Paleolimnology in the Pantanal: Using Lake Sediments to Track Quaternary Environmental Change in the World’s Largest Tropical Wetland
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  • 关键词:Brazil ; Lakes ; Sediment cores ; Tropical paleoclimatology ; Wetlands
  • 刊名:The Handbook of Environmental Chemistry
  • 出版年:2016
  • 出版时间:2016
  • 年:2016
  • 卷:37
  • 期:1
  • 页码:51-81
  • 全文大小:1,857 KB
  • 参考文献:1.Hamilton SK (1999) Potential effects of a major navigation project (Paraguay-Parana Hidrovia) on inundation in the Pantanal floodplains. Regul Rivers Res Manag 15:289–299CrossRef
    2.Pott A, Pott VJ (2004) Features and conservation of the Brazilian Pantanal wetland. Wetl Ecol Manag 12(6):547–552CrossRef
    3.Junk WJ, Nunes Da Cunha K, Wantzen KM, Petermann P, Strussmann C, Marques MI, Adis J (2006) Biodiversity and its conservation in the Pantanal of Mato Grosso, Brazil. Aquat Sci 68(3):278–309CrossRef
    4.Bastviken D, Santoro AL, Marotta H, Pinho LQ, Calheiros DF, Crill P, Enrich-Prast A (2010) Methane emissions from Pantanal, South America, during the low water season: toward more comprehensive sampling. Environ Sci Technol 44:5450–5455CrossRef
    5.Bergier I, Krusche A, Guérin F (2015) Alkaline lake dynamics in the Nhecolândia landscape. Hdb Env Chem. doi:10.​1007/​698_​2014_​327
    6.Bergier I, Silva APS, Monteiro H, Guérin F, Macedo HA, Silva A, Krusche A, Sawakuchi HO, Bastviken D (2015) Methane and carbon dioxide dynamics in the paraguay river floodplain (pantanal) in episodic anoxia events. Hdb Env Chem. doi:10.​1007/​698_​2014_​353
    7.Bergier I (2013) Effects of highland land-use over lowlands of the Brazilian Pantanal. Sci Total Environ 463:1060–1066CrossRef
    8.Stevaux JC (2000) Climatic events during the Late Pleistocene and Holocene in the Upper Paraná River: correlation with NE Argentina and South-Central Brazil. Quat Int 72:73–85CrossRef
    9.Cruz FW, Burns SJ, Karmann I, Sharp WD, Vuille M, Cardoso AO, Silva Dias PL, Ferrari JA, Viana O (2005) Insolation driven changes in atmospheric circulation over the past 116,000 years in subtropical Brazil. Nature 434:63–66CrossRef
    10.Cruz FW, Vuille M, Burns SJ, Wang X, Cheng H, Werner M, Edwards RL, Karmann I, Auler AS, Nguyen H (2009) Orbitally driven east–west antiphasing of South American precipitation. Nat Geosci 2(3):210–214CrossRef
    11.Arini J (2009) Nos labirintos da bioparanoia. Época 68–70
    12.Braun EHG (1977) Cone aluvial do Taquari, unidade geomórfica marcante na planície quaternária do Pantanal. Rev Bras Geogr 39(4):164–180
    13.Tricart J (1982) El Pantanal: Un ejemplo del impacto de la geomorfologia sobre el medio ambiente. Geografia 7(13–14):37–50
    14.Assine ML, Soares PC (2004) Quaternary of the Pantanal, west-central Brazil. Quat Int 114:23–34CrossRef
    15.Assine ML, Silva A (2009) Contrasting fluvial styles of the Paraguay River in the northwestern border of the Pantanal wetland, Brazil. Geomorphology 113:189–199CrossRef
    16.Buehler HA, Weissmann GS, Scuderi LA, Hartley AJ (2011) Spatial and temporal evolution of an avulsion on the Taquari River distributive fluvial system from satellite image analysis. J Sediment Res 81(8):630–640CrossRef
