11449/106518
https://repositorio.unesp.br/handle/1144...
).

Back to the study done by Britto, Carvalho, (2006)Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
, the short-distance migratory behavior of fish was dominantly represented by Anostomidae and Pimelodidae. Species of both groups can carry out short-distance migration that might allow them to accomplish their life cycles in reservoirs (Agostinho et al., 2003Agostinho AA, Gomes LC, Suzuki HI, Júlio Jr HF. Migratory fishes of the upper Paraná River basin, Brazil. In: Carolsfeld J, Harvey B, Ross C, Baer A, editors. Migratory fishes of South America: Biology, fisheries and conservation status. Ottawa: IRDC, The World Bank & World Fisheries Trust; 2003. p.19–98.; Orsi, 2010Orsi ML. Estratégias Reprodutivas de Peixes: Estratégias reprodutivas de peixes da região média-baixa do rio Paranapanema, reservatório de Capivara. São Paulo: Editora Edgard Blucher Ltda.; 2010.). However, the short-distance migrator species have been replaced by non-migrators ones, which may be related to the damming (Agostinho et al., 2004Agostinho AA, Gomes LC, Veríssimo S, Okada EK. Flood regime, dam regulation and fish in the upper Paraná River: Effects on assemblage attributes, reproduction and recruitment. Rev Fish Biol Fish. 2004; 14(1):11–19. https://doi.org/10.1007/s11160-004-3551-y
https://doi.org/10.1007/s11160-004-3551-...
; Cunha-Santino et al., 2013Cunha-Santino MB, Bitar AL, Bianchini Jr I. Chemical constraints on new man-made lakes. Environ Monit Assess. 2013; 185(12):10177–90. https://doi.org/10.1007/s10661-013-3322-0
https://doi.org/10.1007/s10661-013-3322-...
). This scenario was also seen in the Colorado River, North America, where the decline by damming of native migrant species provided unoccupied niches to sedentary non-native species occupation (besides other environmental factors) (Olden et al., 2006Olden JD, Poff NL, Bestgen KR. Life-history strategies predict fish invasions and extirpations in the Colorado River basin. Ecol Monogr. 2006; 76(1):25–40. https://doi.org/10.1890/05-0330
https://doi.org/10.1890/05-0330...
; Pool et al., 2010Pool TK, Olden JD, Whittier JB, Paukert CP. Environmental drivers of fish functional diversity and composition in the Lower Colorado River basin. Can J Fish Aquat Sci. 2010; 67(11):1791–807. https://doi.org/10.1139/F10-095
https://doi.org/10.1139/F10-095...
). Our results partially corroborate with this trend since we could demonstrate an increase in native and non-native sedentary species belonging to the families: Characidae (e.g., native tetra Moenkhausia intermedia Eigenmann, 1908; and the non-native saicanga Roeboides descalvadensis Fowler, 1932), Parodontidae [e.g., native jackknife Apareiodon affinis (Steindachner, 1879)], and Cichlidae (e.g., native jacundá Crenicichla sp.; and the non-native peacock bass Cichla cf. kelberi Kullander & Ferreira, 2006).

The reduction of the oocyte diameter and the increased fecundity are believed to be guided by environmental forces selecting periodic life-history species (Winemiller, 1995Winemiller KO. Aspects structurels et fonctionnels de la biodiversité des peuplements de poissons. Bull Fr PêchePiscic. 1995; 1995(337–338–339):23–45. https://doi.org/10.1051/kmae:1995007
https://doi.org/10.1051/kmae:1995007...
). Therefore, our results denoted a decline of migratory species of this kind. In this way, changes in trait composition might be associated with the loss of Loricariidae species. A previous study in the Paraná River (Suzuki et al., 2000Suzuki HI, Agostinho AA, Winemiller KO. Relationship between oocyte morphology and reproductive strategy in loricariid catfishes of the Parana River, Brazil. J Fish Biol. 2000; 57(3):791–807. https://doi.org/10.1111/j.1095-8649.2000.tb00275.x
https://doi.org/10.1111/j.1095-8649.2000...
) have shown that species of Loricariidae have large oocytes (> 4.0 mm), while in the Paranapanema River, it was found that they had the largest oocyte diameters among the entire ichthyofauna (> 3.0 mm) (Orsi, 2010Orsi ML. Estratégias Reprodutivas de Peixes: Estratégias reprodutivas de peixes da região média-baixa do rio Paranapanema, reservatório de Capivara. São Paulo: Editora Edgard Blucher Ltda.; 2010.). For both studies, this group presented lower fecundity and possibly, an equilibrium trait concerning Life-History (Winemiller, 1995Winemiller KO. Aspects structurels et fonctionnels de la biodiversité des peuplements de poissons. Bull Fr PêchePiscic. 1995; 1995(337–338–339):23–45. https://doi.org/10.1051/kmae:1995007
https://doi.org/10.1051/kmae:1995007...
). However, in our study, we did not find changes in the composition of life-history traits. In this sense, it should be noted that there are intermediate characteristics between periodic and equilibrium extremes of life-history, where the opportunistic species fit, which produce oocytes varying in size (e.g., medium to small oocytes) and medium to large offsprings (Winemiller, 1995Winemiller KO. Aspects structurels et fonctionnels de la biodiversité des peuplements de poissons. Bull Fr PêchePiscic. 1995; 1995(337–338–339):23–45. https://doi.org/10.1051/kmae:1995007
https://doi.org/10.1051/kmae:1995007...
). Therefore, we could explain the changes in trait composition here without having changes in life-history because the decrease in oocyte diameter and lower fecundity (Loricariidae), together with the increase in little oocytes and larger offsprings (probably influenced by the non-native opportunistic species) were captured in abundance weighted means (CWMs) (McLean et al., 2019McLean M, Mouillot D, Lindegren M, Villéger S, Engelhard G, Murgier J et al Fish communities diverge in species but converge in traits over three decades of warming. Glob Change Biol. 2019; 25(11):3972–84. https://doi.org/10.1111/gcb.14785
https://doi.org/10.1111/gcb.14785...
).

