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Reduction in landscape connectivity due changes in land use or development is expected to act synergistically with alterations to habitat mosaic configuration arising from climate change. We illustrate a multiscale connectivity framework to aid habitat conservation prioritization in the context of changing land use and climate. Our approach, which builds upon the strengths of multiple landscape connectivity methods, including graph theory, circuit theory, and least\u2010cost path analysis, is here applied to the conservation planning requirements of the Mohave ground squirrel. The distribution of this threatened Californian species, as for numerous other desert species, overlaps with the proposed placement of several utility\u2010scale renewable energy developments in the American southwest. Our approach uses information derived at three spatial scales to forecast potential changes in habitat connectivity under various scenarios of energy development and climate change. By disentangling the potential effects of habitat loss and fragmentation across multiple scales, we identify priority conservation areas for both core habitat and critical corridor or stepping stone habitats. This approach is a first step toward applying graph theory to analyze habitat connectivity for species with continuously distributed habitat and should be applicable across a broad range of taxa.<\/jats:p>","DOI":"10.1890\/15-0925","type":"journal-article","created":{"date-parts":[[2016,5,25]],"date-time":"2016-05-25T15:09:35Z","timestamp":1464188975000},"page":"1223-1237","source":"Crossref","is-referenced-by-count":94,"title":["Multiscale connectivity and graph theory highlight critical areas for conservation under climate change"],"prefix":"10.1002","volume":"26","author":[{"given":"Thomas E.","family":"Dilts","sequence":"first","affiliation":[{"name":"Department of Natural Resources and Environmental Science University of Nevada Reno 1664\u00a0N. 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