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Molecular Biology Biochemistry and Cellular Physiology of Cysteine Metabolism in Arabidopsis thaliana

机译:拟南芥半胱氨酸代谢的分子生物学生物化学和细胞生理学

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摘要

Cysteine is one of the most versatile molecules in biology, taking over such different functions as catalysis, structure, regulation and electron transport during evolution. Research on Arabidopsis has contributed decisively to the understanding of cysteine synthesis and its role in the assimilatory pathways of S, N and C in plants. The multimeric cysteine synthase complex is present in the cytosol, plastids and mitochondria and forms the centre of a unique metabolic sensing and signaling system. Its association is reversible, rendering the first enzyme of cysteine synthesis active and the second one inactive, and vice-versa. Complex formation is triggered by the reaction intermediates of cysteine synthesis in response to supply and demand and gives rise to regulation of genes of sulfur metabolism to adjust cellular sulfur homeostasis. Combinations of biochemistry, forward and reverse genetics, structural- and cell-biology approaches using Arabidopsis have revealed new enzyme functions and the unique pattern of spatial distribution of cysteine metabolism in plant cells. These findings place the synthesis of cysteine in the centre of the network of primary metabolism.
机译:半胱氨酸是生物学上用途最广泛的分子之一,在进化过程中承担着催化,结构,调节和电子传输等不同功能。拟南芥的研究对理解半胱氨酸合成及其在植物中S,N和C的同化途径中的作用起了决定性的作用。多聚半胱氨酸合酶复合物存在于细胞质,质体和线粒体中,形成独特的代谢传感和信号系统的中心。其关联是可逆的,使半胱氨酸合成的第一种酶具有活性,而第二个酶则无活性,反之亦然。响应于供需,半胱氨酸合成的反应中间体触发了复合物的形成,并引起了对硫代谢基因的调节,从而调节了细胞内的硫稳态。使用拟南芥的生物化学,正向和反向遗传学,结构和细胞生物学方法的结合揭示了新的酶功能以及植物细胞中半胱氨酸代谢空间分布的独特模式。这些发现将半胱氨酸的合成置于初级代谢网络的中心。

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