Hydropower Plants and Ichthyofauna in the Tocantins–Araguaia River Basin: Challenges for Planning and Approaches to Ichthyofauna Conservation
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Ichthyofauna of the Tocantins–Araguaia Basin
2.3. Data Collection and Analysis
3. Results
Authors | Number of Taxa | Period, Hydroelectric Plant, River or Watershed | Data Source and Observation |
---|---|---|---|
[43] | 62 species | 2008 (dry season from May to September); 25 streams; headwaters of Tocantins and Araguaia rivers | Sampling with experimental seine net |
[44] | 82 species; 6 orders; 26 families | 2016 (dry season from April to May); 4 points in Almas River; a tributary of Tocantins River; 29 contributing streams | Sampling with experimental gill net |
[45] | 67 species; 5 orders; 19 families | 2010 (July); municipalities of Pirenópolis, Barro Alto and Goianésia, and Almas and Maranhão rivers; upper Tocantins River | Sampling with seine net, cast net, and sieve; 60 min at each site |
[30] | 233 species; 9 orders; 39 families | 1995 to 2000; 2001–2002 and 2008 to 2010; Serra da Mesa Reservoir influence region | Sampling with experimental multi-gear fishing before, during, and after the dam |
[31] | 264 species; 11 orders; 35 families | April 1998 to September 2001; Paranã municipality; upper Tocantins River; downstream of Serra da Mesa Reservoir | Sampling with experimental multi-gear fishing |
[32] | 258 species; 8 orders; 37 families | August 2007 to August 2008, December 2009 to November 2011, and November 2012 to May 2014; Paranã, São Salvador, and Palmeirópolis municipalities; upper Tocantins River; São Salvador Reservoir influence area | Sampling with experimental multi-gear fishing, subsistence, commercial, and sport fishing |
[33] | 288 species; 11 orders; 38 families | 2004 to 2007; upper Tocantins River between Peixe and São Salvador municipalities; Peixe Angical Reservoir influence area | Sampling with experimental multi-gear fishing |
[34] | 343 species; 12 orders; 42 families | 1999 to 2004; middle and upper Tocantins River; between Pedro Afonso and Peixe municipalities; Lajeado Reservoir influence area | Sampling with experimental multi-gear fishing; 38 endemic species |
[35] | 194 species; 10 orders; 38 families | 2013 (August) to 2015 (May); upper and middle Tocantins River; tributaries and streams; Lajeado Reservoir influence area | Sampling with experimental multi-gear fishing |
[2] | 85 species ** | 2008 (January–February); Serra Geral do Tocantins Ecological Station and surrounding (records of over hundred species) | Fishing with seine net, complementing the list with specimens deposited in museums |
[46] | 111 species; 7 orders; 25 families | 2016 (January, April, and June); Novo Acordo and Rio Sono municipalities; Do Sono River; Monte Santo Hydroelectric Plant influence area. | Sampling with experimental multi-gear fishing |
[36,37] | 215 species; 10 orders; 40 families | 2009 to 2012; between Tupiratins and Imperatriz municipalities; Estreito Reservoir influence area | Sampling with experimental multi-gear fishing and commercial fishing |
[47] | 89 species; 5 orders; 21 families | 2008 (July–August); Aragarças and Barra do Garças municipalities; Serra Azul and Serra do Roncador area; upper and middle Araguaia River | Sieve, seine net, and cast net; effort of 3 people; 60 min at each site; in the dry season |
[48] | 92 species; 6 orders; 22 families | 1994 (April and September, beginning and end of the drought); region close to Luís Alves | Sampling with experimental gill net and trap; 12 lagoons |
[49] | 80 species; 5 orders; 19 families | 2007? (March, July, October, and December); lower Das Mortes River, Bananal Floodplain, and Araguaia River watershed | Sampling with experimental gill net; inlet and river channel |
[50] | 72 species; 5 orders; 17 families | 2004 (October) and 2005 (March); lower Das Mortes River; Bananal Floodplain; Araguaia River watershed | Sampling with experimental gill net |
[42] | 271 species; 12 orders; 41 families; 183 genera | 2000–2001 (?); Caseara and Pium municipalities; Cantão State Park; Middle Araguaia River | Sampling with experimental gill net and sport fishing |
[51] | 37 species; 4 orders; 14 families; 33 genera | 2009 (December) and 2010 (January); Redenção and Santa Maria das Barreiras municipalities; three streams in the Araguaia River watershed, downstream Bananal Island, and Carajás Mountains | Rapid assessment protocol with interviews, field observations, and sampling with nets |
[40,41] | 208 species; 11 orders; 40 families | 2008–2009; Aragominas and Araguatins municipalities; lower Araguaia River * | Sampling with experimental multi-gear fishing and commercial fishing |
[38] # | 123 commercial species; 26 families; the authors documented more than 300 species and covered reaches downstream from the ecoregion | 1980 and 1983; lower Tocantins River. between Cametá and Marabá municipalities; Tucuruí Reservoir influence areas; reservoir pre-filling phase | Commercial fishing |
[39] # | 217 species; 13 orders; 41 families | 1999 to 2003; lower Tocantins River, between Cametá and Marabá municipalities, including Tucuruí Reservoir area | Commercial fishing and scientific collections |
4. Discussion
- Integrated Conservation Planning: Implement comprehensive and integrated conservation plans for the entire Tocantins–Araguaia Basin, taking into account the diverse ichthyofauna, knowledge that is continuously evolving and currently available and the potential impacts of hydroelectric projects. This approach ensures the prevention of fragmented conservation efforts, enabling a holistic strategy to protect the socio-environmental diversity of the basin.
