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Late Quaternary Vegetational Changes in a Marsh Forest in Southeastern Brazil with Comments on Prehistoric Human Occupation

Published online by Cambridge University Press:  23 February 2016

Walter Mareschi Bissa*
Affiliation:
University of SÃo Paulo (USP) Museu de Arqueologia/Etnologia, Av. Prof. Almeida Prado, 1466, SÃo Paulo, CEP 05508-070, SP, Brazil
Mauro B de Toledo
Affiliation:
Geology Department, Universidade Federal Fluminense (UFF), Instituto de Geociencias, 4° andar, Av. Gal. Milton Tavares de Souza s/n, Gragotá, Niterói, RJ 24.210-346, Brazil
*
Corresponding author. Email: walbissa@gmail.com.

Abstract

This article presents a palynological study carried out on a sediment core from a peat deposit in Serra de Botucatu, in SÃo Paulo State, southeastern Brazilian Plateau. This region has been covered by grassland vegetation and forest patches throughout the recorded period. AMS radiocarbon dating plus palynological analysis of 27 samples from the sediment core allowed the recognition of several environmental changes that took place during the last 33,000 yr recorded in the core. The relationship between sedimentation rates and changes in the abundance of plants recognized through their pollen record, particularly a few important indicator species, provided the paleoenvironmental history for the Serra de Botucatu region, allowing the identification of changes in climate conditions and comparison with other regions in Brazil. One of the most remarkable features of this record is the cold and humid conditions during the Last Glacial Maximum, which diverges from previous interpretations for southeastern and southern Brazil but is in good agreement with paleoclimatic data from trace elements from cave stalagmites in SE Brazil. No indications of human impacts on the vegetation were found in this record.

Type
Articles
Copyright
Copyright © 2015 The Arizona Board of Regents on behalf of the University of Arizona 

