逆转录病毒整合酶蛋白和侵入体核蛋白复合体结构。

Julia Grawenhoff, Alan N Engelman
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引用次数: 13

摘要

逆转录病毒的复制是通过病毒RNA基因组的DNA拷贝整合到宿主细胞基因组中进行的,这一过程是由病毒整合酶(IN)蛋白介导的。IN催化两种不同的化学反应:3'加工,即病毒DNA在其3'端被二核苷酸或三核苷酸嵌入,以及链转移,即加工后的病毒DNA末端插入宿主染色体DNA。尽管自20世纪80年代以来,人们就将IN作为一种重组蛋白进行了研究,但对其催化功能的详细结构理解,还有待于功能性IN- dna复合物或内泌体的高分辨率结构,这些结构最初是在2010年从瘤病毒原型泡沫病毒(PFV)中获得的。此后,又出现了α-逆转录病毒劳斯肉瘤病毒(RSV)和β-逆转录病毒小鼠乳腺肿瘤病毒(MMTV)两种逆转录病毒侵入体结构。在此,我们简要回顾了侵入体时代之前的IN结构生物学历史,并详细比较了PFV、MMTV和RSV的侵入体结构。虽然PFV侵入体的特征是病毒DNA末端周围的四聚体IN组装,但较新的结构含有八聚体IN组装。虽然MMTV和RSV侵入体的高阶结构与PFV侵入体不同,但它们具有非常相似的侵入体核心结构。因此,逆转录病毒整合机制已经进化地适应了利用不同的IN元素来构建聚合的侵入体核心结构以实现催化功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Retroviral integrase protein and intasome nucleoprotein complex structures.

Retroviral replication proceeds through the integration of a DNA copy of the viral RNA genome into the host cellular genome, a process that is mediated by the viral integrase (IN) protein. IN catalyzes two distinct chemical reactions: 3'-processing, whereby the viral DNA is recessed by a di- or trinucleotide at its 3'-ends, and strand transfer, in which the processed viral DNA ends are inserted into host chromosomal DNA. Although IN has been studied as a recombinant protein since the 1980s, detailed structural understanding of its catalytic functions awaited high resolution structures of functional IN-DNA complexes or intasomes, initially obtained in 2010 for the spumavirus prototype foamy virus (PFV). Since then, two additional retroviral intasome structures, from the α-retrovirus Rous sarcoma virus (RSV) and β-retrovirus mouse mammary tumor virus (MMTV), have emerged. Here, we briefly review the history of IN structural biology prior to the intasome era, and then compare the intasome structures of PFV, MMTV and RSV in detail. Whereas the PFV intasome is characterized by a tetrameric assembly of IN around the viral DNA ends, the newer structures harbor octameric IN assemblies. Although the higher order architectures of MMTV and RSV intasomes differ from that of the PFV intasome, they possess remarkably similar intasomal core structures. Thus, retroviral integration machineries have adapted evolutionarily to utilize disparate IN elements to construct convergent intasome core structures for catalytic function.

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