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Expression, Functional Characterization, and Preliminary Crystallization of the Cochaperone Prefoldin from the Thermophilic Fungus Chaetomium thermophilum

机译:从嗜热真菌嗜热素从嗜热真菌嗜热嗜热素中的表达,官能表征和初步结晶

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摘要

Prefoldin is a hexameric molecular chaperone found in the cytosol of archaea and eukaryotes. Its hexameric complex is built from two related classes of subunits, and has the appearance of a jellyfish: Its body consists of a double β-barrel assembly with six long tentacle-like coiled coils protruding from it. Using the tentacles, prefoldin captures an unfolded protein substrate and transfers it to a group II chaperonin. Based on structural information from archaeal prefoldins, mechanisms of substrate recognition and prefoldin-chaperonin cooperation have been investigated. In contrast, the structure and mechanisms of eukaryotic prefoldins remain unknown. In this study, we succeeded in obtaining recombinant prefoldin from a thermophilic fungus, Chaetomium thermophilum (CtPFD). The recombinant CtPFD could not protect citrate synthase from thermal aggregation. However, CtPFD formed a complex with actin from chicken muscle and tubulin from porcine brain, suggesting substrate specificity. We succeeded in observing the complex formation of CtPFD and the group II chaperonin of C. thermophilum (CtCCT) by atomic force microscopy and electron microscopy. These interaction kinetics were analyzed by surface plasmon resonance using Biacore. Finally, we have shown the transfer of actin from CtPFD to CtCCT. The study of the folding pathway formed by CtPFD and CtCCT should provide important information on mechanisms of the eukaryotic prefoldin–chaperonin system.
机译:prefoldin是在古藻和真核生物中发现的六氧化物分子伴侣。其六聚综合体是由两个相关的亚基类构建的,并且具有水母的外观:它的身体由双β-桶组件组成,具有六个长的触摸齿轮卷材突出。使用触手,Prefoldin捕获展开的蛋白质基质并将其转移到II组伴侣蛋白。基于来自古代预热蛋白的结构信息,研究了基础识别和预养蛋白蛋白合作的机制。相比之下,真核预热蛋白的结构和机制仍然是未知的。在这项研究中,我们成功地获得了来自嗜热真菌,Chaetomium嗜热粒子(CTPFD)的重组预素。重组CTPFD不能保护柠檬酸合酶免受热聚集。然而,CTPFD从猪脑和猪脑中的鸡肉肌肉和小管蛋白形成了复合物,表明底物特异性。我们通过原子力显微镜和电子显微镜观察CTPFd和C.嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜嗜热嗜热素(CTCCT)的复杂形成。通过使用Biacore的表面等离子体共振分析这些相互作用动力学。最后,我们显示了从CTPFD转移到CTCCT。由CTPFD和CTCCT形成的折叠途径的研究应提供有关真核前蛋白蛋白蛋白系统的机制的重要信息。

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