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References

Absy, ML. 1975. Polén e esporos do Quaternário de Santos (Brasil). Hoehnea 5:126.Google Scholar
Absy, ML. 1979. Palynological study of Holocene sediments in the Amazon Basin [PhD thesis]. University of Amsterdam. 102 p.Google Scholar
Araujo, AGM. 2001. Arqueologia da região de Rio Claro: uma síntese. Revista do Museu de Arqueologia e Etnologia da Universidade de São Paulo 11:125–40.Google Scholar
Araujo, AGM, Neves, WA, Piló, LB, Atui, JPV. 2005. Holocene dryness and human occupation in South America during the “Archaic Gap.” Quaternary Research 64(3):298307.CrossRefGoogle Scholar
Behling, H. 1995. Investigations into the Late Pleistocene and Holocene history of vegetation and climate in Santa Catarina (S Brazil). Vegetation History and Archaeobotany 4(3):127–52.Google Scholar
Behling, H. 1997. Late Quaternary vegetation, climate and fire history of the Araucaria forest and campos region from Serra Campos Gerais, Parana State (South Brazil). Review of Palaeobotany and Palynology 97(1):109–21.CrossRefGoogle Scholar
Behling, H. 1998. Late Quaternary vegetational and climatic changes in Brazil. Review of Palaeobotany and Palynology 99(2):143–56.Google Scholar
Behling, H. 2002. South and southeast Brazilian grasslands during Late Quaternary times: a synthesis. Palaeogeography, Palaeoclimatology, Palaeoecology 177(1–2):1927.Google Scholar
Behling, H. 2007. Late Quaternary vegetation, fire and climate dynamics of Serra do Araçatuba in Atlantic coastal mountains of Paraná State, southern Brazil. Vegetation History and Archaeobotany 16(2–3):7785.CrossRefGoogle Scholar
Behling, H, Lichte, M. 1997. Evidence of dry and cold climatic conditions at glacial times in tropical Southeastern Brazil. Quaternary Research 48(3):348–58.Google Scholar
Behling, H, Lichte, M, Miklos, AW. 1998. Evidence of a forest free landscape under dry and cold climatic conditions during the last glacial maximum in the Botucatú region (São Paulo State), southeast Brazil. Quaternary of South America and Antarctic Peninsula 11:99110.Google Scholar
Behling, H, DePatta Pillar, V, Orlóci, L, Bauermann, SG. 2004. Late Quaternary Araucaria forest, grassland (Campos), fire and climate dynamics, studied by high-resolution pollen, charcoal and multivariate analysis of the Cambará do Sul core in southern Brazil. Palaeogeography, Palaeoclimatology, Palaeoecology 203(3–4):277–97.CrossRefGoogle Scholar
Bissa, WM, Mantovani, W. 1995. Recursos potenciais de grupos caçadores-coletores do médio Rio Ribeira (SP). Revista do Museu de Arqueologia e Etnologia, São Paulo 5:117–24.Google Scholar
Bradley, RS. 1999. Paleoclimatology. Reconstructing Climates of the Quaternary. 2nd edition. Amsterdam: Elsevier.Google Scholar
Bradshaw, RHW. 1994. Quaternary terrestrial sediments and spatial scale: the limits to interpretation. In: Traverse, A, editor. Sedimentation of Organic Particles. Cambridge: Cambridge University Press. p 239–52.Google Scholar
Bush, MB. 2002. On the interpretation of fossil Poaceae pollen in the humid lowland neotropics. Palaeogeography, Palaeoclimatology, Palaeoecology 177(1–2):517.CrossRefGoogle Scholar
Catharino, ELM, Ribeiro, W. 1997. Environmental Recovery Plan of the Rio do Peixe (Diagnosis of Vegetative Cover). Rio de Janeiro: Brazilian Foundation for Sustainable Development Report 44.Google Scholar
Colinvaux, PA, De Oliveira, PE, Patino, JEM. 1999. Amazon Pollen Manual and Atlas. Volume 1. New York: Harwood Academic.Google Scholar
Colinvaux, PA, De Oliveira, PE, Bush, MB. 2000. Amazon and neotropical plant communities on glacial time scales: the failure of the aridity and refuge hypotheses. Quaternary Science Reviews 19(1):141–69.Google Scholar
Cruz, FW, Burns, SJ, Jercinovic, M, Karmann, I, Sharp, WD, Vuille, M. 2007. Evidence of rainfall variations in southern Brazil from trace element ratios (Mg/Ca and Sr/Ca) in a Late Pleistocene stalagmite. Geochimica et Cosmochimica Acta 71(9):2250–63.Google Scholar
de Almeida, FFM. 1964. Geologia do Estado de São Paulo. Fundamentos Geológicos do Relevo Paulista . Cuestas Basálticas – Boletim IGG 41:167263.Google Scholar
