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Molecular Evolution of Calcium Signaling and Transport in Plant Adaptation to Abiotic Stress

期刊

出版社

MDPI
DOI: 10.3390/ijms222212308

关键词

calcium ion; phylogenetic analysis; abiotic stress; ion transport; regulatory network

资金

  1. National Natural Science Foundation of China [32001456, 32170276]
  2. NSFC-ASRT [32061143044]
  3. Yangtze University research funds
  4. Australian Research Council [DE1401011143, FT210100366]
  5. Horticulture Innovation Australia [VG16070, VG17003, LP18000]
  6. Australian Research Council [FT210100366] Funding Source: Australian Research Council

向作者/读者索取更多资源

The adaptation to unfavorable abiotic stresses is crucial in plant evolution, with calcium (Ca2+) signaling playing a key role in integrating environmental stimuli and cellular responses. This review explores the mechanisms of Ca2+ membrane transporters and intracellular sensors, shedding light on the evolutionary and functional synergies in green plants. It provides new perspectives on the evolution, interaction, and integration of Ca2+ signaling components, with potential benefits for research in agriculture, evolutionary biology, ecology, and the environment.
Adaptation to unfavorable abiotic stresses is one of the key processes in the evolution of plants. Calcium (Ca2+) signaling is characterized by the spatiotemporal pattern of Ca2+ distribution and the activities of multi-domain proteins in integrating environmental stimuli and cellular responses, which are crucial early events in abiotic stress responses in plants. However, a comprehensive summary and explanation for evolutionary and functional synergies in Ca2+ signaling remains elusive in green plants. We review mechanisms of Ca2+ membrane transporters and intracellular Ca2+ sensors with evolutionary imprinting and structural clues. These may provide molecular and bioinformatics insights for the functional analysis of some non-model species in the evolutionarily important green plant lineages. We summarize the chronological order, spatial location, and characteristics of Ca2+ functional proteins. Furthermore, we highlight the integral functions of calcium-signaling components in various nodes of the Ca2+ signaling pathway through conserved or variant evolutionary processes. These ultimately bridge the Ca2+ cascade reactions into regulatory networks, particularly in the hormonal signaling pathways. In summary, this review provides new perspectives towards a better understanding of the evolution, interaction and integration of Ca2+ signaling components in green plants, which is likely to benefit future research in agriculture, evolutionary biology, ecology and the environment.

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