Identification and functional characterization of safflower cysteine protease 1 as negative regulator in response to low-temperature stress in transgenic Arabidopsis

拟南芥 蛋白酶 半胱氨酸蛋白酶 异源表达 生物 转基因 半胱氨酸 转基因作物 生物化学 拟南芥 基因 基因表达 细胞生物学 酶 突变体 重组DNA
作者
Hong Yingqi,Yanxi Lv,Jianyi Zhang,Naveed Ahmad,Youbao Li,Nan Wang,Liu Xiuming,Na Yao,Xiaokun Li
出处
期刊:Planta [Springer Science+Business Media]
卷期号:255 (5): 106-106 被引量:16
标识
DOI:10.1007/s00425-022-03875-6
摘要

Main conclusionWe performed genome-wide and heterologous expression analysis of the safflower cysteine protease family and found that inhibition of CtCP1 expression enhanced plant cold resistance.Cysteine protease (CP) is mainly involved in plant senescence and stress responses. However, the molecular mechanism of endogenous cysteine protease inhibition in plant stress tolerance is yet unknown. Here, we report the discovery and functional characterization of a candidate CP1 gene from safflower. The conserved structural topology of CtCPs revealed important insights into their possible roles in plant growth and stress responses. The qRT-PCR results implied that most of CtCP genes were highly expressed at fading stage suggesting that they are most likely involved in senescence process. The CtCP1 expression was significantly induced at different time points under cold, NaCl, H2O2 and PEG stress, respectively. The in-vitro activity of heterologously expressed CtCP1 protein showed highest protease activity for casein and azocasein substrates. The expression and phenotypic data together with antioxidant activity and physiological indicators revealed that transgenic plants inhibited by CtCP1-anti showed higher tolerance to low temperature than WT and CtCP1-OE plants. Our findings demonstrated the discovery of a new Cysteine protease 1 gene that exerted a detrimental effect on transgenic Arabidopsis under low-temperature stress.
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