During the early years of the damming, piscivores species are favored by the increase of preys (Lima et al., 2016Lima AC, Agostinho CS, Sayanda D, Pelicice FM, Soares AMVM, Monaghan KA. The rise and fall of fish diversity in a neotropical river after impoundment. Hydrobiologia. 2016; 763(1):207–21. https://doi.org/10.1007/s10750-015-2377-z
https://doi.org/10.1007/s10750-015-2377-...
), whereas the rise of the detritivores species occurs later due to high sedimentation during the process of the reservoir aging (Cunha-Santino et al., 2013Cunha-Santino MB, Bitar AL, Bianchini Jr I. Chemical constraints on new man-made lakes. Environ Monit Assess. 2013; 185(12):10177–90. https://doi.org/10.1007/s10661-013-3322-0
https://doi.org/10.1007/s10661-013-3322-...
). However, we have observed an opposite pattern. In the reservoirs of the Iguaçu (Delariva et al., 2013Delariva RL, Hahn NS, Kashiwaqui EAL. Diet and trophic structure of the fish fauna in a subtropical ecosystem: Impoundment effects. Neotrop Ichthyol. 2013; 11(4):891–904. https://doi.org/10.1590/S1679-62252013000400017
https://doi.org/10.1590/S1679-6225201300...
), and Tietê rivers (Smith et al., 2018Smith WS, Pereira CGF, Espindola ELG, Rocha O. Trophic structure of the fish community throughout the reservoirs and tributaries of the middle and lower Tietê River (São Paulo, Brazil). Acta Limnol Bras. 2018; 30:e308. https://doi.org/10.1590/s2179-975X0618
https://doi.org/10.1590/s2179-975X0618...
), detritivores species became more abundant when food resources were largely available. Hence, the higher representation of detritivores of Loricariidae and Curimatidae [e.g., the saguiru Steindachnerina insculpta (Fernández-Yépez, 1948)] in the study carried out by Britto, Carvalho, (2006)Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
http://www.ablimno.org.br/acta/pdf/acta_...
may be associated again with the early stage of the reservoir, which contributed to the concentration of organic matter in the bottom (Agostinho et al., 2007Agostinho AA, Gomes LC, Pelicice FM. Ecologia e manejo de recursos pesqueiros em reservatórios do Brasil. Maringá: EDUEM; 2007.). Thus, as found here to Anostomidae, the decreasing of richness in Loricariidae and abundance in Curimatidae, most likely, occurred due to the trophic dynamics in the reservoir (Cunha-Santino et al., 2013Cunha-Santino MB, Bitar AL, Bianchini Jr I. Chemical constraints on new man-made lakes. Environ Monit Assess. 2013; 185(12):10177–90. https://doi.org/10.1007/s10661-013-3322-0
https://doi.org/10.1007/s10661-013-3322-...
), and fish inefficiency in exploring other food resources since detritivores are also specialists (Luz-Agostinho et al., 2006Luz-Agostinho KDG, Bini LM, Fugi R, Agostinho AA, Júlio Jr HF. Food spectrum and trophic structure of the ichthyofauna of Corumbá reservoir, Paraná river Basin, Brazil. Neotrop Ichthyol. 2006; 4(1):61–68. https://doi.org/10.1590/S1679-62252006000100005
https://doi.org/10.1590/S1679-6225200600...
; Smith et al., 2018Smith WS, Pereira CGF, Espindola ELG, Rocha O. Trophic structure of the fish community throughout the reservoirs and tributaries of the middle and lower Tietê River (São Paulo, Brazil). Acta Limnol Bras. 2018; 30:e308. https://doi.org/10.1590/s2179-975X0618
https://doi.org/10.1590/s2179-975X0618...
). Nevertheless, the detritivores may have also been harmed over time by the low carriage of organic material in the reservoir sediment due to the deforestation in the surrounding areas (Vidotto-Magnoni et al., 2015Vidotto-Magnoni AP, Garcia DAZ, Costa ADA, Souza JG, Yabu MHS, Almeida FS et al Ichthyofauna of streams of the Lower Paranapanema River basin, state of Paraná, Brazil. Check List. 2015; 11(5):1756. https://doi.org/10.15560/11.5.1756
https://doi.org/10.15560/11.5.1756...
), or the dam’s water level control (Alvim, Peret, 2004Alvim MCC, Peret AC. Food resources sustaining the fish fauna in a section of the upper São Francisco River in Três Marias, MG, Brazil. Braz J Biol. 2004; 64(2):195–202. https://doi.org/10.1590/S1519-69842004000200003
https://doi.org/10.1590/S1519-6984200400...
). Besides, benthonic detritivore species (Loricariidae) may have been suffered from low concentrations of oxygen in the bottom of the reservoir (Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
), while the detritivores species, in general, may have been experienced the effects of the run-of-river regime over time, which might have had minor sedimentation due to short-time water retention and small flooded perimeter (Nogueira et al., 2012Nogueira MG, Perbiche-Neves G, Naliato DAO. Limnology of two contrasting hydroelectric reservoirs (storage and run-of-river) in Southeast Brazil. In: Samadi-Boroujeni H, editor. Hydropower: Practice and application. Rijeka: In Tech; 2012. p.167–84.). Likewise, the increase of piscivores species was most likely modulated by the progressive niche occupation left by rheophilic predators (e.g., Pimelodidae) (Olden et al., 2006Olden JD, Poff NL, Bestgen KR. Life-history strategies predict fish invasions and extirpations in the Colorado River basin. Ecol Monogr. 2006; 76(1):25–40. https://doi.org/10.1890/05-0330
https://doi.org/10.1890/05-0330...
; Pool et al., 2010Pool TK, Olden JD, Whittier JB, Paukert CP. Environmental drivers of fish functional diversity and composition in the Lower Colorado River basin. Can J Fish Aquat Sci. 2010; 67(11):1791–807. https://doi.org/10.1139/F10-095
https://doi.org/10.1139/F10-095...
). Thus, sedentary species such as Cichla cf. kelberi, which were introduced by human-mediated activity (e.g., sporting angling) (Langeani et al., 2007Langeani F, Castro RMC, Oyakawa OT, Shibatta OA, Pavanelli CS, Casatti L. Diversidade da ictiofauna do alto rio Paraná: Composição atual e perspectivas futuras. Biota Neotrop. 2007; 7(3):181–97. https://doi.org/10.1590/S1676-06032007000300020
https://doi.org/10.1590/S1676-0603200700...
; Jarduli et al., 2020Jarduli LR, Garcia DAZ, Vidotto-Magnoni AP, Casimiro ACR, Vianna NC, Almeida FS et al Fish fauna from the Paranapanema River basin, Brazil. Biota Neotrop. 2020; 20(1):e20180707. https://doi.org/10.1590/1676-0611-bn-2018-0707
https://doi.org/10.1590/1676-0611-bn-201...
), probably increased their occupancy.

