A resilient and connected network of sites to sustain biodiversity under a changing climate

被引:26
|
作者
Anderson, Mark G. [1 ]
Clark, Melissa [1 ]
Olivero, Arlene P. [1 ]
Barnett, Analie R. [2 ]
Hall, Kimberly R. [3 ]
Cornett, Meredith W. [4 ]
Ahlering, Marissa [5 ]
Schindel, Michael [6 ]
Unnasch, Bob [7 ]
Schloss, Carrie [8 ]
Cameron, D. Richard [8 ]
机构
[1] Nature Conservancy, Ctr Resilient Conservat Sci, Boston, MA USA
[2] Nature Conservancy, Ctr Resilient Conservat Sci, Atlanta, GA 30307 USA
[3] Nature Conservancy, LANDFIRE, Lansing, MI 48906 USA
[4] Minnesota Field Off, Nat Conservancy, Duluth, MN 55803 USA
[5] Minnesota Field Off, Nat Conservancy, Moorhead, MN 56560 USA
[6] Nature Conservancy, Oregon Field Off, Portland, OR 97214 USA
[7] Idaho Field Off, Nat Conservancy, Hailey, ID 83333 USA
[8] California Field Off, Nat Conservancy, San Francisco, CA 94105 USA
基金
美国海洋和大气管理局;
关键词
biodiversity; connectivity; resilience; conservation; climate change; CONSERVING BIODIVERSITY; EXTINCTION RISK; PLANT; CONSERVATION; CHALLENGES; RESPONSES; NORTH; COMMUNITIES; POPULATIONS; DECLINE;
D O I
10.1073/pnas.2204434119
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Motivated by declines in biodiversity exacerbated by climate change, we identified a network of conservation sites designed to provide resilient habitat for species, while supporting dynamic shifts in ranges and changes in ecosystem composition. Our 12-y study involved 289 scientists in 14 study regions across the conterminous United States (CONUS), and our intent was to support local-, regional-, and national-scale conservation decisions. To ensure that the network represented all species and ecosystems, we stratified CONUS into 68 ecoregions, and, within each, we comprehensively mapped the geophysical settings associated with current ecosystem and species distributions. To identify sites most resilient to climate change, we identified the portion of each geophysical setting with the most topoclimate variability (high landscape diversity) likely to be accessible to dispersers (high local connectedness). These "resilient sites" were overlaid with conservation priority maps from 104 independent assessments to indicate current value in supporting recognized biodiversity. To identify key connectivity areas for sustaining species movement in response to climate change, we codeveloped a fine-scale representation of human modification and ran a circuit-theory-based analysis that emphasized movement potential along geographic climate gradients. Integrating areas with high values for two or more factors, we identified a representative, resilient, and connected network of biodiverse lands covering 35% of CONUS. Because the network connects climatic gradients across 250,000 biodiversity elements and multiple resilient examples of all geophysical settings in every ecoregion, it could form the spatial foundation for targeted land protection and other conservation strategies to sustain a diverse, dynamic, and adaptive world.
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页数:9
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