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Cross-Correlated Relaxation of Dipolar Coupling and Chemical-Shift Anisotropy in Magic-Angle Spinning R1ρ NMR Measurements: Application to Protein Backbone Dynamics Measurements

机译:偶极耦合和化学位移各向异性的互相关弛豫在魔角旋转R1ρNMR测量中的应用:在蛋白质骨干动力学测量中的应用

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摘要

Transverse relaxation rate measurements in MAS solid-state NMR provide information about molecular motions occurring on nanoseconds-to-milliseconds (ns-ms) time scales. The measurement of heteronuclear (13C, 15N) relaxation rate constants in the presence of a spin-lock radio-frequency field (R1ρ relaxation) provides access to such motions, and an increasing number of studies involving R1ρ relaxation in proteins has been reported. However, two factors that influence the observed relaxation rate constants have so far been neglected, namely (i) the role of CSA/dipolar cross-correlated relaxation (CCR), and (ii) the impact of fast proton spin flips (i.e. proton spin diffusion and relaxation). We show that CSA/D CCR in R1ρ experiments is measurable, and that this cross-correlated relaxation rate constant depends on ns-ms motions, and can thus itself provide insight into dynamics. We find that proton spin-diffusion attenuates this cross-correlated relaxation, due to its decoupling effect on the doublet components. For measurements of dynamics, the use of R1ρ rate constants has practical advantages over the use of CCR rates, and the present manuscript reveals factors that have so far been disregarded and which are important for accurate measurements and interpretation.
机译:MAS固态NMR中的横向弛豫速率测量提供了有关在纳秒到毫秒(ns-ms)时标上发生的分子运动的信息。在存在自旋锁定射频场(R1ρ弛豫)的情况下对异核( 13 C, 15 N)弛豫速率常数的测量提供了此类运动的途径,并且已经报道了涉及蛋白质中R1ρ松弛的越来越多的研究。但是,到目前为止,已经忽略了影响观察到的弛豫速率常数的两个因素,即(i)CSA /偶极交叉相关弛豫(CCR)的作用,以及(ii)快速质子自旋翻转(即质子自旋)的影响扩散和松弛)。我们表明,R1ρ实验中的CSA / D CCR是可测量的,并且该互相关的弛豫速率常数取决于ns-ms运动,因此本身可以提供对动力学的了解。我们发现质子自旋扩散减弱了这种互相关的弛豫,这是由于其对双峰组分的去耦作用。对于动力学测量,使用R1ρ速率常数比使用CCR速率具有实际优势,并且本手稿揭示了迄今仍被忽略的因素,这些因素对于精确的测量和解释很重要。

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