4.7 Article

A novel expert-driven methodology to develop thermal response curves and project habitat thermal suitability for cetaceans under a changing climate

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SCIENCE OF THE TOTAL ENVIRONMENT
卷 860, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.scitotenv.2022.160376

关键词

Climate change; Marine mammals; Macaronesia; Thermal suitability; Expert elicitation; Conservation management

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Global warming has caused changes in marine species composition, abundance, and distribution. We developed a method using expert-derived thermal suitability curves to predict future responses of cetacean species under different climate scenarios. This study provides a cost-efficient tool to support conservation efforts.
Over the last decades, global warming has contributed to changes in marine species composition, abundance and dis-tribution, in response to changes in oceanographic conditions such as temperature, acidification, and deoxygenation. Experimentally derived thermal limits, which are known to be related to observed latitudinal ranges, have been used to assess variations in species distribution patterns. However, such experiments cannot be undertaken on free-swimming large marine predators with wide-range distribution, like cetaceans. An alternative approach is to elicit expert's knowl-edge to derive species' thermal suitability and assess their thermal responses, something that has never been tested in these taxa. We developed and applied a methodology based on expert-derived thermal suitability curves and projected future responses for several species under different climate scenarios. We tested this approach with ten cetacean spe-cies currently present in the biogeographic area of Macaronesia (North Atlantic) under Representative Concentration Pathways 2.6, 4.5 and 8.5, until 2050. Overall, increases in annual thermal suitability were found for Balaenoptera edeni, Globicephala macrorhynchus, Mesoplodon densirostris, Physeter macrocephalus, Stenella frontalis, Tursiops truncatus and Ziphius cavirostris. Conversely, our results indicated a decline in thermal suitability for B. physalus, Delphinus delphis, and Grampus griseus. Our study reveals potential responses in cetaceans' thermal suitability, and potentially in other highly mobile and large predators, and it tests this method's applicability, which is a novel application for this purpose and group of species. It aims to be a cost-efficient tool to support conservation managers and practitioners.

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