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Direct evidence for human use of plants 28,000 years ago: starch residues on stone artefacts from the northern Solomon Islands

Published online by Cambridge University Press:  02 January 2015

Thomas H. Loy
Affiliation:
Department of Prehistory, Research School of Pacific Studies, Australian National University, GPO Box 4, Canberra ACT 2601, Australia
Matthew Spriggs
Affiliation:
Department of Prehistory, Research School of Pacific Studies, Australian National University, GPO Box 4, Canberra ACT 2601, Australia
Stephen Wickler
Affiliation:
Department of Anthropology, University of Hawaii at Manoa, Honolulu HI 96822, USA

Extract

The excavation of Kilu Cave and the discovery of a Pleistocene prehistory for the Solomon Islands have already been reported in ANTIQUITY by Wickler & Spriggs (62: 703–6). Residue analysis of stone artefacts from the site now provides the earliest direct evidence for the prehistoric use of root vegetables, in the form of starch grains and crystalline raphides identifiable to genus. The direct microscopic identification of starch grains opens new avenues for the study of the plant component of human diets in the distant past.

Type
Papers
Copyright
Copyright © Antiquity Publications Ltd 1992

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References

Allen, R.N. 1928. Photomicrographs of Philippine starches, Philippine Journal of Science 38 (2):241–58.&10 plates.Google Scholar
Allen, J.,GOSDEN, C. & WHITE, J.P. 1989. Human Pleistocene adaptations in the tropical island Pacific: recent evidence from New Ireland, a Greater Australian outlier, Antiquity 63: 548–61.Google Scholar
Ayensu, E.S. 1972.Anatomy of the monocotyledons 4: Dioscoreales. Oxford: Clarendon Press.Google Scholar
Banks, W. & GREENWOOD, C.T. 1975. Starch and its components. Edinburgh: Edinburgh University Press.Google Scholar
Barrau, J. 1958. GREENWOOD, C.T. 1975. Starch and its components. Honolulu(HI): Bishop Museum Press.B.P. Bishop Museum Bulletin 219.Google Scholar
Barton, H. 1991. Raw material and tool function: a residue and use–wear analysis of artefacts from a Melanesien rocíe shelter, B.A. (Hons.) thesis, Sydney. University of Sydney,Google Scholar
Bradbury, J.H. & HOLLOWAY, W.D. 1988. Chemistry of tropical root crops: significance for nutrition and agriculture in the Pacific. Canberra: Australian Centre for International Agricultural Research.Google Scholar
Brown, P.D. 1988. Residue analysis of stone artifacts fromYambon West New Britain. B.A. (Honours) Thesis, Sydney.University of Sydney,Google Scholar
Bruier, F.L. 1976. New clues to stone tool function: plantand animal residues, American Antiquity 41: 478–84.CrossRefGoogle Scholar
Chandra, S. (ed.) 1984. Edible Aroids.Oxford: Clarendon Press.Google Scholar
Coates, D.J.,YEN, D.E. &GAFFEY, P.M. 1988. Chromosome variations in taro, Colocasia esculenta: implications for origin in the Pacific, Cytologia 53: 551–60.Google Scholar
Collins, D. 1986. Palaeolithic Europe.Tiverton: Clayhanger Books.Google Scholar
Coursey, D.G. 1967. Yams. London: Longmans,Green&Co.Google Scholar
Czaja, A. 1978. Structure of starch grains and theclassification of vascular plant families, Taxon.27 (56): 463–70.CrossRefGoogle Scholar
Deacon, J. 1984. Later Stone Age people and theirdescendants in southern Africa, in Klein (ed.): 221328.Google Scholar
Edwards, P.C. 1989. Revising the broad spectrum revolution and its role in the origins of Southwest Asian food production,Antiquity 63: 225–46.Google Scholar
Fullagar, R. 1986. Use–wear and residues on stone tools: functional analysis and its application to two southeastern Australian archaeological assemblages. Ph.D thesis, Melbourne. La Trohe University,Google Scholar
Fullagar, R. 1988. Recent developments in Australian use–wear and residue studies, in Beyries, S. (ed.),Industries lithiques: traceologie et technologie: 133–45. Oxford: British Archaeological Reports. International series 411.Google Scholar