    17.Makaske B, Maathuis BH, Padovani CR, Stolker C, Mosselman E, Jongman RH (2012) Upstream and downstream controls of recent avulsions on the Taquari megafan, Pantanal, south‐western Brazil. Earth Surf Process Landf 37(12):1313–1326CrossRef
    18.Zani H, Assine ML, McGlue MM (2012) Revealing geoforms in Pantanal wetland (Brazil) with remote sensing: a method to enhance SRTM-DEM for megafan environments. Geomorphology 161–162:82–92CrossRef
    19.Klammer G (1982) Die Paleowueste des Pantanal von Mato Grosso und die pleistozaene Klimageschichte der brasilianischen Randtropen. Zeitschrift Geomorphol NF 26:393–416
    20.Hamilton SK, Sippel SJ, Melack JM (2002) Comparison of inundation patterns among major South American floodplains. J Geophys Res 107(D20):8038CrossRef
    21.Assine ML, Corradini FA, Pupim FDN, McGlue MM (2014) Channel arrangements and depositional styles in the São Lourenço fluvial megafan, Brazilian Pantanal wetland. Sediment Geol 301:172–184CrossRef
    22.Kuerten S, Parolin M, Assine ML, McGlue MM (2013) Sponge spicules indicate Holocene environmental changes on the Nabileque River floodplain, southern Pantanal, Brazil. J Paleolimnol 49(2):171–183CrossRef
    23.Victoria RL, Fernandes F, Martinelli LA, Piccolo MC, Camargo PB, Trumbore S (1995) Past vegetation changes in the Brazilian Pantanal-Grassy Savanna ecotone by using carbon isotopes in the soil organic matter. Glob Chang Biol 1:65–71CrossRef
    24.Bertaux J, Sondag F, Santos R, Soubies F, Casse C, Plagnes V, Le Cornec F, Seidel F (2002) Palaeoclimatic record of speleothems in a tropical region: study of laminated sequences from a Holocene stalagmite in Central-West Brazil. Quat Int 89:3–16CrossRef
    25.Boggiani PC, Coimbra AM, Gesicki ALD, Sial AN, Ferreira VP, Ribeiro FB, Flexor JM (2002) Tufas Calcárias da Serra da Bodoquena, MS: cachoeiras petrificadas ao longo dos rios. In: Schobbenhaus C, Campos DA, Queiroz ET, Winge M, Berbert-Born M (eds) Sítios Geológicos e Paleontológicos do Brasil. Brasília-DF, DNPM, pp 249–259
    26.Bezerra MAO, Mozeto AA (2008) Deposição de carbono orgânico na planície de inundação do Rio Paraguai durante o Holoceno médio. Oecologia Brasiliensis 12(1):155–171CrossRef
    27.Sallun-Filho W, Karmann I, Boggiani PC, Petri S, Souza Cristalli P, Utida GA (2009) Deposição de Tufas Quaternárias no Estado de Mato Grosso do Sul: Proposta de Definição da Formação Serra da Bodoquena. Revista do Instituto de Geociências USP 9:47–60
    28.Whitney BS, Mayle FE, Punyasena SW, Fitzpatrick KA, Burn MJ, Guillen R, Chavez E, Mann D, Pennington RT, Metcalfe SE (2011) A 45 kyr palaeoclimate record from the lowland interior of tropical South America. Palaeogeogr Palaeoclimatol Palaeoecol 307:177–192CrossRef
    29.Whitney BS, Mayle FE (2012) Pediastrum species as potential indicators of lake-level change in tropical South America. J Paleolimnol 47:601–615CrossRef
    30.McGlue MM, Silva A, Zani H, Corradini FA, Parolin M, Abel EJ, Cohen AS, Assine ML, Ellis GS, Trees MA, Kuerten S, Gradella FS, Rasbold GG (2012) Lacustrine records of Holocene flood pulse dynamics in the Upper Paraguay River watershed (Pantanal wetlands, Brazil). Quat Res 78(2):285–294CrossRef
    31.Metcalfe SE, Whitney BS, Fitzpatrick KA, Mayle FE, Loader NJ, Street‐Perrott FA, Mann DG (2014) Hydrology and climatology at Laguna La Gaiba, lowland Bolivia: complex responses to climatic forcings over the last 25 000 years. J Quat Sci 29(3):289–300CrossRef