- Fish Route Implementation: Prioritize, whenever possible, the incorporation of fish routes, such as fishways and bypasses, in the design and construction of hydroelectric projects. Fish routes facilitate the movement of fish past dams, aiding in maintaining genetic diversity and preventing population isolation, which is crucial for the long-term conservation of migratory species.
- Adaptive Management Strategies: Develop and test adaptive management strategies specifically tailored to tropical regions, considering the unique characteristics and challenges of the local ecosystems. Tailoring strategies to the region’s specific conditions ensures the effectiveness of conservation efforts and the applicability of fish routes in naturally isolated areas.
- Monitoring and Research: Conduct continuous and thorough monitoring of fish populations and their movements, both before and after the implementation of fish routes. Regular monitoring yields valuable data on the success of fish routes, helping researchers and conservationists make informed decisions and adapt strategies as needed.
- Stakeholder Engagement: Involve local communities, fisheries, and indigenous populations in the planning and implementation of fish routes, considering their traditional knowledge and practices. Local communities often have valuable insights into fish behavior and ecosystems. Involving them fosters a sense of ownership and cooperation in conservation initiatives.
- Mitigation of Economic Impact: Explore and implement measures to mitigate the potential economic impact on communities relying on freshwater fish for subsistence, taking into account the potential disruption caused by hydroelectric projects. Addressing economic concerns ensures a more balanced approach, considering both conservation goals and the well-being of local populations.
- Holistic Approach to Conservation: Integrate the conservation of fish species with broader ecosystem preservation efforts, considering the interconnectedness of aquatic systems and the role of fish in maintaining ecological balance. A holistic approach recognizes the importance of preserving entire ecosystems, acknowledging the intricate relationships between different species and their environments.
Supplementary Materials
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Sub-Basin | Hydroelectric Plants in Operation | Hydroelectric Plants Planned | ||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
PGP | SHP | HPP | Total | PGP | SHP | HPP | Total | |||||||||
N | MW | N | MW | N | MW | N | MW | N | MW | N | MW | N | MW | N | MW | |
SB20 | 2 | 1.3 | 1 | 3.0 | 1 | 1275.0 | 4 | 1279.3 | 16 | 277.5 | 6 | 508.0 | 22 | 785.5 | ||
SB21 | 9 | 13.6 | 18 | 244.9 | 2 | 693.2 | 29 | 951.8 | 1 | 4.0 | 20 | 175.8 | 6 | 416.8 | 27 | 596.6 |
SB22 | 5 | 4.2 | 3 | 42.6 | 2 | 1401.3 | 10 | 1448.0 | 18 | 255.7 | 8 | 892.9 | 26 | 1148.6 | ||
SB23 | 1 | 1087.0 | 1 | 1087.0 | 2 | 11.7 | 2 | 11.7 | ||||||||
SB24 | 8 | 8.2 | 7 | 126.5 | 15 | 134.7 | 2 | 7.2 | 15 | 214.6 | 6 | 638.2 | 23 | 860.0 | ||
SB26 | 10 | 5.4 | 2 | 12.1 | 12 | 17.5 | 11 | 189.4 | 5 | 791.0 | 16 | 980.4 | ||||
SB28 | 2 | 2.6 | 2 | 2.6 | 2 | 2040.0 | 2 | 2040.0 | ||||||||
SB29 | 1 | 8535.0 | 1 | 8535.0 | 1 | 2160.0 | 1 | 2160.0 | ||||||||
SB31 | 1 | 0.9 | 1 | 0.9 | ||||||||||||
Total | 37 | 36.2 | 31 | 429.1 | 7 | 12,991.5 | 75 | 13,456.8 | 3 | 11.2 | 82 | 1124.6 | 34 | 7446.9 | 119 | 8582.7 |
Species/Popular Name/(Length, cm) * | [44] | [30] | [31] | [32] | [33] | [34] | [35] | [36,37] | [2] | [46] | [48] | [49] | [50] | [42] | [51] | [40,41] | [38] | [39] |
