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首页> 外文期刊>Journal of Molecular Biology >High-throughput genetic identification of functionally important regions of the yeast DEAD-box protein Mss116p.
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High-throughput genetic identification of functionally important regions of the yeast DEAD-box protein Mss116p.

机译:酵母DEAD-box蛋白Mss116p重要功能区域的高通量遗传鉴定。

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The Saccharomyces cerevisiae DEAD-box protein Mss116p is a general RNA chaperone that functions in splicing mitochondrial group I and group II introns. Recent X-ray crystal structures of Mss116p in complex with ATP analogs and single-stranded RNA show that the helicase core induces a bend in the bound RNA, as in other DEAD-box proteins, while a C-terminal extension (CTE) induces a second bend, resulting in RNA crimping. Here, we illuminate these structures by using high-throughput genetic selections, unigenic evolution, and analyses of in vivo splicing activity to comprehensively identify functionally important regions and permissible amino acid substitutions throughout Mss116p. The functionally important regions include those containing conserved sequence motifs involved in ATP and RNA binding or interdomain interactions, as well as previously unidentified regions, including surface loops that may function in protein-protein interactions. The genetic selections recapitulate major features of the conserved helicase motifs seen in other DEAD-box proteins but also show surprising variations, including multiple novel variants of motif III (SAT). Patterns of amino acid substitutions indicate that the RNA bend induced by the helicase core depends on ionic and hydrogen-bonding interactions with the bound RNA; identify a subset of critically interacting residues; and indicate that the bend induced by the CTE results primarily from a steric block. Finally, we identified two conserved regions-one the previously noted post II region in the helicase core and the other in the CTE-that may help displace or sequester the opposite RNA strand during RNA unwinding.
机译:酿酒酵母DEAD-box蛋白Mss116p是一种普通的RNA伴侣,在剪接I和II组线粒体时起作用。 Mss116p与ATP类似物和单链RNA配合形成的最新X射线晶体结构表明,解旋酶核心与其他DEAD-box蛋白一样,诱导了结合RNA的弯曲,而C端延伸(CTE)诱导了螺旋弯曲。第二次弯曲,导致RNA卷曲。在这里,我们通过使用高通量遗传选择,单基因进化和体内剪接活性分析来全面鉴定整个Mss116p的功能重要区域和允许的氨基酸取代,阐明了这些结构。功能上重要的区域包括那些包含与ATP和RNA结合或域间相互作用有关的保守序列基序的区域,以及先前未鉴定的区域,包括可能在蛋白质-蛋白质相互作用中起作用的表面环。遗传选择概括了其他DEAD-box蛋白中保守的解旋酶基序的主要特征,但也显示出令人惊讶的变异,包括基序III(SAT)的多个新变异。氨基酸取代的模式表明,解旋酶核心诱导的RNA弯曲取决于与结合的RNA的离子和氢键相互作用。识别关键相互作用残基的子集;并指出CTE引起的弯曲主要是由空间位阻引起的。最后,我们确定了两个保守区域-一个先前在解旋酶核心中提到的II后区域,另一个在CTE中-可能有助于在解链RNA期间置换或隔离相反的RNA链。

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