The functional turnover showed that changes in trait composition were mostly driven by non-native species, a pattern that has been observed in distinct reservoirs of the upper Paraná River (e.g., Orsi, Britton, 2014Orsi ML, Britton JR. Long-term changes in the fish assemblage of a Neotropical hydroelectric reservoir. J Fish Biol. 2014; 84(6):1964–70. https://doi.org/10.1111/jfb.12392
https://doi.org/10.1111/jfb.12392...
; Loures, Pompeu, 2019Loures RC, Pompeu PS. Temporal changes in fish diversity in lotic and lentic environments along a reservoir cascade. Freshw Biol. 2019; 64(10):1806–20. https://doi.org/10.1111/fwb.13372
https://doi.org/10.1111/fwb.13372...
; Daga et al., 2020Daga VS, Olden JD, Gubiani EA, Piana PA, Padial AA, Vitule JRS. Scale-dependent patterns of fish faunal homogenization in Neotropical reservoirs. Hydrobiologia. 2020; 847(18):3759–72. https://doi.org/10.1007/s10750-019-04145-5
https://doi.org/10.1007/s10750-019-04145...
), and others Brazilian watersheds (Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
; Magalhães et al., 2020Magalhães ALB, Daga VS, Bezerra LAV, Vitule JRS, Jacobi CM, Silva LGM. All the colors of the world: Biotic homogenization-differentiation dynamics of freshwater fish communities on demand of the Brazilian aquarium trade. Hydrobiologia. 2020; 847(18):3897–915. https://doi.org/10.1007/s10750-020-04307-w
https://doi.org/10.1007/s10750-020-04307...
; Ganassin et al., 2021Ganassin MJM, Muñoz-Mas R, Oliveira FJM, Muniz CM, Santos NCL, García-Berthou E et al. Effects of reservoir cascades on diversity, distribution, and abundance of fish assemblages in three Neotropical basins. Sci Total Environ. 2021; 778:146246. https://doi.org/10.1016/j.scitotenv.2021.146246
https://doi.org/10.1016/j.scitotenv.2021...
). Previously, a global freshwater review found that, in general, non-native species increase the functional richness of fish communities, in some cases beyond 100% (Toussaint et al., 2018Toussaint A, Charpin N, Beauchard O, Grenouillet G, Oberdorff T, Tedesco PA et al Non-native species led to marked shifts in functional diversity of the world freshwater fish faunas. Ecol Lett. 2018; 21(11):1649–59. https://doi.org/10.1111/ele.13141
https://doi.org/10.1111/ele.13141...
). However, the functional turnover did not increase or re-establish ecological functions since there was a decrease in all functional indexes analyzed. Consequently, taxonomic turnover was mediated by trait-environment relationships, where species presented functional redundancy (Villéger et al., 2010Villéger S, Miranda JR, Hernández DF, Mouillot D. Contrasting changes in taxonomic vs. functional diversity of tropical fish communities after habitat degradation. Ecol Appl. 2010; 20(6):1512–22. https://doi.org/10.1890/09-1310.1
https://doi.org/10.1890/09-1310.1...
; Pimiento et al., 2020Pimiento C, Leprieur F, Silvestro D, Lefcheck JS, Albouy C, Rasher DB et al Functional diversity of marine megafauna in the Anthropocene. Sci Adv. 2020; 6(16):eaay7650. https://doi.org/10.1126/sciadv.aay7650
https://doi.org/10.1126/sciadv.aay7650...
). The FRic and FEve indexes decreased over time, meaning that the functional space has been reduced (Villéger et al., 2008Villéger S, Mason NWH, Mouillot D. New multidimensional functional diversity indices for a multifaceted framework in functional ecology. Ecology. 2008; 89(8):2290–301. https://doi.org/10.1890/07-1206.1
https://doi.org/10.1890/07-1206.1...
; Mouchet et al., 2010Mouchet MA, Villéger S, Mason NWH, Mouillot D. Functional diversity measures: an overview of their redundancy and their ability to discriminate community assembly rules. Funct Ecol. 2010; 24(4):867–76. https://doi.org/10.1111/j.1365-2435.2010.01695.x
https://doi.org/10.1111/j.1365-2435.2010...
), and the uniformity of traits was modified (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
). This finding was supported by the decrease in FDiv index over time, which have indicated that dominant species became functionally closer while the extremes decreased (Mouillot et al., 2013Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
https://doi.org/10.1016/j.tree.2012.10.0...
), meaning that species having extreme traits (e.g., largest oocyte diameters) in the functional space became less represented. Hence, the FDis index decrease over time demonstrated that species had been found closer to the center of functional space, where similar characteristics should remain (Villéger et al., 2008Villéger S, Mason NWH, Mouillot D. New multidimensional functional diversity indices for a multifaceted framework in functional ecology. Ecology. 2008; 89(8):2290–301. https://doi.org/10.1890/07-1206.1
https://doi.org/10.1890/07-1206.1...
). This functional scenario might be justified by the type of environment studied since large watersheds that historically had richer fauna with many ecological functions should become less susceptible to gain traits when non-natives species become established (Toussaint et al., 2018Toussaint A, Charpin N, Beauchard O, Grenouillet G, Oberdorff T, Tedesco PA et al Non-native species led to marked shifts in functional diversity of the world freshwater fish faunas. Ecol Lett. 2018; 21(11):1649–59. https://doi.org/10.1111/ele.13141
https://doi.org/10.1111/ele.13141...
).

