半胱氨酸
硫代谢
生物化学
丝氨酸
生物合成
半胱氨酸代谢
新陈代谢
化学
焊剂(冶金)
代谢途径
细胞生物学
功能(生物学)
拟南芥
生物
亚细胞定位
ATP合酶
信号转导
生物逆境
硫黄
酶
氨基酸
乙酰转移酶
细胞信号
代谢组学
突变体
作者
Sheng-Kai Sun,Markus Wirtz,Rüdiger Hell
摘要
Cysteine biosynthesis is the entry point of reduced sulfur into plant metabolism and underlies the formation of numerous sulfur-containing compounds essential for stress adaptation. Cysteine is produced by the consecutive action of serine acetyltransferase (SERAT) and O-acetylserine(thiol)lyase (OAS-TL), which assemble into the cysteine synthase complex (CSC). CSC formation is reversible and regulated by the cysteine precursors O-acetylserine (OAS) and sulfide, linking cysteine production to the cellular status of carbon, nitrogen, and sulfur. Traditionally, the CSC has been hypothesized as a metabolic sensor of the carbon/nitrogen and sulfur supply for cysteine biosynthesis. However, recent studies reveal a broader role. The CSC is present in multiple subcellular compartments and shows functional diversity across plant species. Emerging evidence shows that CSC dynamics are tightly integrated with environmental signaling pathways, enabling plants to coordinate sulfur metabolism with responses to stress conditions such as high light, drought, heavy metals, and pathogen challenge. In this review, we synthesize recent advances in the characterization of SERAT and OAS-TL proteins and highlight the CSC as a regulatory hub that integrates metabolic status with stress signaling to respond to specific environmental stimuli.
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