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首页> 外文期刊>The Plant Cell >ATP requirement for chloroplast protein import is set by the Km for ATP hydrolysis of stromal Hsp70 in Physcomitrella patens.
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ATP requirement for chloroplast protein import is set by the Km for ATP hydrolysis of stromal Hsp70 in Physcomitrella patens.

机译:叶绿体蛋白导入中ATP的需求由K m 来确定小立碗藓中基质Hsp70的ATP水解。

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摘要

The 70-kD family of heat shock proteins (Hsp70s) is involved in a number of seemingly disparate cellular functions, including folding of nascent proteins, breakup of misfolded protein aggregates, and translocation of proteins across membranes. They act through the binding and release of substrate proteins, accompanied by hydrolysis of ATP. Chloroplast stromal Hsp70 plays a crucial role in the import of proteins into plastids. Mutations of an ATP binding domain Thr were previously reported to result in an increase in the Km for ATP and a decrease in the enzyme's kcat. To ask which chloroplast stromal chaperone, Hsp70 or Hsp93, both of which are ATPases, dominates the energetics of the motor responsible for protein import, we made transgenic moss (Physcomitrella patens) harboring the Km-altering mutation in the essential stromal Hsp70-2 and measured the effect on the amount of ATP required for protein import into chloroplasts. Here, we report that increasing the Km for ATP hydrolysis of Hsp70 translated into an increased Km for ATP usage by chloroplasts for protein import. This thus directly demonstrates that the ATP-derived energy long known to be required for chloroplast protein import is delivered via the Hsp70 chaperones and that the chaperone's ATPase activity dominates the energetics of the reaction.
机译:70kD的热激蛋白家族(Hsp70s)参与了许多看似完全不同的细胞功能,包括新生蛋白的折叠,错折叠的蛋白聚集体的分解以及蛋白跨膜的转运。它们通过结合和释放底物蛋白而起作用,伴随着ATP的水解。叶绿体基质Hsp70在蛋白质进入质体中起着至关重要的作用。以前曾报道过ATP结合域Thr的突变导致ATP的K m 升高,而酶的k cat 降低。为了问问哪个都是叶绿体间质伴侣,Hsp70或Hsp93(两者都是ATPases)在负责蛋白质输入的运动的能量学中占主导地位,我们制作了具有K m 改变突变的转基因苔藓(Physcomitrella patens)在基本的Hsp70-2基质中进行了测定,并测量了蛋白质导入叶绿体所需的ATP量的影响。在这里,我们报告说增加Hsp70的ATP水解的K m 转化为叶绿体用于蛋白质进口的ATP使用的K m 的增加。因此,这直接证明了通过Hsp70分子伴侣传递了长期已知的输入叶绿体蛋白所需的ATP衍生能量,并且该分子的ATPase活性主导了反应的能量。

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