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Brachyplatystoma platynemum (100.0) | ||||||||||||||||||
Brachyplatystoma rousseauxii *. dourada | 1 | 2 | 2 | |||||||||||||||
Brachyplatystoma vaillantii. piramutaba (150.0) | ||||||||||||||||||
Brachyplatystoma filamentosum. piraíba. filhote (360.0) | ||||||||||||||||||
Brycon falcatus. piabanha. matrinchã. ladina (37.0) | 3 | 3 | ||||||||||||||||
Brycon gouldingi. piabanha. matinchã (47.8) | 4 | 5 | ||||||||||||||||
Colossoma macropomum **. tambaqui (99.5) | ||||||||||||||||||
Hemisorubim platyrhynchos. jurupoca. braço-de-moça (52.5) | ||||||||||||||||||
Hydrolycus armatus. cachorra-verdadeira. cachorra. cachorra-larga (66.0) | ||||||||||||||||||
Hydrolycus tatauaia. cachorra-verdadeira. cachorra. cachorra-larga (45.5) | 6 | 6 | ||||||||||||||||
Megalodoras uranoscopus. bacu-medalha (53.0) | 7 | |||||||||||||||||
Oxydoras niger. cuiu-cuiu (100.0) | 8 | |||||||||||||||||
Phractocephalus hemioliopterus. pirarara (132.0) | ||||||||||||||||||
Piaractus brachypomus. pacu-caranha. pirapitinga (71.0) | 9 | 9 | ||||||||||||||||
Piaractus mesopotamicus **. pacu (40.5) | ||||||||||||||||||
Pinirampus pirinampu. barbado. barba-chata. piranambu (120.0) | ||||||||||||||||||
Platynematichthys notatus. pintadinho. pirá-tucandira (80.0) | ||||||||||||||||||
Platystomatichthys sturio (40.0) | ||||||||||||||||||
Prochilodus nigricans. papa-terra. curimatá. curimatã. curimba (37.0) | ||||||||||||||||||
Pseudoplatystoma fasciatum. sorubim. surubim. pintado (105.0) | ||||||||||||||||||
Pseudoplatystoma punctifer. sorubim. surubim. pintado (50.0) | 10 | |||||||||||||||||
Pterodoras granulosus. jaú de serrilha. bacu-liso. abotoado. barriga-mole (70.0) | 11 | |||||||||||||||||
Rhaphiodon vulpinus. cachorra-facão. facão. ripa (63.3) | ||||||||||||||||||
Salminus hilarii. tubarana. arapará. dourado. dourada-de-escamas (50.0) | 12 | |||||||||||||||||
Semaprochilodus brama. jaraqui. papa-terra (28.0) | ||||||||||||||||||
Sorubim lima. bico-de-pato. braço-de-moça (50.5) | ||||||||||||||||||
Sorubimichthys planiceps. surubim-chicote. peixe-lenha. surubim-lenha (150.0) | ||||||||||||||||||
Zungaro zungaro. jaú (140.0) | 13 |
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Obeso, M.P.; Marques, E.E.; Guedes, T.L.d.O.; Silva, J.F.M.d.; Makrakis, M.C.; Carvalho, A.d.G.d.; Makrakis, S. Hydropower Plants and Ichthyofauna in the Tocantins–Araguaia River Basin: Challenges for Planning and Approaches to Ichthyofauna Conservation. Sustainability 2024, 16, 2303. https://doi.org/10.3390/su16062303
Obeso MP, Marques EE, Guedes TLdO, Silva JFMd, Makrakis MC, Carvalho AdGd, Makrakis S. Hydropower Plants and Ichthyofauna in the Tocantins–Araguaia River Basin: Challenges for Planning and Approaches to Ichthyofauna Conservation. Sustainability. 2024; 16(6):2303. https://doi.org/10.3390/su16062303
Chicago/Turabian StyleObeso, Max Portuguez, Elineide Eugênio Marques, Tharles Lopes de Oliveira Guedes, Jhony Ferry Mendonça da Silva, Maristela Cavicchioli Makrakis, Adriano dos Guimarães de Carvalho, and Sergio Makrakis. 2024. "Hydropower Plants and Ichthyofauna in the Tocantins–Araguaia River Basin: Challenges for Planning and Approaches to Ichthyofauna Conservation" Sustainability 16, no. 6: 2303. https://doi.org/10.3390/su16062303
APA StyleObeso, M. P., Marques, E. E., Guedes, T. L. d. O., Silva, J. F. M. d., Makrakis, M. C., Carvalho, A. d. G. d., & Makrakis, S. (2024). Hydropower Plants and Ichthyofauna in the Tocantins–Araguaia River Basin: Challenges for Planning and Approaches to Ichthyofauna Conservation. Sustainability, 16(6), 2303. https://doi.org/10.3390/su16062303