    32.Ledru MP, Bertaux J, Sifeddine A, Suguio K (1998) Absence of last glacial maximum records in lowland tropical forests. Quat Res 49:233–237CrossRef
    33.Ruddiman WF (2001) Earth’s Climate: past and future. W. H. Freeman, New York, 465 pp
    34.Cohen AS (2003) Paleolimnology: the history and evolution of lake systems. Oxford University Press, Oxford
    35.Por FD (1995) The Pantanal of Mato Grosso (Brazil). Kluwer, DordrechtCrossRef
    36.Costa MF (2007) De Xarayes ao Pantanal: a cartografia de um mito geográfico. Revista do Instituto de Estudos Brasileiros 45:21–36CrossRef
    37.Weyler G (1962) Relatório final dos Poços perfurados no Pantanal Matogrossense. Projeto Pantanal. Distrito de Expl. Sedimentar do Paraná, Petrobrás, Ponta Grossa-PR, 27 pp
    38.Catto AJ (1975) Análise geológica e geofísica da Bacia do Pantanal Matogrossense. Rio de Janeiro, Petrobrás (DEPEX/SEDOT n° 5296)
    39.Heckman CW (1998) The Pantanal of Poconé. Kluwer, Den HaagCrossRef
    40.Swarts FA (ed) (2000) The Pantanal: understanding and preserving the world’s largest wetland. Paragon House, St. Paul
    41.Horton BK, DeCelles PG (1997) The modern foreland basin system adjacent to the central Andes. Geology 25:895–898CrossRef
    42.Ussami N, Shiraiwa S, Dominguez JML (1999) Basement reactivation in a sub-Andean foreland flexural bulge: the Pantanal wetland, SW Brazil. Tectonics 18(1):25–39CrossRef
    43.Assine ML (2003) Sedimentação na Bacia do Pantanal Mato-Grossense. Centro-Oeste do Brasil, Rio Claro
    44.Assumpção M, Schimmel M, Escalante C, Barbosa JR, Rocha M, Barros LV (2004) Intraplate seismicity in SE Brazil: stress concentration in lithospheric thin spots. Geophys J Int 159:390–399CrossRef
    45.Alvarenga CJS, Boggiani PC, Babinski M, Dardenne MA, Figueiredo MF, Dantas EL, Uhlein A, Santos RV, Sial AN, Trompette R (2011) Glacially influenced sedimentation of the Puga Formation, Cuiabá Group and Jacadigo Group, and associated carbonates of the Araras and Corumbá groups, Paraguay Belt, Brazil. Geological Society, London, Memoirs 36(1):487–497
    46.Chase CG, Sussman AJ, Coblentz DD (2009) Curved Andes: Geoid, forebulge, and flexure. Lithosphere 1:358–363CrossRef
    47.Cohen AS, McGlue MM, Ellis GS, Zani H, Swarzenski PW, Assine ML, Silva A (2015) Lake formation, characteristics and evolution in retroarc deposystems: a synthesis of the modern Andean orogen and its associated basins. In: DeCelles PG, Ducea MN, Carrapa B, Kapp P (eds) Geodynamics of a cordilleran orogenic system: the central Andes of Argentina and Northern Chile, Geological Society of America Memoir 212. doi:10.1130/2015.1212(16)
    48.Zhou J, Lau KM (1998) Does a monsoon climate exist over South America? J Clim 11:1020–1040CrossRef
    49.Prance GT, Schaller GB (1982) Preliminary study of some vegetation types of the Pantanal, Mato Grosso, Brazil. Brittonia 34:228–251CrossRef
    50.Pinder L, Rosso S (1998) Classification and ordination of plant formations in the Pantanal of Brazil. Plant Ecol 136:151–165CrossRef
    51.Pott A, Silva JSV (2015) Terrestrial and aquatic vegetation diversity of the Pantanal wetland. Hdb Env Chem. doi:10.​1007/​698_​2014_​352
    52.Hamilton SK, Sippel SJ, Calheiros DF, Melack JM (1997) An anoxic event and other biogeochemical effects of the Pantanal wetland on the Paraguay River. Limnol Oceanogr 42:257–272CrossRef
