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Genome-wide identification of SAMS gene family in Cucurbitaceae and the role of ClSAMS1 in watermelon tolerance to abiotic stress

葫芦科 基因 非生物胁迫 鉴定(生物学) 基因组 生物 非生物成分 遗传学 基因家族 计算生物学 植物 生态学
作者
Mengmeng Yin,Zhan Huang,Ali Aslam,Zimo Wang,Jianquan Wang,Yingshan Yu,Junjie Liu,Deling Zhao,Yan Zhang,Yan Zhang,Xiaoyu Yang,Ruimin Zhang,Qinghua Shi
出处
期刊:Plant Physiology and Biochemistry [Elsevier BV]
卷期号:211: 108708-108708 被引量:4
标识
DOI:10.1016/j.plaphy.2024.108708
摘要

S-Adenosyl-L-methionine (SAM) is widely involved in plant growth, development, and abiotic stress response. SAM synthetase (SAMS) is the key enzyme that catalyzes the synthesis of SAM from methionine and ATP. However, the SAMS gene family have not been identified and their functions have not been characterized in most Cucurbitaceae plants. Here, a total of 30 SAMS genes were identified in nine Cucurbitaceae species and they were categorized into 3 subfamilies. Physicochemical properties and gene structure analysis showed that the SAMS protein members are tightly conserved. Further analysis of the cis-regulatory element (CRE) of SAMS genes promoter implied their potential roles in stress tolerance. To further understand the molecular functions of SAMS genes, watermelon SAMSs (ClSAMSs) were chosen to analyze the expression patterns in different tissues and under various abiotic stress and hormone response. Among the investigated genes, ClSAMS1 expression was observed in all tissues and found to be up-regulated by abiotic stresses including salt, cold and drought treatment as well as exogenous hormone treatments including ETH, SA, MeJA and ABA. Furthermore, knockdown of ClSAMS1 via virus-induced gene silencing (VIGS) decreased SAM contents in watermelon seeding. The pTRSV2-ClSAMS1 plants showed reduced susceptibility to drought, cold and NaCl stress, indicating a positive role of ClSAMS1 in abiotic stresses tolerance. Those results provided candidate SAMS genes to regulate plant resistance against abiotic stresses in Cucurbitaceae plants.
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