De Oliveira, PE. 1992. A palynological record of the Late Quaternary vegetation and climate changes in southeastern Brazil [PhD thesis]. Columbus: Ohio State University.Google Scholar
De Oliveira, PE, Behling, H, Ledru, M-P, Barberi, M, Bush, M, Salgado-Labouriau, ML, Garcia, MJ, Medeanic, S, Barth, OM, Barros, MA, Scheel-Ybert, R. 2005. Paleovegetação e paleoclimas do Quaternário do Brasil. Capítulo 3. In: Souza, CRG, Suguio, K, Oliveira, AMS, De Oliveira, PE, editors. Quaternário do Brasil. São Paulo: Holos Editora, Ribeirão Preto. p 5274.Google Scholar
Faegri, K, Iversen, P. 1989. A Textbook of Modern Pollen Analysis. 4th edition. New York: John Wiley & Sons.Google Scholar
Finkl, CW, Khalil, SM. 2005. Vibracore. In: Schwartz, M, editor. The Encyclopedia of Coastal Science. Dordrecht: Kluwer Academic. p 1272–84.Google Scholar
Garcia, MJ. 1994. Palinologia de turfeiras quaternárias do médio vale do Rio Paraíba do Sul [PhD thesis]. Estado de São Paulo, IG/USP.Google Scholar
Garcia, MJ, De Oliveira, PE, de Siqueira, E, Fernandes, RS. 2004. A Holocene vegetational and climatic record from the Atlantic rainforest belt of coastal State of São Paulo, SE Brazil. Review of Palaeobotany and Palynology 131(3–4):181–99.Google Scholar
Grimm, EC. 1987. CONISS: a Fortran 77 program for stratigraphically constrained cluster analysis by the method of the incremental sum of squares. Computers & Geosciences 13(1):1335.Google Scholar
Grootes, PM, Nadeau, M-J, Rieck, A. 2004. 14C-AMS at the Leibniz-Labor: radiometric dating and isotope research. Nuclear Instruments and Methods in Physics Research 223-224:5561.Google Scholar
Hooghiemstra, H. 1984. The Quaternary of Colômbia. Dissertaciones Botanicae. Band 79(10). 368 p.Google Scholar
Horák, I. 2009. Relações pedológicas, isotópicas e palinológicas na reconstituição paleoambiental da turfeira da Área de Proteção Especial (APE) Paude-Fruta, Serra do Espinhaço Meridional, MG [Master's thesis]. ESALQ.Google Scholar
IBGE (Fundação Instituto Brasileiro de Geografia e Estatística). 1992. Manual Técnico da Vegetação Brasileira. Rio de Janeiro. Série Manuais Técnicos em Geociências 1. 92 p.Google Scholar
Ledru, M-P, Salgado-Labouriau, ML, Lorscheitter, ML. 1998. Vegetation dynamics in southern and central Brazil during the last 10,000 yr BP. Review of Palaeobotany and Palynology 99(2):131–42.CrossRefGoogle Scholar
Leonhardt, A, Lorscheitter, ML. 2010. The last 25,000 years in the Eastern Plateau of Southern Brazil according to Alpes de São Francisco record. Journal of South American Earth Sciences 29:454–63.CrossRefGoogle Scholar
Lorenzi, H. 1991. Plantas daninhas do Brasil: Terrestres, aquáticas, parasitas, tóxicas e medicinais. Nova Odessa: Ed. Plantarum.Google Scholar
Luz, CFP, Barth, OM. 2000. Palinomorfos indicadores de tipos de vegetação em sedimentos holocênicos da lagoa de Cima, norte do Estado do Rio de Janeiro, Brasil – Dicotyledoneae. Leandra 15:1134.Google Scholar
Marchant, M, Almeida, L, Behling, H, Berrio, JC, Bush, M, Cleef, A, Duivenvoorden, J, Kappelle, M, De Oliveira, P, Oliveira-Filho, AT, Lozano-Garcia, S, Hooghiemstra, H, Ledru, P, Ludlow-Wiechers, B, Markgraf, V, Mancini, V, Paez, M, Prieto, A, Rangel, O, Salgado-Labouriau, ML. 2002. Distribution and ecology of parent taxa of pollen lodged within the Latin American Pollen Database. Review of Palaeobotany and Palynology 121:175.CrossRefGoogle Scholar
Morais, JL. 2000. Arqueologia da Região Sudeste. Revista USP 44:194217.Google Scholar
Moro, RS, de Mattos Bicudo, CE, de Melo, MS, Schmitt, J. 2004. Paleoclimate of the Late Pleistocene and Holocene at Lagoa Dourada, Paraná State, southern Brazil. Quaternary International 114(1):8799.Google Scholar
Neves, PCP, Lorscheitter, M. 1995. Palinologia de sedimentos de uma mata tropical paludosa (Terra de Areia, Planície costeira norte, Rio Grande do Sul, Brasil). Descrições taxonômicas – parte II: Gimnospermas e Angiospermas. Acta Geológica Leopoldensia 41(18):4582.Google Scholar
