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Structural plasticity and Mg2+ binding properties of RNase PP4 from combined analysis of NMR residual dipolar couplings and motionally decoupled spin relaxation

机译:通过对NMR残留偶极耦合和运动解耦的自旋弛豫的组合分析来分析RNase PP4的结构可塑性和Mg2 +结合特性

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The P4 helix is an essential element of ribonuclease P (RNase P) that is believed to bind catalytically important metals. Here, we applied a combination of NMR residual dipolar couplings (RDCs) and a recently introduced domain-elongation strategy for measuring "motionally decoupled'' relaxation data to characterize the structural dynamics of the P4 helix from Bacillus subtilis RNase P. In the absence of divalent ions, the two P4 helical domains undergo small amplitude (similar to 13 degrees) collective motions about an average interhelical angle of 10. The highly conserved U7 bulge and helical residue C8, which are proposed to be important for substrate recognition and metal binding, are locally mobile at pico- to nanosecond timescales and together form the pivot point for the collective domain motions. Chemical shift mapping reveals significant association of Mg2+ ions at the P4 major groove near the flexible pivot point at residues (A5, G22, G23) previously identified to bind catalytically important metals. The Mg2+ ions do not, however, significantly alter the structure or dynamics of P4. Analysis of results in the context of available Xray structures of the RNA component of RNase P and structural models that include the pre-tRNA substrate suggest that the internal motions observed in P4 likely facilitate adaptive changes in conformation that take place during folding and substrate recognition, possibly aided by interactions with Mg2+ ions. Our results add to a growing view supporting the existence of functionally important internal motions in RNA occurring at nanosecond timescales.
机译:P4螺旋是核糖核酸酶P(RNase P)的必不可少的元素,被认为与催化重要的金属结合。在这里,我们结合了NMR残留偶极耦合(RDC)和最近引入的域延伸策略来测量“运动解耦”弛豫数据,以表征枯草芽孢杆菌RNase P的P4螺旋的结构动力学。在两个二价离子中,两个P4螺旋域在大约10的平均螺旋间角处经历小幅度的(大约13度)集体运动。高度保守的U7凸起和螺旋残基C8被认为对基底识别和金属结合很重要,在皮秒到纳秒的时间尺度上是局部移动的,并共同构成了集体畴运动的枢轴点。化学位移映射揭示了先前在残基(A5,G22,G23)的挠性枢轴点附近的P4主槽处Mg2 +离子的显着缔合。经鉴定可结合重要的催化金属,但Mg2 +离子不会显着改变P4的结构或动力学。在RNase P RNA组分的可用X射线结构和包括pre-tRNA底物的结构模型的背景下得出的结果表明,在P4中观察到的内部运动可能促进了折叠和底物识别过程中发生的构象的适应性变化,可能有所帮助通过与Mg2 +离子的相互作用。我们的结果增加了人们日益增长的观点,即支持在纳秒级时标中发生的功能重要的内部运动在RNA中的存在。

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