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Covalent Label Transfer Between Peroxisomal Importomer Components Reveals Export-Driven Import Interactions

机译:过氧化物酶体输入体组分之间的共价标记转移揭示了出口驱动的进口相互作用

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摘要

Peroxisomes are vital metabolic organelles found in almost all eukaryotic organisms, and they rely exclusively on import of their matrix protein content from the cytosol. In vitro import of proteins into isolated peroxisomal fractions has provided a wealth of knowledge on the import process. However, the common method of protease protection garnered no information on the import of an N-terminally truncated PEX5 (PEX5C) receptor construct or peroxisomal Malate Dehydrogenase 1 (pMDH1) cargo protein into sunflower peroxisomes, owing to high degrees of protease susceptibility or resistance, respectively. Here, we present a means for analysis of in vitro import through a covalent biotin label transfer, and employ this method to the import of PEX5C. Label transfer demonstrates that PEX5C construct is monomeric in the conditions of the import assay. This technique was capable of identifying the PEX5-PEX14 interaction as the first interaction of the import process through competition experiments. Labelling of the peroxisomal protein import machinery by PEX5C demonstrated that this interaction was independent of added cargo protein, and strikingly, the interaction between PEX5C and the import machinery was shown to be ATP-dependent. These important mechanistic insights highlight the power of label transfer in studying interactions, rather than proteins, of interest, and demonstrate that this technique should be applied to future studies of peroxisomal in vitro import.
机译:过氧化物酶体是在几乎所有真核生物中发现的重要的代谢细胞器,它们完全依赖于从细胞质中导入其基质蛋白。从蛋白质的体外导入分离的过氧化物酶体组分中,提供了有关导入过程的丰富知识。但是,蛋白酶的常用保护方法由于对蛋白酶的敏感性或耐药性较高,因此无法获得将N末端截短的PEX5(PEX5C)受体构建体或过氧化物酶体苹果酸脱氢酶1(pMDH1)货物蛋白导入向日葵过氧化物酶体的信息,分别。在这里,我们介绍了一种通过共价生物素标记转移体外导入分析的方法,并将此方法用于导入PEX5C。标签转移证明PEX5C构建体在导入检测条件下是单体的。通过竞争实验,该技术能够将PEX5-PEX14相互作用识别为导入过程的第一个相互作用。用PEX5C标记过氧化物酶体蛋白进口机制表明,这种相互作用不依赖于所添加的货物蛋白,而且引人注目的是,PEX5C与进口机制之间的相互作用被证明是ATP依赖性的。这些重要的机械洞察力突出了标签转移在研究感兴趣的相互作用而不是蛋白质方面的作用,并表明该技术应应用于过氧化物酶体体外导入的未来研究。

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