Experimental methods to study the structure and dynamics of intrinsically disordered regions in proteins

IF 2.7 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Research in Structural Biology Pub Date : 2024-01-01 DOI:10.1016/j.crstbi.2024.100138
Snigdha Maiti , Aakanksha Singh, Tanisha Maji, Nikita V. Saibo, Soumya De
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Abstract

Eukaryotic proteins often feature long stretches of amino acids that lack a well-defined three-dimensional structure and are referred to as intrinsically disordered proteins (IDPs) or regions (IDRs). Although these proteins challenge conventional structure-function paradigms, they play vital roles in cellular processes. Recent progress in experimental techniques, such as NMR spectroscopy, single molecule FRET, high speed AFM and SAXS, have provided valuable insights into the biophysical basis of IDP function. This review discusses the advancements made in these techniques particularly for the study of disordered regions in proteins. In NMR spectroscopy new strategies such as 13C detection, non-uniform sampling, segmental isotope labeling, and rapid data acquisition methods address the challenges posed by spectral overcrowding and low stability of IDPs. The importance of various NMR parameters, including chemical shifts, hydrogen exchange rates, and relaxation measurements, to reveal transient secondary structures within IDRs and IDPs are presented. Given the high flexibility of IDPs, the review outlines NMR methods for assessing their dynamics at both fast (ps-ns) and slow (μs-ms) timescales. IDPs exert their functions through interactions with other molecules such as proteins, DNA, or RNA. NMR-based titration experiments yield insights into the thermodynamics and kinetics of these interactions. Detailed study of IDPs requires multiple experimental techniques, and thus, several methods are described for studying disordered proteins, highlighting their respective advantages and limitations. The potential for integrating these complementary techniques, each offering unique perspectives, is explored to achieve a comprehensive understanding of IDPs.

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研究蛋白质内在无序区结构和动力学的实验方法
真核生物蛋白质通常具有缺乏明确三维结构的长段氨基酸,被称为内在无序蛋白(IDPs)或区域(IDRs)。尽管这些蛋白质对传统的结构-功能范式提出了挑战,但它们在细胞过程中发挥着重要作用。核磁共振光谱、单分子 FRET、高速原子力显微镜(AFM)和 SAXS 等实验技术的最新进展为了解 IDP 功能的生物物理基础提供了宝贵的视角。本综述将讨论这些技术在研究蛋白质无序区方面取得的进展。在核磁共振光谱学中,13C 检测、非均匀取样、分段同位素标记和快速数据采集方法等新策略解决了 IDPs 光谱拥挤和稳定性低带来的挑战。介绍了各种 NMR 参数(包括化学位移、氢交换率和弛豫测量)对揭示 IDR 和 IDP 内部瞬时二级结构的重要性。鉴于 IDPs 的高度灵活性,综述概述了在快速(ps-ns)和慢速(μs-ms)时间尺度下评估其动态的 NMR 方法。IDPs 通过与蛋白质、DNA 或 RNA 等其他分子的相互作用发挥其功能。基于核磁共振的滴定实验可深入了解这些相互作用的热力学和动力学。对 IDP 的详细研究需要多种实验技术,因此,本文介绍了几种研究无序蛋白的方法,并突出了它们各自的优势和局限性。研究还探讨了整合这些互补技术的潜力,这些技术各自提供了独特的视角,从而实现对 IDPs 的全面了解。
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来源期刊
CiteScore
4.60
自引率
0.00%
发文量
33
审稿时长
104 days
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