    53.Junk WJ, Bayley PB, Sparks RE (1989) The flood pulse concept in river-floodplain systems. Can Spec Publ Fish Aquat Sci 106:110–127
    54.McGlue MM, Silva A, Corradini FA, Zani H, Trees M, Ellis G, Parolin M, Swarzenski PW, Cohen AS, Assine ML (2011) Limnogeology in Brazil’s “Forgotten Wilderness:” a synthesis from the floodplain lakes of the Pantanal. J Paleolimnol 46(2):273–289CrossRef
    55.Costa MP, Telmer KH (2006) Utilizing SAR imagery and aquatic vegetation to map fresh and brackish lakes in the Brazilian Pantanal wetland. Remote Sens Environ 105(3):204–213CrossRef
    56.Costa M, Telmer KH, Evans TL, Almeida TI, Diakun MT (2015) The lakes of the Pantanal: inventory, distribution, geochemistry, and surrounding landscape. Wetl Ecol Manag 2015:1–21
    57.Boggiani PC, Coimbra AM (1995) Quaternary limestone of the Pantanal area, Brazil. An Acad Bras Cienc 3(67):343–349
    58.Ab’Saber AN (1988) O Pantanal Mato-Grossense ea teoria dos refúgios. Rev Bras Geogr 50(2):9–57
    59.Barbiéro L, Queiroz Neto JP, Ciornei G, Sakamoto AY, Capellari B, Fernandes E, Valles V (2002) Geochemistry of water and ground water in the Nhecolândia, Pantanal of Mato Grosso, Brazil: variability and associated processes. Wetlands 22(3):528–540CrossRef
    60.Furian S, Martins ERC, Parizotto TM, Rezende-Filho AT, Victoria RL, Barbiero L (2013) Chemical diversity and spatial variability in myriad lakes in Nhecolândia in the Pantanal wetlands of Brazil. Limnol Oceanogr 58(6):2249–2261CrossRef
    61.Fávaro DIT, Damatto SR, Silva PSC, Riga AA, Sakamoto AY, Mazzilli BP (2006) Chemical characterization and 210 Pb dating in wetland sediments from the Nhecolândia Pantanal Pond, Brazil. J Radioanal Nucl Chem 269(3):719–726CrossRef
    62.Wetzel RG (2001) Limnology: lake and river ecosystems. Academic, San Diego, 1006 pp
    63.Kuerten S, Assine ML (2011) O rio Paraguai no megaleque do Nabileque, sudoeste do Pantanal Mato-Grossense, MS. Rev Bras Geosci 41(4):642–653
    64.Volkmer-Ribeiro C, Turcq B (1996) SEM analysis of siliceous spicules of a freshwater sponge indicate paleoenvironmental changes. Acta Microsc 5:186–187
    65.Volkmer-Ribeiro C, Motta JFM, Callegaro VLM (1998) Taxonomy and distribution of Brazilian spongillites. Sponge sciences, multidisciplinary perspectives. Springer-Verlag, Tokyo, pp 271–278
    66.Parolin M, Volkmer-Ribeiro C, Stevaux JC (2008) Use of spongofacies as a proxy for river-lake paleohydrology in Quaternary deposits of central-western Brazil. Revista Brasileira de Paleontologia 11(3):187–198CrossRef
    67.Latrubesse EM, Stevaux JC, Cremon EH, May J-H, Tatumi SH, Hurtado MA, Bezada M, Argollo JB (2012) Late Quaternary megafans, fans and fluvio-aeolian interactions in the Bolivian Chaco, Tropical South America. Palaeogeogr Palaeoclimatol Palaeoecol 356:75–88CrossRef
    68.Marchant R, Hooghiemstra H (2004) Rapid environmental change in African and South American tropics around 4000 years before present: a review. Earth Sci Rev 66:217–260CrossRef
    69.Parolin M, Volkmer-Ribeiro C, Stevaux JC (2007) Sponge spicules in peaty sediments as paleoenvironmental indicators of the Holocene in the upper Parana River, Brazil. Revista Brasileira de Paleontologia 10:17–26CrossRef