The decrease in the FRic index, even with the introduction of non-native species, was verified in previous studies such as in the estuarine fish community in Mexico (Villéger et al., 2010Villéger S, Miranda JR, Hernández DF, Mouillot D. Contrasting changes in taxonomic vs. functional diversity of tropical fish communities after habitat degradation. Ecol Appl. 2010; 20(6):1512–22. https://doi.org/10.1890/09-1310.1
https://doi.org/10.1890/09-1310.1...
) and in the Paraná River (Oliveira et al., 2018Oliveira AG, Baumgartner MT, Gomes LC, Dias RM, Agostinho AA. Long-term effects of flow regulation by dams simplify fish functional diversity. Freshw Biol. 2018; 63(3):293–305. https://doi.org/10.1111/fwb.13064
https://doi.org/10.1111/fwb.13064...
), once the species were functionally redundant. Additionally, a decline of specialized species was observed, that is, species with extreme traits such as herbivory (Villéger et al., 2010Villéger S, Miranda JR, Hernández DF, Mouillot D. Contrasting changes in taxonomic vs. functional diversity of tropical fish communities after habitat degradation. Ecol Appl. 2010; 20(6):1512–22. https://doi.org/10.1890/09-1310.1
https://doi.org/10.1890/09-1310.1...
), and migratory behavior (Oliveira et al., 2018Oliveira AG, Baumgartner MT, Gomes LC, Dias RM, Agostinho AA. Long-term effects of flow regulation by dams simplify fish functional diversity. Freshw Biol. 2018; 63(3):293–305. https://doi.org/10.1111/fwb.13064
https://doi.org/10.1111/fwb.13064...
) have diminished. Thus, the taxonomic and trait composition of fishes under environmental impacts might substantially change across time, yet the fish communities seem to converge to the same characteristics, showing a functional simplification effect that should drive biotic homogenization (McLean et al., 2019McLean M, Mouillot D, Lindegren M, Villéger S, Engelhard G, Murgier J et al Fish communities diverge in species but converge in traits over three decades of warming. Glob Change Biol. 2019; 25(11):3972–84. https://doi.org/10.1111/gcb.14785
https://doi.org/10.1111/gcb.14785...
; Magalhães et al., 2020Magalhães ALB, Daga VS, Bezerra LAV, Vitule JRS, Jacobi CM, Silva LGM. All the colors of the world: Biotic homogenization-differentiation dynamics of freshwater fish communities on demand of the Brazilian aquarium trade. Hydrobiologia. 2020; 847(18):3897–915. https://doi.org/10.1007/s10750-020-04307-w
https://doi.org/10.1007/s10750-020-04307...
). Thus, our results here might enhance and show that the loss of a significant portion of the taxonomic and functional composition in the Taquaruçu Reservoir should probably drive the fish community towards biotic homogenization, an environmental panorama that is most likely subjected to the damming (Loures, Pompeu, 2019Loures RC, Pompeu PS. Temporal changes in fish diversity in lotic and lentic environments along a reservoir cascade. Freshw Biol. 2019; 64(10):1806–20. https://doi.org/10.1111/fwb.13372
https://doi.org/10.1111/fwb.13372...
; Daga et al., 2020Daga VS, Olden JD, Gubiani EA, Piana PA, Padial AA, Vitule JRS. Scale-dependent patterns of fish faunal homogenization in Neotropical reservoirs. Hydrobiologia. 2020; 847(18):3759–72. https://doi.org/10.1007/s10750-019-04145-5
https://doi.org/10.1007/s10750-019-04145...
; Ganassin et al., 2021Ganassin MJM, Muñoz-Mas R, Oliveira FJM, Muniz CM, Santos NCL, García-Berthou E et al. Effects of reservoir cascades on diversity, distribution, and abundance of fish assemblages in three Neotropical basins. Sci Total Environ. 2021; 778:146246. https://doi.org/10.1016/j.scitotenv.2021.146246
https://doi.org/10.1016/j.scitotenv.2021...
), and biological invasions (Magalhães et al., 2020Magalhães ALB, Daga VS, Bezerra LAV, Vitule JRS, Jacobi CM, Silva LGM. All the colors of the world: Biotic homogenization-differentiation dynamics of freshwater fish communities on demand of the Brazilian aquarium trade. Hydrobiologia. 2020; 847(18):3897–915. https://doi.org/10.1007/s10750-020-04307-w
https://doi.org/10.1007/s10750-020-04307...
).

