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Universal guidelines for the conversion of proteins and dyes into functional nanothermometers

机译:将蛋白质和染料转化为功能纳米热量计的通用指南

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In the last decade, technological advances in chemistry and photonics have enabled real-time measurement of temperature at the nanoscale. Nanothermometers, probes specifically designed to relay these nanoscale temperature changes, provide a high degree of temperature, temporal, and spatial resolution and precision. Several different approaches have been proposed, including microthermocouples, luminescence and fluorescence polarization anisotropy-based nanothermometers. Anisotropy-based nanothermometers excel in terms of biocompatibility because they can be built from endogenous proteins conjugated to dyes, minimizing any system perturbation. Moreover, the resulting fluorescent proteins can retain their native structure and activity while performing the temperature measurement, allowing precise temperature recordings from the native environment or during an enzymatic reaction in any given experimental system. To facilitate the future use of these nanothermometers in research, here we present a theoretical model that predicts the optimal sensitivity for anisotropy-based thermometers starting with any protein or dye, based on protein size and dye fluorescence lifetime. Using this model, most proteins and dyes can be converted to nanothermometers. The utilization of these nanothermometers by a broad spectrum of disciplines within the scientific community will bring new knowledge and understanding that today remains unavailable with current techniques.
机译:在过去十年中,化学和光子学的技术进步使得在纳米级上的实时测量温度。纳米温度计,专门设计用于中继这些纳米级温度变化的探针,提供高度的温度,时间和空间分辨率和精度。已经提出了几种不同的方法,包括微常电源,发光和荧光极化各向异性的纳米温度计。基于各向异性的纳米温度计在生物相容性方面,因为它们可以由与染料缀合的内源蛋白质构建,从而最小化任何系统扰动。此外,所得荧光蛋白可以在进行温度测量的同时保持其天然结构和活性,允许来自天然环境的精确温度记录或在任何给定的实验系统中的酶促反应。为了便于将来在研究中使用这些纳米温度计,这里我们提出了一种理论模型,其基于蛋白质尺寸和染料荧光寿命,预测基于各向异性的温度计的最佳敏感性。使用该模型,大多数蛋白质和染料可以转化为纳米温度计。通过科学界内广泛的校长利用这些纳米测量仪将带来新的知识和理解,目前的技术仍然无法使用。

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