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Role of low native state kinetic stability and interaction of partially unfolded states with molecular chaperones in the mitochondrial protein mistargeting associated with primary hyperoxaluria

机译:低原生态动力学稳定性以及部分展开状态与分子伴侣的相互作用在与原发性高草酸尿症相关的线粒体蛋白质错靶中的作用

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The G170R variant of the alanine:glyoxylate aminotransferase (AGT) is the most common pathogenic allele associated to primary hyperoxaluria type I (PH1), leading to mitochondrial mistargeting when combined with the P11L and I340M polymorphisms (minor allele; AGTLM). In this work, we have performed a comparative analysis on the conformation, unfolding energetics and interaction with molecular chaperones between AGTwt, AGTLM and AGTLRM (G170R in the minor allele) proteins. Our results show that these three variants share similar conformational and functional properties as folded dimers. However, kinetic stability analyses showed a ≈1,000-fold increased unfolding rate for apo-AGTLRM compared to apo-AGTwt, as well as a reduced folding efficiency upon expression in Escherichia coli. Pyridoxal 5′-phosphate (PLP)-binding provided a 4–5 orders of magnitude enhancement of the kinetic stability for all variants, suggesting a role for kinetic stabilization in pyridoxine-responsive PH1. Conformational studies at mild acidic pH and moderate guanidium concentrations showed the formation of a molten-globule-like unfolding intermediate in all three variants, which do not reactivate to the native state and strongly interact with Hsc70 and Hsp90 chaperones. Additional expression analyses in a mammalian cell-free system at neutral pH showed enhanced interaction of AGTLRM with Hsc70 and Hsp90 proteins compared to AGTwt, suggesting kinetic trapping of the mutant by chaperones along the folding process. Overall, our results suggest that mitochondrial mistargeting of AGTLRM may involve the presentation of AGT partially folded states to the mitochondrial import machinery by molecular chaperones, which would be facilitated by the low native state kinetic stability (partially corrected by PLP binding) and kinetic trapping during folding of the AGTLRM variant with molecular chaperones.
机译:丙氨酸:乙醛酸转氨酶(AGT)的G170R变体是与I型原发性高草酸尿症(PH1)相关的最常见致病等位基因,与P11L和I340M多态性结合时会导致线粒体靶向错误(次要等位基因; AGT LM < / sub>)。在这项工作中,我们对AGT wt ,AGT LM 和AGT LRM 的构象,展开能量学以及与分子伴侣的相互作用进行了比较分析。 >(次要等位基因中的G170R)蛋白。我们的结果表明,这三个变体与折叠的二聚体具有相似的构象和功能特性。然而,动力学稳定性分析表明,与apo-AGT wt 相比,apo-AGT LRM 的解折叠速率提高了约1,000倍,并且在Apo-AGT wt 中的折叠效率降低了。大肠杆菌。吡y醛5'-磷酸(PLP)结合为所有变体的动力学稳定性提供了4-5个数量级的增强,表明在吡x醇反应性PH1中动力学稳定具有一定作用。在适度的酸性pH和适度的胍盐浓度下进行的构象研究表明,在所有三个变体中均形成了熔融球状的未折叠中间物,这些中间物不会重新活化为天然状态,并与Hsc70和Hsp90分子伴侣强烈相互作用。在中性pH值的哺乳动物无细胞系统中进行的其他表达分析表明,与AGT wt 相比,AGT LRM 与Hsc70和Hsp90蛋白的相互作用增强,表明该突变体被AFP诱捕。伴侣在折叠过程中。总体而言,我们的结果表明AGT LRM 的线粒体靶向错误可能涉及分子伴侣分子将AGT部分折叠状态呈递给线粒体导入机制,这归因于较低的天然状态动力学稳定性(已部分校正) (通过PLP结合)和AGT LRM 变体与分子伴侣折叠时的动力学捕获。

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