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Spatial phylogenetics reveals evolutionary constraints on the assembly of a large regional flora

生物 系统发育学 菌群(微生物学) 进化生物学 生态学 古生物学 遗传学 细菌 基因
作者
Daniel Spalink,Ricardo Kriebel,Pan Li,Matthew C. Pace,Bryan T. Drew,John G. Zaborsky,Jeffrey P. Rose,Chloe P. Drummond,Mary Ann Feist,William S. Alverson,Donald M. Waller,Kenneth M. Cameron,Thomas J. Givnish,Kenneth J. Sytsma
出处
期刊:American Journal of Botany [Wiley]
卷期号:105 (11): 1938-1950 被引量:27
标识
DOI:10.1002/ajb2.1191
摘要

Premise of the Study We used spatial phylogenetics to analyze the assembly of the Wisconsin flora, linking processes of dispersal and niche evolution to spatial patterns of floristic and phylogenetic diversity and testing whether phylogenetic niche conservatism can account for these patterns. Methods We used digitized records and a new molecular phylogeny for 93% of vascular plants in Wisconsin to estimate spatial variation in species richness and phylogenetic α and β diversity in a native flora shaped mainly by postglacial dispersal and response to environmental gradients. We developed distribution models for all species and used these to infer fine‐scale variation in potential diversity, phylogenetic distance, and interspecific range overlaps. We identified 11 bioregions based on floristic composition, mapped areas of neo‐ and paleo‐endemism to establish new conservation priorities and predict how community‐assembly patterns should shift with climatic change. Key Results Spatial phylogenetic turnover most strongly reflects differences in temperature and spatial distance. For all vascular plants, assemblages shift from phylogenetically clustered to overdispersed northward, contrary to most other studies. This pattern is lost for angiosperms alone, illustrating the importance of phylogenetic scale. Conclusions Species ranges and assemblage composition appear driven primarily by phylogenetic niche conservatism. Closely related species are ecologically similar and occupy similar territories. The average level and geographic structure of plant phylogenetic diversity within Wisconsin are expected to greatly decline over the next half century, while potential species richness will increase throughout the state. Our methods can be applied to allochthonous communities throughout the world.

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