The implications of the environmental scenario found here is quite worrying since fish participate in the nutrient cycle, are considered ecosystem engineers, and control food chains (Villéger et al., 2017Villéger S, Brosse S, Mouchet M, Mouillot D, Vanni MJ. Functional ecology of fish: Current approaches and future challenges. Aquat Sci. 2017; 79(4):783–801. https://doi.org/10.1007/s00027-017-0546-z
https://doi.org/10.1007/s00027-017-0546-...
; Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
). Particularly, the Anostomidae, Curimatidae, and Loricariidae families play an important role in food chains since they promote the flow of nutrients and matter from lower to upper food chain levels (Alvim, Peret, 2004Alvim MCC, Peret AC. Food resources sustaining the fish fauna in a section of the upper São Francisco River in Três Marias, MG, Brazil. Braz J Biol. 2004; 64(2):195–202. https://doi.org/10.1590/S1519-69842004000200003
https://doi.org/10.1590/S1519-6984200400...
; Luz-Agostinho et al., 2006Luz-Agostinho KDG, Bini LM, Fugi R, Agostinho AA, Júlio Jr HF. Food spectrum and trophic structure of the ichthyofauna of Corumbá reservoir, Paraná river Basin, Brazil. Neotrop Ichthyol. 2006; 4(1):61–68. https://doi.org/10.1590/S1679-62252006000100005
https://doi.org/10.1590/S1679-6225200600...
). Thus, herbivores and detritivores species are responsible for mediating most of the flow of matter and energy in large watersheds from South America (Bowen, 1984Bowen SH. Detritivory in Neotropical fish communities. In: Zaret TM, editor. Evolutionary ecology of Neotropical freshwater fishes. Dordrecht: Springer; 1984. p.59–66. https://doi.org/10.1007/978-94-015-7682-6_4
https://doi.org/10.1007/978-94-015-7682-...
; Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
). On the other hand, predators as Pimelodidae species have a relevant position in food chains by promoting the moderation of food chain levels below (Agostinho et al., 2007Agostinho AA, Gomes LC, Pelicice FM. Ecologia e manejo de recursos pesqueiros em reservatórios do Brasil. Maringá: EDUEM; 2007.). In addition, fish are known to perform several ecosystem services (Villéger et al., 2017Villéger S, Brosse S, Mouchet M, Mouillot D, Vanni MJ. Functional ecology of fish: Current approaches and future challenges. Aquat Sci. 2017; 79(4):783–801. https://doi.org/10.1007/s00027-017-0546-z
https://doi.org/10.1007/s00027-017-0546-...
; Arantes et al., 2019Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
https://doi.org/10.1016/j.cosust.2019.04...
), as the importance of families such as Anostomidae, Curimatidae, and Pimelodidae in fisheries resources (Hoeinghaus et al., 2009Hoeinghaus DJ, Agostinho AA, Gomes LC, Pelicice FM, Okada EK, Latini JD et al Effects of river impoundment on ecosystem services of large tropical rivers: Embodied energy and market value of artisanal fisheries. Conserv Biol. 2009; 23(5):1222–31. https://doi.org/10.1111/j.1523-1739.2009.01248.x
https://doi.org/10.1111/j.1523-1739.2009...
), and Loricariidae in fishkeeping (Graça, Pavanelli, 2007Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes. Maringá: EDUEM; 2007.).

In conclusion, we identified a substantial loss or decreased over time in fish species (i.e., 2006 to 2020), that have reduced their functional space in the Taquaruçu Reservoir. This scenario might compromise the ecological relationships and ecosystem services in this reservoir. Our results emphasized that reservoirs play an important “filtering” role in structuring fish communities, which should result in a selection of suitable traits driving assemblages to a simplification of characteristics (i.e., traits) and, most likely, to biotic homogenization influenced by non-native species. Here, our results reinforced the impacts of damming in fish communities, especially on migratory and specialist species. Hence, we showed that after thirty years have passed the damming, we could find relevant changes in the fish communities, demonstrating that there is a pressing need for continuous monitoring of the reservoirs. We encourage the practice of this approach for successful biological and ecological assessments and management of Brazilian freshwater ecosystems, as well as increasing knowledge on the dynamics in reservoirs, recognizing thus local and regional environmental issues.

ACKNOWLEDGEMENTS

This study was funded by Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES), Brazil – finance code 001 to first and second authors. The third and fifth authors would like to thank the CTG Brasil for support in their postdoctoral research at the Universidade Estadual de Londrina (UEL), and the fourth author would also like to thank CTG Brasil for granting financial assistance for this work. Also, we would like to thank Prof. Dr. Fernando C. Jerep (MZUEL) for identifying the species and Aparecido de Souza and Edson S. da Silva for helping with the fieldwork. We also thank the anonymous reviewers and Associate Editor for their valuable comments.

