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Using nonequilibrium capillary electrophoresis of equilibrium mixtures for the determination of temperature in capillary electrophoresis

机译:使用平衡混合物的非平衡毛细管电泳测定毛细管电泳中的温度

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Until now, all methods for temperature sensing in capillary electrophoresis (CE) relied on molecular probes with temperature-dependent spectral/optical properties. Here we introduce a nonspectroscopic approach to determining temperature in CE. It is based on measuring a temperature-dependent rate constant of complex dissociation by means of a kinetic CE method known as nonequilibrium capillary electrophoresis of equilibrium mixtures (NECEEM). Conceptually, a calibration curve of "the rate constant versus temperature" is built using NECEEM and a CE instrument with a reliable temperature control or, alternatively, a nonelectrophoretic method, such as surface plasmon resonance. The calibration curve is then used to find the temperature during CE in the same buffer but with another CE apparatus or under otherwise different conditions (cooling efficiency, length and diameter of the capillary, electrical field, etc.). In this proof-of-principle work, we used the dissociation of a proteinDNA complex to demonstrate that the NECEEM-based temperature determination method allows for temperature determination in CE with a precision of 2 degreesC. Then, we applied the NECEEM-based temperature determination method to study heat dissipation efficiency in CE instruments with active and passive cooling of the capillary. The nonspectroscopic nature of the method makes it potentially applicable to nonspectroscopic detection schemes, e.g. electrochemical detection. A "kinetic probe" can be coloaded into the capillary along with a sample for in situ temperature measurements. Higher order chemical reactions can also be used for temperature sensing, provided a kinetic CE method for measuring a corresponding rate constant is available.
机译:到目前为止,毛细管电泳(CE)中所有用于温度感测的方法都依赖于具有与温度相关的光谱/光学特性的分子探针。在这里,我们介绍了一种非光谱方法来确定CE中的温度。它基于通过动力学CE方法(称为平衡混合物的非平衡毛细管电泳)测量复合物解离的温度相关速率常数的方法。从概念上讲,使用NECEEM和带有可靠温度控制功能的CE仪器或使用非电泳方法(例如表面等离振子共振)建立“速率常数对温度”的校准曲线。然后,使用校准曲线在同一缓冲液中但在另一台CE设备上或在其他不同条件下(冷却效率,毛细管的长度和直径,电场等)在CE期间查找温度。在这项原理验证工作中,我们使用了蛋白质DNA复合体的解离来证明基于NECEEM的温度测定方法可以在CE中以2摄氏度的精度进行温度测定。然后,我们应用基于NECEEM的温度确定方法来研究毛细管主动和被动冷却的CE仪器的散热效率。该方法的非光谱性质使得它有可能适用于非光谱检测方案,例如。电化学检测。可以将“动力学探针”与样品一起加载到毛细管中,以进行原位温度测量。如果可以使用动力学CE方法测量相应的速率常数,也可以将高级化学反应用于温度感测。

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