Abstract
Low temperatures have a negative effect on plant development. Plants that are exposed to cold temperatures undergo a cascade of physiological, biochemical, and molecular changes that activate several genes, transcription factors, and regulatory pathways. In this review, the physiological, biochemical, and molecular mechanisms of Camellia sinensis have been discussed. Calmodulin binding transcription activator (CAMTAs) by molecular means including transcription is one of the novel genes for plants’ adaptation to different abiotic stresses, including low temperatures. Therefore, the role of CAMTAs in different plants has been discussed. The number of CAMTAs genes discussed here are playing a significant role in plants’ adaptation to abiotic stress. The illustrated diagrams representing the mode of action of calcium (Ca2+) with CAMTAs have also been discussed. In short, Ca2+ channels or Ca2+ pumps trigger and induce the Ca2+ signatures in plant cells during abiotic stressors, including low temperatures. Ca2+ signatures act with CAMTAs in plant cells and are ultimately decoded by Ca2+sensors. To the best of our knowledge, this is the first review reporting CAMAT’s current progress and potential role in C. sinensis, and this study opens a new road for researchers adapting tea plants to abiotic stress.
Funder
Technology System of Modern Agricultural Industry
Special Foundation for Distinguished Taishan Scholar of Shandong Province
Scientific and Technological Innovation Project of SAAS
Special Talent Program of SAAS
Reference83 articles.
1. (2022, October 10). Food and Agriculture Organization of the United Nations Statistics Division (FAOSTAT). Available online: https://www.fao.org/statistics/en/.
2. Approaches for Chronic Disease Prevention Based on Current Understanding of Underlying Mechanisms;Weisburger;Am. J. Clin. Nutr.,2000
3. Physiological and Defense Responses of Tea Plants to Elevated CO2: A Review;Ahammed;Front. Plant Sci.,2020
4. Disaster-Causing Hazard Division and Evaluation of Meteorological Disasters for Tea in Fujian Province;Chen;J. Nat. Disaster,2018
5. Effects of Extreme Temperature on China’s Tea Production;Yan;Environ. Res. Lett.,2021
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