REFERENCES

  • Agostinho AA, Miranda LE, Bini LM, Gomes LC, Thomaz SM, Suzuki HI. Patterns of colonization in neotropical reservoirs, and prognoses on aging. In: Tundisi JG, Straskraba M, editors. Theoretical reservoir ecology and its applications. Leiden: Backhuys Publishers; 1999. p.227–65. Available from: http://repositorio.uem.br:8080/jspui/handle/1/5322
    » http://repositorio.uem.br:8080/jspui/handle/1/5322
  • Agostinho AA, Gomes LC, Suzuki HI, Júlio Jr HF. Migratory fishes of the upper Paraná River basin, Brazil. In: Carolsfeld J, Harvey B, Ross C, Baer A, editors. Migratory fishes of South America: Biology, fisheries and conservation status. Ottawa: IRDC, The World Bank & World Fisheries Trust; 2003. p.19–98.
  • Agostinho AA, Gomes LC, Veríssimo S, Okada EK. Flood regime, dam regulation and fish in the upper Paraná River: Effects on assemblage attributes, reproduction and recruitment. Rev Fish Biol Fish. 2004; 14(1):11–19. https://doi.org/10.1007/s11160-004-3551-y
    » https://doi.org/10.1007/s11160-004-3551-y
  • Agostinho AA, Gomes LC, Pelicice FM. Ecologia e manejo de recursos pesqueiros em reservatórios do Brasil. Maringá: EDUEM; 2007.
  • Alvim MCC, Peret AC. Food resources sustaining the fish fauna in a section of the upper São Francisco River in Três Marias, MG, Brazil. Braz J Biol. 2004; 64(2):195–202. https://doi.org/10.1590/S1519-69842004000200003
    » https://doi.org/10.1590/S1519-69842004000200003
  • Anderson MJ. A new method for non-parametric multivariate analysis of variance. Austral Ecol. 2008; 26(1):32–46. https://doi.org/10.1111/j.1442-9993.2001.01070.pp.x
    » https://doi.org/10.1111/j.1442-9993.2001.01070.pp.x
  • Arantes CC, Fitzgerald DB, Hoeinghaus DJ, Winemiller KO. Impacts of hydroelectric dams on fishes and fisheries in tropical rivers through the lens of functional traits. Curr Opin Environ Sustain. 2019; 37:28–40. https://doi.org/10.1016/j.cosust.2019.04.009
    » https://doi.org/10.1016/j.cosust.2019.04.009
  • Bowen SH. Detritivory in Neotropical fish communities. In: Zaret TM, editor. Evolutionary ecology of Neotropical freshwater fishes. Dordrecht: Springer; 1984. p.59–66. https://doi.org/10.1007/978-94-015-7682-6_4
    » https://doi.org/10.1007/978-94-015-7682-6_4
  • Britto SGC, Carvalho ED. Ecological attributes of fish fauna in the Taquaruçu Reservoir, Paranapanema River (Upper Paraná, Brazil): composition and spatial distribution. Acta Limnol Bras. 2006; 18(4):377–88. Available from: http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
    » http://www.ablimno.org.br/acta/pdf/acta_limnologica_contents1804E_files/18(4)_04.pdf
  • Casimiro ACR, Garcia DAZ, Vidotto-Magnoni AP, Britton JR, Agostinho AA, Almeida FS et al Escapes of non-native fish from flooded aquaculture facilities: The case of Paranapanema River, southern Brazil. Zoologia. 2018; 35:e14638. https://doi.org/10.3897/zoologia.35.e14638
    » https://doi.org/10.3897/zoologia.35.e14638
  • Cunha-Santino MB, Bitar AL, Bianchini Jr I. Chemical constraints on new man-made lakes. Environ Monit Assess. 2013; 185(12):10177–90. https://doi.org/10.1007/s10661-013-3322-0
    » https://doi.org/10.1007/s10661-013-3322-0
  • Daga VS, Olden JD, Gubiani EA, Piana PA, Padial AA, Vitule JRS. Scale-dependent patterns of fish faunal homogenization in Neotropical reservoirs. Hydrobiologia. 2020; 847(18):3759–72. https://doi.org/10.1007/s10750-019-04145-5
    » https://doi.org/10.1007/s10750-019-04145-5
  • Delariva RL, Hahn NS, Kashiwaqui EAL. Diet and trophic structure of the fish fauna in a subtropical ecosystem: Impoundment effects. Neotrop Ichthyol. 2013; 11(4):891–904. https://doi.org/10.1590/S1679-62252013000400017
    » https://doi.org/10.1590/S1679-62252013000400017
  • Duke Energy. Peixes do rio Paranapanema. São Paulo: Horizonte Geográfico; 2008.
  • Fricke R, Eschmeyer WN, Fong JD. Eschmeyer’s catalog of fishes: species by family/subfamily [Internet]. San Francisco: California; 2021. Available from: https://researcharchive.calacademy.org/research/ichthyology/catalog/SpeciesByFamily.asp
    » https://researcharchive.calacademy.org/research/ichthyology/catalog/SpeciesByFamily.asp
  • Froese R, Pauly D. FishBase [Internet]. Leiden: Netherlands; 2020. Available from: https://www.fishbase.org
    » https://www.fishbase.org
  • Ganassin MJM, Muñoz-Mas R, Oliveira FJM, Muniz CM, Santos NCL, García-Berthou E et al Effects of reservoir cascades on diversity, distribution, and abundance of fish assemblages in three Neotropical basins. Sci Total Environ. 2021; 778:146246. https://doi.org/10.1016/j.scitotenv.2021.146246
    » https://doi.org/10.1016/j.scitotenv.2021.146246
  • Garcia DAZ, Britton JR, Vidotto-Magnoni AP, Orsi ML. Introductions of non-native fishes into a heavily modified river: Rates, patterns and management issues in the Paranapanema River (upper Paraná ecoregion, Brazil). Biol Invasions. 2018; 20(5):1229–41. https://doi.org/10.1007/s10530-017-1623-x
    » https://doi.org/10.1007/s10530-017-1623-x
  • Gower JC. A general coefficient of similarity and some of its properties. Biometrics. 1971; 27(4):857–71. https://doi.org/10.2307/2528823
    » https://doi.org/10.2307/2528823
  • Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes. Maringá: EDUEM; 2007.
  • Hahn NS, Fugi R, Peretti D, Russo MR, Loureiro-Crippa VE. Estrutura trófica da ictiofauna da planície de inundação do alto rio Paraná. In: Seeliger U, Cordazzo CV, Barbosa FAR, editors. Os sites e o programa brasileiro de pesquisas ecológicas de longa duração. Belo Horizonte: UFMG; 2002. p.123–26.
  • Hoeinghaus DJ, Agostinho AA, Gomes LC, Pelicice FM, Okada EK, Latini JD et al Effects of river impoundment on ecosystem services of large tropical rivers: Embodied energy and market value of artisanal fisheries. Conserv Biol. 2009; 23(5):1222–31. https://doi.org/10.1111/j.1523-1739.2009.01248.x
