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Evidence for several cysteine transport mechanisms in the mitochondrial membranes of Arabidopsis thaliana.

机译:拟南芥线粒体膜中几种半胱氨酸转运机制的证据。

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Cysteine is essential for many mitochondrial processes in plants, including translation, iron-sulfur cluster biogenesis and cyanide detoxification. Its biosynthesis is carried out by serine acetyltransferase (SAT) and O-acetylserine (thiol) lyase (OAS-TL) which can be found in the cytosol, plastids and mitochondria. Mutants lacking one compartment-specific OAS-TL isoform show viable phenotypes, leading to the hypothesis that the organellar membranes are permeable to substrates and products of the cysteine biosynthetic pathway. In this report, we show that exogenouslly supplied [35S]cysteine accumulates in the mitochondrial fraction and is taken up into isolated mitochondria for in organello protein synthesis. Analysis of cysteine uptake by isolated mitochondria and mitoplasts indicates that cysteine is transported by multiple facilitated mechanisms that operate in a concentration gradient-dependent manner. In addition, cysteine uptake is dependent mainly on the Delta pH across the inner membrane. The rates of mitochondrial cysteine transport can be mildly altered by specific metabolites in the cyanide detoxification-linked sulfide oxidation, but not by most substrates and products of the cysteine biosynthetic pathway. Based on these results, we propose that the transport of cysteine plays a pivotal role in regulating cellular cysteine biosynthesis as well as modulating the availability of sulfur for mitochondrial metabolism.
机译:半胱氨酸对植物中的许多线粒体过程至关重要,包括翻译、铁硫簇生物发生和氰化物解毒。它的生物合成由丝氨酸乙酰转移酶 (SAT) 和 O-乙酰丝氨酸(硫醇)裂解酶 (OAS-TL) 进行,它们可以在胞质溶胶、质体和线粒体中找到。缺乏一种区室特异性 OAS-TL 亚型的突变体显示出可行的表型,从而假设细胞器膜可渗透半胱氨酸生物合成途径的底物和产物。在这份报告中,我们表明外源供应的 [35S] 半胱氨酸在线粒体部分中积累并被吸收到分离的线粒体中用于细胞ello 蛋白质合成。对分离的线粒体和线粒体对半胱氨酸摄取的分析表明,半胱氨酸通过多种促进机制转运,这些机制以浓度梯度依赖性方式运作。此外,半胱氨酸的摄取主要取决于内膜上的 Delta pH 值。线粒体半胱氨酸转运的速率可以被氰化物解毒连接硫化物氧化中的特定代谢物轻度改变,但不能被半胱氨酸生物合成途径的大多数底物和产物所改变。基于这些结果,我们提出半胱氨酸的转运在调节细胞半胱氨酸生物合成以及调节线粒体代谢中硫的可用性中起着关键作用。

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