Ghani, F.D.,LEE, M.H. SULAIMAN, R.B.R. & HAMID, M.S. 1987. Evaluation of local Keladi. (Colocasia esculenta) cultivars, Malaysian Journal of Applied Biology 16 (1)8394.Google Scholar
Griffin, G.J.L. & WANG, J.K. 1983. Industrial uses,in Wang (ed. 301–13.Google Scholar
Hall, J., HIGGINS, S. & FULLAGAR, R. 1989. Plant residues on stone tools,Tempus 1: 136–55.Google Scholar
Johansen, D.A. 1940. Plant microtechnique. 133–45. New York (NY): McGraw–Hill Book Company.Google Scholar
Klein, R.G. 1984. Southern African prehistory and palaeoenvironments. Rotterdam&Boston (MA): Balkema.Google Scholar
Loy, T.H. 1990. Prehistoric organic residues: recent advances in identification, dating and their antiquity, in Wagner, W. & Pernicka, A. (ed.), Archaeometry ’90: Proceedings of the 27th International Symposium on Archaeometry, Heidelberg: 645–56. Basel: Springer Verlag.Google Scholar
Loy, T.H., & NELSON, D.E. 1986. Potential applications of organic residues on ancient tools, in Olin, J. & Blackman, J. (ed.), Proceedings of the 24th Interna-tional Archaeometry Symposium: 179–85. Washington(DC): Smithsonian Institution.Google Scholar
Matthews, P. 1987. Wild taro and the context of cultivation, Aroideana 10 (1): 913.Google Scholar
Mcarthur, M., 1960. Food consumption and dietary levels of groups of Aborigines living on naturally occurring foods, in Mountford, CP. (ed.), Records of the American–Australian scientific expedition to Arnhem Land 2: Anthropology and nutrition: 98112. Melbourne: Melbourne University Press.Google Scholar
Mccorriston, J. & HOLE, F. 1991. The ecology of seasonal stress and the origins of agriculture in the Near East, American Anthropologist 93: 4669.Google Scholar
Murai, M., PEN, F. & MILLER, CD. 1958. Some tropical and Pacific island foods.Honolulu (HI): University of Hawaii Press.CrossRefGoogle Scholar
Opperman, H. & HEYDENRYCH, B. 1990. A 22,000 year–old Middle Stone Age camp site with plant food remains from the north–eastern Cape, South African Archaeological Bulletin 45: 93–9. Melbourne: Melbourne University Press.Google Scholar
Sakai, W.S. 1979. Aroid root crops, acridity and raphides, Tropical Foods 1: 265–78.Google Scholar
Seidemann, J. 1964. Mikroskopische Untersuchung verschiedener, Dioscorea–stärken,Die Stärke 16 (8): 246–53.Google Scholar
Spriggs, M.J.T. 1982. Taro cropping systems in the southeast Asian–Pacific region: archaeological evidence, Archaeology in Oceania 17: 715.Google Scholar
Sunell, L.A. & HEALY, P.L. 1979. Distribution of calcium oxalate crystal idioblasts in corms of taro (Colocasia esculenta), American Journal of Botany 66 (9): 1029–32.Google Scholar
Volman, T.P. 1984. Early prehistory in southern Africa, in Klein, (ed.): 169220.Google Scholar
Wang, J.K. (ed.). 1983. Taro: a review of Colocasia esculenta and its potentials Honolulu (HI): University ofHawaii Press.CrossRefGoogle Scholar
Wendorf, F., SCHILD, R. CLOSE, A.E. HILLMAN, G.C. GAUTIER, A. VAN NEER, W. DONAHUE, D.J. JULL, A.J.T. & LINICK, T.W. 1988. New radiocarbon dates and late Palaeolithic diet at Wadi Kubbaniya,Antiquity 62: 279–83.Google Scholar
Wickler, S. 1990. Prehistoric Melanesian exchange and interaction: recent evidence from the northern Solomon Islands, Asian Perspectives 24 (2): 135–54.Google Scholar
Wickler, S. & SPRIGGS, M.J.T. 1988. leistocene human occupation of the Solomon Islands, Melanesia, Antiquity 62: 703–6.CrossRefGoogle Scholar
Yen, D.E. 1982. The history of cultivated crops, in May, R.J. & Nelson, H. (ed.), Melanesia: beyond diversity 281–95.Canberra: Research School of Pacific Studies, Australian National University.Google Scholar
Zvelebil, M. (ed.). 1986. Hunters in transition: Meso–lithic societies of temperate Eurasia and their transition to farming. Cambridge: Cambridge University Press.Google Scholar