Incorporating local-scale variables into distribution models enhances predictability for rare plant species with biological dependencies

Biodiversity and Conservation - Tập 28 - Trang 171-182 - 2018
Hsiao-Hsuan Wang1, Carissa L. Wonkka2, Michael L. Treglia3, William E. Grant1, Fred E. Smeins4, William E. Rogers4
1Department of Wildlife and Fisheries Sciences, Texas A&M University, College Station, USA
2Department of Agronomy and Horticulture, University of Nebraska, Lincoln, USA
3New York City Program, The Nature Conservancy, New York, USA
4Department of Ecosystem Science and Management, Texas A&M University, College Station, USA

Tóm tắt

The conservation of rare species is typically challenging because of incomplete knowledge about their biology and distributions. Species distribution models (SDMs) have emerged as an important tool for improving the efficiency of rare species conservation. However, these models must include biologically relevant predictor variables at scales appropriate for discriminating suitable and unsuitable habitat. We used a species distribution modelling tool, maximum entropy (Maxent), to assess the relative influence of biologically relevant topographic characteristics, land cover features, geological formations, and edaphic factors on the occurrence of the endangered endemic orchid Spiranthes parksii (Navasota ladies’ tresses). Our final model produced an excellent AUC value (0.984), with the permutation importance to model fit of predictor variables representing topographic characteristics, land cover features, geological formations, and edaphic factors summing to 8.17, 35.12, 10.43, and 46.28%, respectively. Local-scale edaphic variables were the most informative, with soil taxonomic units explaining the highest amount of variance (36.40%) of all variables included in the model. These results document the importance of local edaphic characteristics in discriminating between suitable and unsuitable habitat for S. parksii, and emphasize the importance of including local-scale edaphic factors in SDMs for species such as S. parksii with specialized habitat requirements and close relationships with other organisms.

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