class='kwd-title'>Keywords: AX4 spin systems, NM'/> Measurement of 15N longitudinal relaxation rates in 15NH4+ spin systems to characterise rotational correlation times and chemical exchange
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Measurement of 15N longitudinal relaxation rates in 15NH4+ spin systems to characterise rotational correlation times and chemical exchange

机译:测量15NH4 +自旋系统中15N纵向弛豫速率以表征旋转相关时间和化学交换

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摘要

class="kwd-title">Keywords: AX4 spin systems, NMR, Nuclear spin relaxation, Ammonium, Chemical exchange class="head no_bottom_margin" id="ab015title">AbstractMany chemical and biological processes rely on the movement of monovalent cations and an understanding of such processes can therefore only be achieved by characterising the dynamics of the involved ions. It has recently been shown that 15N-ammonium can be used as a proxy for potassium to probe potassium binding in bio-molecules such as DNA quadruplexes and enzymes. Moreover, equations have been derived to describe the time-evolution of 15N-based spin density operator elements of 15NH4+ spin systems. Herein NMR pulse sequences are derived to select specific spin density matrix elements of the 15NH4+ spin system and to measure their longitudinal relaxation in order to characterise the rotational correlation time of the 15NH4+ ion as well as report on chemical exchange events of the 15NH4+ ion. Applications to 15NH4+ in acidic aqueous solutions are used to cross-validate the developed pulse sequence while measurements of spin-relaxation rates of 15NH4+ bound to a 41 kDa domain of the bacterial Hsp70 homologue DnaK are presented to show the general applicability of the derived pulse sequence. The rotational correlation time obtained for 15N-ammonium bound to DnaK is similar to the correlation time that describes the rotation about the threefold axis of a methyl group. The methodology presented here provides, together with the previous theoretical framework, an important step towards characterising the motional properties of cations in macromolecular systems.
机译:<!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>关键字: AX4自旋系统,NMR,核自旋弛豫,铵,化学交换 class =“ head no_bottom_margin许多化学和生物过程都依赖于单价阳离子的运动,因此,只有通过表征所涉及离子的动力学才能了解这种过程。最近显示, 15 N-铵可以用作钾的替代物,以探测生物分子(如DNA四链体和酶)中的钾结合。此外,还导出了方程来描述 15 NH4 + 自旋系统中基于 15 N的自旋密度算符的时间演化。在此导出NMR脉冲序列,以选择 15 NH4 + 自旋系统的特定自旋密度矩阵元素,并测量其纵向弛豫,以表征分子的旋转相关时间。 15 NH4 + 离子以及 15 NH4 + 离子的化学交换事件的报告。在酸性水溶液中 15 NH4 + 的应用交叉验证了发达的脉冲序列,同时测量了 15 NH4的自旋弛豫率介绍了与细菌Hsp70同源DnaK的41 kDa结构域结合的 + ,以显示衍生脉冲序列的一般适用性。对于与DnaK结合的 15 N铵获得的旋转相关时间类似于描述围绕甲基三重轴旋转的相关时间。本文介绍的方法与先前的理论框架一起,为表征大分子系统中阳离子的运动特性提供了重要的一步。

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