    70.Baker PA, Seltzer GO, Fritz SC, Dunbar RB, Grove MJ, Tapia PM, Cross SL, Rowe HD, Broda JP (2001) The history of South American tropical precipitation for the past 25,000 years. Science 291:640–643CrossRef
    71.Fritz SC, Baker PA, Seltzer GO, Ballantyne A, Tapia P, Cheng H, Edwards RL (2007) Quaternary glaciation and hydrologic variation in the South American tropics as reconstructed from the Lake Titicaca drilling project. Quat Res 68:410–420CrossRef
    72.Talbot MR, Jensen NB, Lærdal T, Filippi ML (2006) Geochemical responses to a major transgression in giant African lakes. J Paleolimnol 35(3):467–489CrossRef
    73.Bonachea J, Bruschi V, Hurtado MA, Forte LM, da Silva M, Etcheverry R, Cavallotto JL, Dantas M, Pejon O, Zuquette LV, Bezerra MA, Remondo J, Rivas V, Gomez-Arozamena J, Fernandez G, Cendrero A (2010) Natural- and human-forcing in recent geomorphic change: case studies in the Rio de la Plata basin. Sci Total Environ 408:2674–2695CrossRef
    74.Silva JSV, Abdon M, Silva SMA, Moraes JA (2011) Evolution of deforestation in the Brazilian Pantanal and surroundings in the timeframe 1976–2008. Geografia 36:35–55
    75.Godoy JM, Padovani CR, Guimarães JR, Pereira JC, Vieira LM, Carvalho ZL, Galdino S (2002) Evaluation of the siltation of River Taquari, Pantanal, Brazil, through 210Pb geochronology of floodplain lake sediments. J Braz Chem Soc 13(1):71–77CrossRef
    76.Hylander LD, Meili M, Oliveira LJ, Castro E, Silva J, Guimarães RD, Araujo DM, Neves RP, Stachiw R, Barros AJP, Silva GD (2000) Relationship of mercury with aluminum, iron and manganese oxy-hydroxides in sediments from the Alto Pantanal, Brazil. Sci Total Environ 260:97–107
    77.Lacerda LD, Salomons W, Pfeiffer WC, Bastos WR (1991) Mercury distribution in sediment profiles from lakes of the high Pantanal, Mato Grosso State, Brazil. Biogeochemistry 14(2):91–97CrossRef
    78.Schultze E, Niederreiter R (1990) Palaolimnologische Untersuchungen an einem Bohrkern aus dem Profundal des Mondsees (Oberosterreich). Linzer Biol Beitr 22:231–235
    79.Zheng Y, Zhou W, Meyers PA, Xie S (2007) Lipid biomarkers in the Zoigê-Hongyuan peat deposit: Indicators of Holocene climate changes in West China. Org Geochem 38(11):1927–1940CrossRef
    80.Zhou W, Zheng Y, Meyers PA, Jull AJ, Xie S (2010) Postglacial climate-change record in biomarker lipid compositions of the Hani peat sequence, Northeastern China. Earth Planet Sci Lett 294(1):37–46CrossRef
    81.Bergier, I., 2010. River level sensitivity to SOI and NAO in Pantanal and Amazonia. 30. Simpósio de Geotecnologias do Pantanal
    82.Soares AP, Soares PC, Assine ML (2003) Areiais e lagoas do Pantanal, Brasil: herança paleoclimática? Braz J Geol 33(2):211–224
    83.Gierlowski-Kordesch E, Finkelstein DB, Holland JJT, Kallini KD (2013) Carbonate lake deposits associated with distal siliciclastic perennial-river systems. J Sediment Res 83(12):1114–1129CrossRef
    84.Soreghan GS, Cohen AS (2013) Scientific drilling and the evolution of the earth system: climate, biota, biogeochemistry and extreme systems. Sci Drill 16:63–72CrossRef
    85.Adrian R, O’Reilly CM, Zagarese H, Baines SB, Hessen DO, Keller W, Livingstone DM, Winder M (2009) Lakes as sentinels of climate change. Limnol Oceanogr 54(6):2283CrossRef
