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Reading and surviving the harsh conditions in desert biological soil crust: the cyanobacterial viewpoint

期刊

FEMS MICROBIOLOGY REVIEWS
卷 45, 期 6, 页码 -

出版社

OXFORD UNIV PRESS
DOI: 10.1093/femsre/fuab036

关键词

biological soil crusts; cyanobacteria; desiccation tolerance; gene expression regulation; photosynthesis; signal sensing

资金

  1. National Natural Science Foundation of China [92051105, 31970254, 31670332]
  2. China Postdoctoral Science Foundation [2020M682457]
  3. Israeli Science Foundation
  4. Israel Ministry of Science, Technology and Space

向作者/读者索取更多资源

Biological soil crusts (BSCs) are mainly found in arid and semi-arid areas, covering about 12% of the Earth's surface and playing an important role in combating desertification. Cyanobacteria, pioneers and primary producers in BSCs, have evolved multiple adaptation strategies to enhance their stress tolerance.
Biological soil crusts (BSCs) are found in drylands, cover similar to 12% of the Earth's surface in arid and semi-arid lands and their destruction is considered an important promoter of desertification. These crusts are formed by the adhesion of soil particles to polysaccharides excreted mostly by filamentous cyanobacteria, which are the pioneers and main primary producers in BSCs. Desert BSCs survive in one of the harshest environments on Earth, and are exposed to daily fluctuations of extreme conditions. The cyanobacteria inhabiting these habitats must precisely read the changing conditions and predict, for example, the forthcoming desiccation. Moreover, they evolved a comprehensive regulation of multiple adaptation strategies to enhance their stress tolerance. Here, we focus on what distinguishes cyanobacteria able to revive after dehydration from those that cannot. While important progress has been made in our understanding of physiological, biochemical and omics aspects, clarification of the sensing, signal transduction and responses enabling desiccation tolerance are just emerging. We plot the trajectory of current research and open questions ranging from general strategies and regulatory adaptations in the hydration/desiccation cycle, to recent advances in our understanding of photosynthetic adaptation. The acquired knowledge provides new insights to mitigate desertification and improve plant productivity under drought conditions.

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