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Limitations of Time-Resolved Fluorescence Suggested by Molecular Simulations: Assessing the Dynamics of T cell Receptor Binding Loops

机译:分子模拟表明时间分辨荧光的局限性:评估T细胞受体结合环的动力学

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摘要

Time-resolved fluorescence anisotropy (TRFA) has a rich history in evaluating protein dynamics. Yet as often employed, TRFA assumes that the motional properties of a covalently tethered fluorescent probe accurately portray the motional properties of the protein backbone at the probe attachment site. In an extensive survey using TRFA to study the dynamics of the binding loops of a αβ T cell receptor, we observed multiple discrepancies between the TRFA data and previously published results that led us to question this assumption. We thus simulated several of the experimentally probed systems using a protocol that permitted accurate determination of probe and protein time correlation functions. We found excellent agreement in the decays of the experimental and simulated correlation functions. However, the motional properties of the probe were poorly correlated with those of the backbone of both the labeled and unlabeled protein. Our results warrant caution in the interpretation of TRFA data and suggest further studies to ascertain the extent to which probe dynamics reflect those of the protein backbone. Meanwhile, the agreement between experiment and computation validates the use of molecular dynamics simulations as an accurate tool for exploring the molecular motion of T cell receptors and their binding loops.
机译:时间分辨荧光各向异性(TRFA)在评估蛋白质动力学方面具有丰富的历史。然而,正如经常采用的那样,TRFA假设共价连接的荧光探针的运动特性准确地描绘了蛋白质主链在探针附着位点的运动特性。在一项广泛的调查中,使用TRFA研究了αβT细胞受体结合环的动力学,我们观察到TRFA数据与先前发表的结果之间存在多种差异,这使我们对这一假设提出了质疑。因此,我们使用允许精确确定探针和蛋白质时间相关函数的协议模拟了几个实验探测的系统。我们在实验和模拟相关函数的衰减中找到了极好的一致性。然而,探针的运动特性与标记的和未标记的蛋白的骨架的运动特性均不相关。我们的结果在TRFA数据的解释中应谨慎行事,并建议进行进一步的研究以确定探针动力学反映蛋白质骨架的程度。同时,实验与计算之间的协议验证了分子动力学模拟作为探索T细胞受体及其结合环的分子运动的精确工具的有效性。

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