    86.Williamson CE, Saros JE, Vincent WF, Smol JP (2009) Lakes and reservoirs as sentinels, integrators, and regulators of climate change. Limnol Oceanogr 54(6):2273CrossRef
    87.Pacheco EB, Da-Silva CJ (2009) Fish associated with aquatic macrophytes in the Chacororé-Sinhá Mariana lake system and Mutum River, Pantanal of Mato Grosso, Brazil. Braz J Biol 69(1):101–108CrossRef
  • 作者单位:Michael M. McGlue (5)
    Aguinaldo Silva (6)
    Mario L. Assine (7)
    José C. Stevaux (7)
    Fabiano do Nascimento Pupim (8)

    5. Department of Earth and Environmental Sciences, University of Kentucky, Lexington, KY, 40506, USA
    6. Department of Geography, Federal University of Mato Grosso do Sul, Corumbá, Brazil
    7. Applied Geology Department, Geosciences and Exact Sciences Institute, Paulista State University, Av. 24A, 1515, Rio Claro, 13506-900, Brazil
    8. Geosciences Institute, University of São Paulo (USP), Rua do Lago, 562, São Paulo, 05508-080, Brazil
  • 丛书名:Dynamics of the Pantanal Wetland in South America
  • ISBN:978-3-319-18735-8
  • 刊物类别:Earth and Environmen
  • 刊物主题:Environment
    Waste Water Technology, Water Pollution Control, Water Management and Aquatic Pollution
    Geoecology and Natural Processes
    Monitoring, Environmental Analysis and Environmental Ecotoxicology
    Atmospheric Protection, Air Quality Control and Air Pollution
    Environmental Management
  • 出版者:Springer Berlin / Heidelberg
文摘
In spite of its global significance to biodiversity and biogeochemical cycles (e.g., as a methane source and carbon dioxide sink), the Pantanal of western Brazil remains underexplored from the perspective of Quaternary paleoecology, paleogeography, and paleoclimatology. Long in the scientific and cultural shadow cast by the Amazon Basin, recent research using lake sediment cores from different sites across the Pantanal lowlands has provided a glimpse at the sensitivity of this savanna floodplain wetland to climate-driven perturbations in the hydrologic cycle. Understanding the controls and feedbacks associated with this sensitivity is important, as the Pantanal is a critical freshwater resource situated in the headwaters of the immense Río de la Plata Basin. Published lake sediment archives have adopted a multi-indicator analytical approach, focusing on physical sedimentology, geochemistry, palynology, and siliceous microfossils. Such studies extend in time from the late Pleistocene to the present day, with the greatest emphasis placed on reconstruction of the Holocene environmental history. Several important transitions in effective precipitation have been inferred for the Holocene, which appear to be dominantly linked to variability in insolation and the South American Summer Monsoon system. By contrast, evidence of aridity in the Pantanal during the Last Glacial Maximum suggests that the wetlands also respond in a complex manner to Northern Hemisphere ice volume and that insolation forcing alone fails to fully explain patterns of environmental change. The great diversity of lacustrine ecosystems in the Pantanal warrant additional study and hold the potential to broaden our understanding of the response of tropical wetlands to global change. Such insights will be valuable for conservation planning, resource security, and sustainable management.

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