COMPARATIVE PALEOECOLOGY OF PALEOGENE AND NEOGENE MAMMALIAN FAUNAS - BODY-SIZE STRUCTURE

被引:36
作者
MORGAN, ME
BADGLEY, C
GUNNELL, GF
GINGERICH, PD
KAPPELMAN, JW
MAAS, MC
机构
[1] UNIV MICHIGAN, MUSEUM PALEONTOL, ANN ARBOR, MI 48109 USA
[2] UNIV TEXAS, DEPT ANTHROPOL, AUSTIN, TX 78712 USA
[3] DUKE UNIV, MED CTR, DEPT BIOL ANTHROPOL & ANAT, DURHAM, NC 27710 USA
基金
美国国家科学基金会;
关键词
D O I
10.1016/0031-0182(94)00116-P
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
Species size is correlated with many aspects of life history, ecology, and behavior, which means that size changes within species, lineages, and faunas represent an important component of evolutionary paleoecology. Comparison of Paleogene mammalian faunas from the Bighorn, Clarks Fork, and Crazy Mountains basins of Wyoming and Montana with Neogene mammalian faunas from the Siwalik Group of northern Pakistan reveals similarities and differences in patterns of size change through intervals of 10 m.y. Two approaches to size change are presented. The first is to evaluate changes in the size distribution of faunas over three time intervals in each sequence. Rank-ordered size distributions, or cenograms, are used to depict faunal size structure for non-carnivorous species. The slopes and gaps in different regions of the size spectrum reflect conditions of vegetation and climate, by analogy with modern mammalian faunas (Legendre, 1986, 1989). For the Paleogene and Neogene faunas, subtle changes over time in size structure reflect changes in local vegetation and climate. The Paleogene cenograms suggest a habitat shift from mesic to humid forest, and the Neogene cenograms suggest a shift from open woodland to savannah scrub. These interpretations are supported by concurrent changes in trophic structure, faunal turnover, and in floral and geologic indicators. The second approach focuses on size change within species and lineages in several families of predominantly herbivorous species. For 60 Paleogene species and 39 Neogene species, change in average species size over successive biostratigraphic intervals is assessed by a criterion of doubling or halving of body mass relative to the preceding interval. New occurrences are compared to established species of the same genus and of the same family. In both records, size increases occur slightly more often than size decreases. The size distribution of groups changes more often through appearances of species of more than double or less than half the size of established species of the same group or by disappearances, rather than through rapid change of size within species. The pattern of change in median size and size range of contemporaneous species varies among families in both records. Three causes of evolutionary size change-climatic change, competition, and predation-are evaluated. In both records, climatic change and interspecific competition are considered the principle mechanisms for the observed changes.
引用
收藏
页码:287 / 317
页数:31
相关论文
共 91 条
[1]  
Andrews, Lord, Nesbit-Evans, Patterns of ecological diversity in fossil and modern mammalian faunas, Biol. J. Linn. Soc., 11, pp. 177-205, (1979)
[2]  
Archibald, Structure of the K T mammal radiation in North America: Speculations on turnover rates and trophic structure, Acta Paleontol. Pol., 28, pp. 7-17, (1983)
[3]  
Badgley, Taphonomy of mammalian fossil remains from Siwalik rocks of Pakistan, Paleobiology, 12, pp. 119-142, (1986)
[4]  
Badgley, Behrensmeyer, Paleoecology of Middle Siwalik sediments and faunas, northern Pakistan, Palaeogeogr. Palaeoclimatol. Palaeoecol., 30, pp. 133-155, (1980)
[5]  
Badgley, Bartels, Morgan, Behrensmeyer, Raza, Taphonomy of vertebrate assemblages from the Paleogene of northwest Wyoming and the Neogene of northern Pakistan, Palaeogeogr. Palaeoclimatol. Palaeoecol., 115, pp. 157-180, (1995)
[6]  
Barry, Flynn, Pilbeam, Faunal diversity and turnover in a Miocene terrestrial sequence, Causes of Evolution: A Paleontological Perspective, pp. 381-422, (1990)
[7]  
Barry, Morgan, Winkler, Flynn, Lindsay, Jacobs, Pilbeam, Faunal interchange and Miocene terrestrial vertebrates of southern Asia, Paleobiology, 17, pp. 231-245, (1991)
[8]  
Barry, Morgan, Flynn, Pilbeam, Jacobs, Lindsay, Raza, Solounias, Patterns of faunal turnover and diversity in the Neogene Siwaliks of northern Pakistan, Palaeogeogr. Palaeoclimatol. Palaeoecol., 115, pp. 209-226, (1995)
[9]  
Behrensmeyer, Vertebrate preservation in fluvial channels, Palaeogeogr. Palaeoclimatol. Palaeoecol., 63, pp. 183-199, (1988)
[10]  
Benton, Dinosaur success in the Triassic: a noncompetitive ecological model, Quat. Rev. Biol., 58, pp. 29-55, (1983)