    » https://doi.org/10.1111/j.1523-1739.2009.01248.x
  • Jarduli LR, Garcia DAZ, Vidotto-Magnoni AP, Casimiro ACR, Vianna NC, Almeida FS et al Fish fauna from the Paranapanema River basin, Brazil. Biota Neotrop. 2020; 20(1):e20180707. https://doi.org/10.1590/1676-0611-bn-2018-0707
    » https://doi.org/10.1590/1676-0611-bn-2018-0707
  • Júlio Junior HF, Dei To’s C, Agostinho AA, Pavanelli CS. A massive invasion of fish species after eliminating a natural barrier in the upper Paraná River basin. Neotrop Ichthyol. 2009; 7(4):709–18. https://doi.org/10.1590/S1679-62252009000400021
    » https://doi.org/10.1590/S1679-62252009000400021
  • Langeani F, Castro RMC, Oyakawa OT, Shibatta OA, Pavanelli CS, Casatti L. Diversidade da ictiofauna do alto rio Paraná: Composição atual e perspectivas futuras. Biota Neotrop. 2007; 7(3):181–97. https://doi.org/10.1590/S1676-06032007000300020
    » https://doi.org/10.1590/S1676-06032007000300020
  • Lima AC, Agostinho CS, Sayanda D, Pelicice FM, Soares AMVM, Monaghan KA. The rise and fall of fish diversity in a neotropical river after impoundment. Hydrobiologia. 2016; 763(1):207–21. https://doi.org/10.1007/s10750-015-2377-z
    » https://doi.org/10.1007/s10750-015-2377-z
  • Loures RC, Pompeu PS. Temporal changes in fish diversity in lotic and lentic environments along a reservoir cascade. Freshw Biol. 2019; 64(10):1806–20. https://doi.org/10.1111/fwb.13372
    » https://doi.org/10.1111/fwb.13372
  • Luz-Agostinho KDG, Bini LM, Fugi R, Agostinho AA, Júlio Jr HF. Food spectrum and trophic structure of the ichthyofauna of Corumbá reservoir, Paraná river Basin, Brazil. Neotrop Ichthyol. 2006; 4(1):61–68. https://doi.org/10.1590/S1679-62252006000100005
    » https://doi.org/10.1590/S1679-62252006000100005
  • Maack R. Geografia física do Estado do Paraná. 2nd ed. Rio de Janeiro: José Olympio; 1981.
  • Magalhães ALB, Daga VS, Bezerra LAV, Vitule JRS, Jacobi CM, Silva LGM. All the colors of the world: Biotic homogenization-differentiation dynamics of freshwater fish communities on demand of the Brazilian aquarium trade. Hydrobiologia. 2020; 847(18):3897–915. https://doi.org/10.1007/s10750-020-04307-w
    » https://doi.org/10.1007/s10750-020-04307-w
  • Maire E, Grenouillet G, Brosse S, Villéger S. How many dimensions are needed to accurately assess functional diversity? A pragmatic approach for assessing the quality of functional spaces. Glob Ecol Biogeogr. 2015; 24(6):728–40. https://doi.org/10.1111/geb.12299
    » https://doi.org/10.1111/geb.12299
  • McLean M, Mouillot D, Lindegren M, Villéger S, Engelhard G, Murgier J et al Fish communities diverge in species but converge in traits over three decades of warming. Glob Change Biol. 2019; 25(11):3972–84. https://doi.org/10.1111/gcb.14785
    » https://doi.org/10.1111/gcb.14785
  • Mouchet M, Guilhaumon F, Villéger S, Mason NWH, Tomasini JA, Mouillot D. Towards a consensus for calculating dendrogram-based functional diversity indices. Oikos. 2008; 117(5):794–800. https://doi.org/10.1111/j.0030-1299.2008.16594.x
    » https://doi.org/10.1111/j.0030-1299.2008.16594.x
  • Mouchet MA, Villéger S, Mason NWH, Mouillot D. Functional diversity measures: an overview of their redundancy and their ability to discriminate community assembly rules. Funct Ecol. 2010; 24(4):867–76. https://doi.org/10.1111/j.1365-2435.2010.01695.x
    » https://doi.org/10.1111/j.1365-2435.2010.01695.x
  • Mouillot D, Graham NAJ, Villéger S, Mason NWH, Bellwood DR. A functional approach reveals community responses to disturbances. Trends Ecol Evol. 2013; 28(3):167–77. https://doi.org/10.1016/j.tree.2012.10.004
    » https://doi.org/10.1016/j.tree.2012.10.004
  • Nogueira MG, Perbiche-Neves G, Naliato DAO. Limnology of two contrasting hydroelectric reservoirs (storage and run-of-river) in Southeast Brazil. In: Samadi-Boroujeni H, editor. Hydropower: Practice and application. Rijeka: In Tech; 2012. p.167–84.
  • Oksanen J, Blanchet FG, Friendly M, Kindt R, Legendre P, McGlinn D et al Vegan: Community Ecology Package [Internet]. R Package version 2.5-6; 2019. Available from: https://cran.r-project.org/package=vegan
    » https://cran.r-project.org/package=vegan
  • Olden JD, Poff NL, Bestgen KR. Life-history strategies predict fish invasions and extirpations in the Colorado River basin. Ecol Monogr. 2006; 76(1):25–40. https://doi.org/10.1890/05-0330
    » https://doi.org/10.1890/05-0330
  • Oliveira AG, Baumgartner MT, Gomes LC, Dias RM, Agostinho AA. Long-term effects of flow regulation by dams simplify fish functional diversity. Freshw Biol. 2018; 63(3):293–305. https://doi.org/10.1111/fwb.13064
    » https://doi.org/10.1111/fwb.13064
  • Orsi ML. Estratégias Reprodutivas de Peixes: Estratégias reprodutivas de peixes da região média-baixa do rio Paranapanema, reservatório de Capivara. São Paulo: Editora Edgard Blucher Ltda.; 2010.
  • Orsi ML, Britton JR. Long-term changes in the fish assemblage of a Neotropical hydroelectric reservoir. J Fish Biol. 2014; 84(6):1964–70. https://doi.org/10.1111/jfb.12392
    » https://doi.org/10.1111/jfb.12392
  • Ota RR, Deprá GC, Graça WJ, Pavanelli CS. Peixes da planície de inundação do alto rio Paraná e áreas adjacentes: Revised, annotated and updated. Neotrop Ichthyol. 2018; 16(2):e170094. https://doi.org/10.1590/1982-0224-20170094
    » https://doi.org/10.1590/1982-0224-20170094
  • Pelicice FM, Azevedo-Santos VM, Esguícero ALH, Agostinho AA, Arcifa MS. Fish diversity in the cascade of reservoirs along the Paranapanema River, southeast Brazil. Neotrop Ichthyol. 2018; 16(2):e170150. https://doi.org/10.1590/1982-0224-20170150
