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Painting protein misfolding in the cell in real time with an atomic-scale brush.

机译:使用原子级画笔实时绘制细胞中错误折叠的蛋白质。

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The direct observation of specific biochemical events in living cells is now possible as a result of combined advances in molecular biology and fluorescence microscopy. By genetically encoding the source of a unique spectroscopic signal, target proteins can be selectively detected within the complex cellular environment, with limited interference from background signals. A recent study takes advantage of arsenical reagent-based methodologies to monitor in vivo protein misfolding and inclusion body formation in real time. This approach promises to yield important information on the kinetics of aggregate formation in living cells and its relation to the time-course of protein expression and post-translational processing. The ability to follow protein self-association in real time accurately from its early stages is unique to this method, and has far-reaching implications for both biotechnology and misfolding-based disease.
机译:由于分子生物学和荧光显微镜技术的联合发展,现在有可能直接观察活细胞中特定的生化事件。通过遗传编码独特光谱信号的来源,可以在复杂的细胞环境中选择性检测目标蛋白,而不受背景信号的干扰。最近的一项研究利用基于砷试剂的方法来实时监测体内蛋白质错误折叠和包涵体形成。这种方法有望产生有关活细胞中聚集体形成动力学及其与蛋白质表达和翻译后加工过程的关系的重要信息。从其早期阶段就可以实时准确地实时跟踪蛋白质自缔合的能力是该方法的独特之处,并且对生物技术和基于错误折叠的疾病都具有深远的影响。

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