首页> 外文OA文献 >Crystal structure combined with genetic analysis of the Thermus thermophilus ribosome recycling factor shows that a flexible hinge may act as a functional switch.
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Crystal structure combined with genetic analysis of the Thermus thermophilus ribosome recycling factor shows that a flexible hinge may act as a functional switch.

机译:晶体结构与嗜热栖热菌核糖体再循环因子的遗传分析相结合显示,柔性铰链可能充当功能开关。

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摘要

Ribosome recycling factor (RRF), in concert with elongation factor EF-G, is required for disassembly of the posttermination complex of the ribosome after release of polypeptides. The crystal structure of Thermus thermophilus RRF was determined at 2.6 A resolution. It is a tRNA-like L-shaped molecule consisting of two domains: a long three-helix bundle (domain 1) and a three-layer beta/alpha/beta sandwich (domain 2). Although the individual domain structures are similar to those of Thermotoga maritima RRF (Selmer et al., Science, 1999, 286:2349-2352), the interdomain angle differs by 33 degrees in two molecules, suggesting that the hinge between two domains is potentially flexible and responsive to different conditions of crystal packing. The hinge connects hydrophobic junctions of domains 1 and 2. The structure-based genetic analysis revealed the strong correlation between the hinge flexibility and the in vivo function of RRF. First, altering the hinge flexibility by making alanine or serine substitutions for large-size residues conserved at the hinge loop and nearby in domain 1 frequently gave rise to gain of function except a Pro residue conserved at the hinge loop. Second, the hinge defect resulting from a too relaxed hinge structure can be compensated for by secondary alterations in domain 1 that seem to increase the hydrophobic contact between domain 1 and the hinge loop. These results show that the hinge flexibility is vital for the function of RRF and that the steric interaction between the hinge loop and domains 1 and 2 restricts the interdomain angle and/or the hinge flexibility. These results indicate that RRF possesses an architectural difference from tRNA regardless of a resemblance to tRNA shape: RRF has a "gooseneck" elbow, whereas the tRNA elbow is rigid, and the direction of flex of RRF and tRNA is at a nearly right angle to each other. Moreover, surface electrostatic potentials of the two RRF proteins are dissimilar and do not mimic the surface potential of tRNA or EF-G. These properties will add a new insight into RRF, suggesting that RRF is more than a simple tRNA mimic.
机译:核糖体回收因子(RRF)与延伸因子EF-G协同作用,是多肽释放后核糖体后终止复合物的拆卸所必需的。嗜热栖热菌RRF的晶体结构以2.6 A的分辨率测定。它是一种tRNA样的L形分子,由两个域组成:一个长的三螺旋束(域1)和一个三层beta / alpha / beta三明治(域2)。尽管各个结构域的结构与滨海嗜热菌的结构相似(Selmer et al。,Science,1999,286:2349-2352),但两个分子的畴间角相差33度,这表明两个结构域之间的铰链可能灵活,对不同的晶体填充条件有反应。铰链连接结构域1和2的疏水连接。基于结构的遗传分析揭示了铰链柔性与RRF的体内功能之间的强相关性。首先,通过用丙氨酸或丝氨酸取代在铰链环处和结构域1附近保守的大残基来改变铰链的柔性,通常会导致功能获得,但在铰链环处保守的Pro残基除外。第二,由过于松弛的铰链结构导致的铰链缺陷可以通过畴1中的二次变化来补偿,这似乎会增加畴1和铰链环之间的疏水性接触。这些结果表明,铰链柔韧性对于RRF的功能至关重要,并且铰链环与畴1和2之间的空间相互作用限制了畴间角度和/或铰链柔韧性。这些结果表明,无论与tRNA的形状如何相似,RRF都与tRNA具有结构上的差异:RRF具有“鹅颈”肘,而tRNA肘是刚性的,RRF和tRNA的弯曲方向与tRNA几乎成直角彼此。此外,两种RRF蛋白的表面静电势不同,并且不能模拟tRNA或EF-G的表面势。这些特性将为RRF增添新的见解,表明RRF不仅仅是简单的tRNA模拟物。

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