构象集合
化学
连贯性(哲学赌博策略)
内在无序蛋白质
定点自旋标记
偶极子
量子
化学物理
磁偶极-偶极相互作用
自旋(空气动力学)
光谱学
电子顺磁共振
航程(航空)
残留偶极耦合
耦合
核磁共振波谱
共振(粒子物理)
联轴节(管道)
分子物理学
物理
电子
核磁共振
蛋白质结构
纳米技术
分子构象
生物系统
分子
量子点
统计物理学
脉冲序列
线性响应理论
作者
Aritro Sinha Roy,Karen Tsay,Peter P. Borbat,Audra J. DeStefano,Songi Han,Madhur Srivastava,Jack H. Freed
摘要
Intrinsically disordered proteins (IDPs) underlie essential cellular functions and drive neurodegenerative diseases through mutation-induced structural changes, yet their conformational heterogeneity often evades crystallography and cryo-EM. Electron spin resonance (ESR) pulsed dipolar spectroscopy (PDS), which determines distance distributions between a pair of spin-labeled residues in a protein, can provide complementary and meaningful information related to conformational heterogeneity in IDPs. Double quantum coherence (DQC) is an important ESR PDS technique, capable of measuring a wide range of distances (∼10 to at least 80 Å), and is a single-frequency technique with a small background that can be easily removed. This makes DQC an ideal candidate to probe IDPs. We present a complete theoretical framework for DQC data analysis, incorporating pseudosecular dipolar coupling and finite pulse effects, enabling rapid and accurate reconstruction of complex distance distributions in doubly nitroxide-labeled IDPs. We validate the method on rigid biradicals with known interspin distances. The application to a tau protein fragment (jR2R3) reveals distinct end-to-end distance distributions for the wild-type vs the disease-associated P301L mutant. The results expose differences in their conformational distributions, which likely govern their divergent aggregation propensities. This advance also establishes DQC ESR as a powerful, accessible tool for probing disorders in biomolecular systems.
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