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January 12, 2012Science1,724 citationsOpen Access

Plant Species Richness and Ecosystem Multifunctionality in Global Drylands

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FMFernando T. MaestreJQJosé L. QueroNGNicholas J. Gotelli

Key Points

  • To assess the empirical relationship between plant species richness, abiotic drivers, and ecosystem multifunctionality across global natural dryland ecosystems.
  • Conducted a global empirical field assessment across drylands representing 41% of Earth's land surface.
  • Modeled multifunctionality—integrating carbon storage, productivity, and nutrient pool accumulation—against plant species richness and abiotic variables.
  • Ecosystem multifunctionality showed a statistically significant positive relationship with plant species richness.
  • The best-fitting statistical models accounted for over 55% of the total variation in multifunctionality and consistently included plant species richness as an essential predictor.

Abstract

Experiments suggest that biodiversity enhances the ability of ecosystems to maintain multiple functions, such as carbon storage, productivity, and the buildup of nutrient pools (multifunctionality). However, the relationship between biodiversity and multifunctionality has never been assessed globally in natural ecosystems. We report here on a global empirical study relating plant species richness and abiotic factors to multifunctionality in drylands, which collectively cover 41% of Earth's land surface and support over 38% of the human population. Multifunctionality was positively and significantly related to species richness. The best-fitting models accounted for over 55% of the variation in multifunctionality and always included species richness as a predictor variable. Our results suggest that the preservation of plant biodiversity is crucial to buffer negative effects of climate change and desertification in drylands.

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Cite This Study

Maestre et al. (2012) studied this question.

synapsesocial.com/papers/69d7b8350a5b166600f30885https://doi.org/10.1126/science.1215442
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