Noelli, FS. 2000. A ocupação humana na região sul do Brasil: arqueologia, debates e perspectivas 1872/2000. Revista USP 44(2):218–69.Google Scholar
Parolin, M, Medeanic, S, Stevaux, JC. 2006. Registros palinologicos e mudanças ambientais durante o Holoceno de Taquarussu (MS). Revista Brasileira de Paleontologia 9(1):137–48.CrossRefGoogle Scholar
Pessenda, LCR, Ledru, MP, Gouveia, SEM, Aravena, R, Ribeiro, AS, Bendassolli, JA, Boulet, R. 2005. Holocene palaeoenvironmental reconstruction in northeastern Brazil inferred from pollen, charcoal and carbon isotope records. The Holocene 15(6):814–22.CrossRefGoogle Scholar
Pessenda, LCR, De Oliveira, PE, Mofatto, M, Medeiros, VB, Garcia, RJF, Aravena, R, Bendassoli, A, Leite, AZ, Saad, AR, Etchebehere, ML. 2009. The evolution of a tropical rainforest/grassland mosaic in southeastern Brazil since 28,000 14C yr BP based on carbon isotopes and pollen records. Quaternary Research 71(3):437–52.Google Scholar
Raczka, MF, De Oliveira, PE, Bush, M, McMichael, CH. 2013. Two paleoecological histories spanning the period of human settlement in southeastern Brazil. Journal of Quaternary Science 28(2):144–51.Google Scholar
Reimer, PJ, Bard, E, Bayliss, A, Beck, JW, Blackwell, PG, Bronk Ramsey, C, Buck, CE, Cheng, H, Edwards, RL, Friedrich, M, Grootes, PM, Guilderson, TP, Haflidason, H, Hajdas, I, Hatté, C, Heaton, TJ, Hoffman, DL, Hogg, AG, Hughen, KA, Kaiser, KF, Kromer, B, Manning, SW, Niu, M, Reimer, RW, Richards, DA, Scott, EM, Southon, JR, Staff, RA, Turney, CSM, van der Plicht, J. 2013. IntCal13 and Marine13 radiocarbon age calibration curves 0–50,000 years cal BP. Radiocarbon 55(4):1869–87.Google Scholar
Roubik, DW, Moreno, JL. 1991. Pollen and spores of Barro Colorado Island. Monographs in Systematic Botany 36. Panamá: Ed. Missouri Botanical Garden.Google Scholar
Santos, FG. 2009. The most ancient inhabitants of the west-center region of São Paulo State. Mimesis 30(1):2559.Google Scholar
Santos, FG. 2013. Abordagem teórica sobre o estudo de sítios líticos no interior do Estado de São Paulo, Brasil. Techne 1:3949.Google Scholar
Scheel-Ybert, R. 2001. Man and vegetation in the southeastern Brazil during the Late Holocene. Journal Archaeological Science 28(5):471–80.CrossRefGoogle Scholar
Scherer, C, Lorscheitter, ML. 2014. Vegetation dynamics in the southern Brazilian highlands during the last millennia and the role of bogs in Araucaria forest formation. Quaternary International 325:312.Google Scholar
Setzer, J. 1966. Atlas climático e ecológico do estado de São Paulo. São Paulo: Comissão Interestadual da Bacia do Paraná-Uruguai, CESP.Google Scholar
Silva, RB. 1983. Estudo hidroquímico e isotópico das águas subterrâneas do aqüífero Botucatu no estado de São Paulo [PhD thesis]. IG/USP.CrossRefGoogle Scholar
Stockmarr, J. 1971. Tablets with spores used in absolute pollen analysis. Pollen et Spores 13:615–21.Google Scholar
Stuiver, M, Reimer, PJ. 1993. Extended 14C data base and revised CALIB 3.0 14C calibration program. Radiocarbon 35(1):215–30.Google Scholar
van Geel, B, van der Hammen, T. 1978. Zygnemataceae in Quaternary Colombian sediments. Review of Palaeobotany and Palynology 25:377–92.CrossRefGoogle Scholar
Webb, T III. 1991. The spectrum of temporal climatic variability: current estimates and the need for global and regional time series. In: Bradley, RS, editor. Global Changes of the Past. Boulder University Corporation for Atmospheric Research. p 6182.Google Scholar
Ybert, J-P. 1979. Atlas de Pollens de Cote D'Ivoire. IRD Editions. 39 p.Google Scholar
Ybert, J-P, Salgado-Labouriau, ML, Barth, OM, Lorscheitter, ML, Barros, MA, Chaves, SAM, Luz, CFP, Ribeiro, M, Scheel, R, Vicentini, KF. 1992. Sugestões para padronização da metodologia empregada em estudos palinológicos do Quaternário. Revista do Instituto Geológico 13(2):47–9.Google Scholar
Ybert, J-P, Bissa, WM, Catharino, ELM, Kutner, M. 2003. Environmental and sea level variations on the southeastern Brazilian coast during the Late Holocene with comments on prehistoric human occupation. Palaeogeography, Palaeoclimatology, Palaeoecology 189(1–2):1124.Google Scholar