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. 2016 Jun 7;113(23):6388-96.
doi: 10.1073/pnas.1525200113.

Ecological consequences of human niche construction: Examining long-term anthropogenic shaping of global species distributions

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Ecological consequences of human niche construction: Examining long-term anthropogenic shaping of global species distributions

Nicole L Boivin et al. Proc Natl Acad Sci U S A. .

Abstract

The exhibition of increasingly intensive and complex niche construction behaviors through time is a key feature of human evolution, culminating in the advanced capacity for ecosystem engineering exhibited by Homo sapiens A crucial outcome of such behaviors has been the dramatic reshaping of the global biosphere, a transformation whose early origins are increasingly apparent from cumulative archaeological and paleoecological datasets. Such data suggest that, by the Late Pleistocene, humans had begun to engage in activities that have led to alterations in the distributions of a vast array of species across most, if not all, taxonomic groups. Changes to biodiversity have included extinctions, extirpations, and shifts in species composition, diversity, and community structure. We outline key examples of these changes, highlighting findings from the study of new datasets, like ancient DNA (aDNA), stable isotopes, and microfossils, as well as the application of new statistical and computational methods to datasets that have accumulated significantly in recent decades. We focus on four major phases that witnessed broad anthropogenic alterations to biodiversity-the Late Pleistocene global human expansion, the Neolithic spread of agriculture, the era of island colonization, and the emergence of early urbanized societies and commercial networks. Archaeological evidence documents millennia of anthropogenic transformations that have created novel ecosystems around the world. This record has implications for ecological and evolutionary research, conservation strategies, and the maintenance of ecosystem services, pointing to a significant need for broader cross-disciplinary engagement between archaeology and the biological and environmental sciences.

Keywords: Anthropocene; biodiversity; extinctions; invasive species; novel ecosystems.

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Conflict of interest statement

The authors declare no conflict of interest.

Figures

Fig. 1.
Fig. 1.
Case studies in the application of archaeological science methods to understand past human-mediated biological translocations and transformations relating to the following: global colonization, origins and spread of food production, island colonization, and trade and urbanization (–18).
Fig. S1.
Fig. S1.
Proportions of megafauna known to be extinct in each region of the globe relative to the length of coevolution and contact with humans (genus Homo) (adapted from figure 1C in ref. 39 and figure 1 in ref. 40). The numbers next to each pie chart indicate the total number of megafauna genera originally present within each region.
Fig. 2.
Fig. 2.
Cascade effects of changes to species, showing long-term transformation of landscapes. (A) Impact of eliminating large herbivores (49). (B) Long-term effects of ancient agriculture on soil geochemistry and plant biodiversity in forests (–52). (C) Limnological responses to cultural disturbance of lake watershed (53, 54).
Fig. 3.
Fig. 3.
Global spread of selected food crops (red) and domesticated and commensal animals (blue) through time. (A) Wheat (Triticum spp.). (B) Sorghum (Sorghum bicolor). (C) Rice (Oryza sativa, Oryza glaberrima). (D) Cattle (Bos taurus, Bos indicus). (E) Dog (Canis familiaris). (F) Rat (Rattus rattus, Rattus tanezumi, Rattus norvegicus, Rattus exulans). The major spread of rats to global islands beginning by 3 ka is not apparent at the scale shown. (Note that maps use different temporal scales, appropriate to individual species and their temporality of spread; hatching indicates natural distribution.)

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