    » https://doi.org/10.1590/1982-0224-20170150
  • Penone C, Davidson AD, Shoemaker KT, Di Marco M, Rondinini C, Brooks TM et al Imputation of missing data in life-history trait datasets: Which approach performs the best? Methods Ecol Evol. 2014; 5(9):961–70. https://doi.org/10.1111/2041-210X.12232
    » https://doi.org/10.1111/2041-210X.12232
  • Pimiento C, Leprieur F, Silvestro D, Lefcheck JS, Albouy C, Rasher DB et al Functional diversity of marine megafauna in the Anthropocene. Sci Adv. 2020; 6(16):eaay7650. https://doi.org/10.1126/sciadv.aay7650
    » https://doi.org/10.1126/sciadv.aay7650
  • Pool TK, Olden JD, Whittier JB, Paukert CP. Environmental drivers of fish functional diversity and composition in the Lower Colorado River basin. Can J Fish Aquat Sci. 2010; 67(11):1791–807. https://doi.org/10.1139/F10-095
    » https://doi.org/10.1139/F10-095
  • R Development Core Team. A language and environment for statistical computing [Internet]. Vienna: R Foundation for Statistical Computing; 2020. Available from: https://www.R-project.org
    » https://www.R-project.org
  • Sampaio T. Relatório sobre os estudos efetuados nos rios Itapetininga e Paranapanema. Rev Inst Geogr Geol. 1944; 2(3):30–81.
  • Smith WS, Pereira CGF, Espindola ELG, Rocha O. Trophic structure of the fish community throughout the reservoirs and tributaries of the middle and lower Tietê River (São Paulo, Brazil). Acta Limnol Bras. 2018; 30:e308. https://doi.org/10.1590/s2179-975X0618
    » https://doi.org/10.1590/s2179-975X0618
  • Suzuki HI, Agostinho AA, Winemiller KO. Relationship between oocyte morphology and reproductive strategy in loricariid catfishes of the Parana River, Brazil. J Fish Biol. 2000; 57(3):791–807. https://doi.org/10.1111/j.1095-8649.2000.tb00275.x
    » https://doi.org/10.1111/j.1095-8649.2000.tb00275.x
  • Swenson NG. Functional and phylogenetic ecology in R. New York: Springer; 2014. https://doi.org/10.1007/978-1-4614-9542-0
    » https://doi.org/10.1007/978-1-4614-9542-0
  • Toussaint A, Charpin N, Beauchard O, Grenouillet G, Oberdorff T, Tedesco PA et al Non-native species led to marked shifts in functional diversity of the world freshwater fish faunas. Ecol Lett. 2018; 21(11):1649–59. https://doi.org/10.1111/ele.13141
    » https://doi.org/10.1111/ele.13141
  • Vazzoler AEAM. Biologia da reprodução de peixes teleósteos: Teoria e prática. Maringá: EDUEM; 1996.
  • Vidotto-Magnoni AP. Ecologia trófica das assembléias de peixes do reservatório de Chavantes (Médio rio Paranapanema, SP/PR). [PhD Thesis]. Botucatu: Universidade Estadual Paulista “Júlio de Mesquita Filho”; 2009. Available from: https://repositorio.unesp.br/handle/11449/106518
    » https://repositorio.unesp.br/handle/11449/106518
  • Vidotto-Magnoni AP, Garcia DAZ, Costa ADA, Souza JG, Yabu MHS, Almeida FS et al Ichthyofauna of streams of the Lower Paranapanema River basin, state of Paraná, Brazil. Check List. 2015; 11(5):1756. https://doi.org/10.15560/11.5.1756
    » https://doi.org/10.15560/11.5.1756
  • Villéger S, Mason NWH, Mouillot D. New multidimensional functional diversity indices for a multifaceted framework in functional ecology. Ecology. 2008; 89(8):2290–301. https://doi.org/10.1890/07-1206.1
    » https://doi.org/10.1890/07-1206.1
  • Villéger S, Miranda JR, Hernández DF, Mouillot D. Contrasting changes in taxonomic vs functional diversity of tropical fish communities after habitat degradation. Ecol Appl. 2010; 20(6):1512–22. https://doi.org/10.1890/09-1310.1
    » https://doi.org/10.1890/09-1310.1
  • Villéger S, Novack-Gottshall PM, Mouillot D. The multidimensionality of the niche reveals functional diversity changes in benthic marine biotas across geological time. Ecol Lett. 2011; 14(6):561–68. https://doi.org/10.1111/j.1461-0248.2011.01618.x
    » https://doi.org/10.1111/j.1461-0248.2011.01618.x
  • Villéger S, Grenouillet G, Brosse S. Decomposing functional β-diversity reveals that low functional β-diversity is driven by low functional turnover in European fish assemblages. Glob Ecol Biogeogr. 2013; 22(6):671–81. https://doi.org/10.1111/geb.12021
    » https://doi.org/10.1111/geb.12021
  • Villéger S, Brosse S, Mouchet M, Mouillot D, Vanni MJ. Functional ecology of fish: Current approaches and future challenges. Aquat Sci. 2017; 79(4):783–801. https://doi.org/10.1007/s00027-017-0546-z
    » https://doi.org/10.1007/s00027-017-0546-z
  • Ward JV, Tockner K, Schiemer F. Biodiversity of floodplain river ecosystems: Ecotones and connectivity. Regul Rivers Res Manage. 1999; 15(1–3):125–39. https://doi.org/10.1002/(SICI)1099-1646(199901/06)15:1/3%3C125::AID-RRR523%3E3.0.CO;2-E
    » https://doi.org/10.1002/(SICI)1099-1646(199901/06)15:1/3%3C125::AID-RRR523%3E3.0.CO;2-E
  • Winemiller KO. Aspects structurels et fonctionnels de la biodiversité des peuplements de poissons. Bull Fr PêchePiscic. 1995; 1995(337–338–339):23–45. https://doi.org/10.1051/kmae:1995007
    » https://doi.org/10.1051/kmae:1995007
  • HOW TO CITE THIS ARTICLE

    Ferraz JD, Casimiro ACR, Garcia DAZ, Pereira AD, Jarduli LR, Almeida FS, Orsi ML. Taxonomic loss and functional reduction over time in the ichthyofauna of the Taquaruçu Reservoir, lower Paranapanema River, Southern Brazil. Neotrop Ichthyol. 2021; 19(3):e200143. https://doi.org/10.1590/1982-0224-2020-0143

Edited-by

Fernando Carvalho

Publication Dates

  • Publication in this collection
    17 Sept 2021
  • Date of issue
    2021

History

  • Received
    16 Dec 2020
  • Accepted
    12 May 2021
Sociedade Brasileira de Ictiologia Neotropical Ichthyology, Núcleo de Pesquisas em Limnologia, Ictiologia e Aquicultura, Universidade Estadual de Maringá., Av. Colombo, 5790, 87020-900, Phone number: +55 44-3011-4632 - Maringá - PR - Brazil
E-mail: neoichth@nupelia.uem.br