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Structure and topology around the cleavage site regulate post-translational cleavage of the HIV-1 gp160 signal peptide

机译:切割位点周围的结构和拓扑调节HIV-1 gp160信号肽的翻译后切割

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摘要

Like all other secretory proteins, the HIV-1 envelope glycoprotein gp160 is targeted to the endoplasmic reticulum (ER) by its signal peptide during synthesis. Proper gp160 folding in the ER requires core glycosylation, disulfide-bond formation and proline isomerization. Signal-peptide cleavage occurs only late after gp160 chain termination and is dependent on folding of the soluble subunit gp120 to a near-native conformation. We here detail the mechanism by which co-translational signal-peptide cleavage is prevented. Conserved residues from the signal peptide and residues downstream of the canonical cleavage site form an extended alpha-helix in the ER membrane, which covers the cleavage site, thus preventing cleavage. A point mutation in the signal peptide breaks the alpha helix allowing co-translational cleavage. We demonstrate that postponed cleavage of gp160 enhances functional folding of the molecule. The change to early cleavage results in decreased viral fitness compared to wild-type HIV.
机译:像所有其他分泌蛋白一样,HIV-1包膜糖蛋白gp160在合成过程中通过其信号肽靶向内质网(ER)。 ER中正确的gp160折叠需要核心糖基化,二硫键形成和脯氨酸异构化。信号肽的切割仅在gp160链终止后才发生,并且取决于可溶性亚基gp120折叠成接近天然的构象。我们在这里详细介绍了防止共翻译信号肽裂解的机制。来自信号肽的保守残基和规范裂解位点下游的残基在ER膜上形成延伸的α-螺旋,其覆盖了裂解位点,从而防止了裂解。信号肽中的点突变破坏了α螺旋,允许进行共翻译切割。我们证明gp160的延迟切割增强了分子的功能性折叠。与野生型HIV相比,早期切割的改变导致病毒适应性下降。

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