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A microfabrication-based approach to quantitative isothermal titration calorimetry

机译:基于微细加工的等温滴定量热法

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摘要

Isothermal titration calorimetry (ITC) directly measures heat evolved in a chemical reaction to determine equilibrium binding properties of biomolecular systems. Conventional ITC instruments are expensive, use complicated design and construction, and require long analysis times. Microfabricated calorimetric devices are promising, although they have yet to allow accurate, quantitative ITC measurements of biochemical reactions. This paper presents a microfabrication-based approach to integrated, quantitative ITC characterization of biomolecular interactions. The approach integrates microfabricated differential calorimetric sensors with microfluidic titration. Biomolecules and reagents are introduced at each of a series of molar ratios, mixed, and allowed to react. The reaction thermal power is differentially measured, and used to determine the thermodynamic profile of the biomolecular interactions. Implemented in a microdevice featuring thermally isolated, well-defined reaction volumes with minimized fluid evaporation as well as highly sensitive thermoelectric sensing, the approach enables accurate and quantitative ITC measurements of protein-ligand interactions under different isothermal conditions. Using the approach, we demonstrate ITC characterization of the binding of 18-Crown-6 with barium chloride, and the binding of ribonuclease A with cytidine 2'-monophosphate within reaction volumes of approximately 0.7 mu L and at concentrations down to 2 mM. For each binding system, the ITC measurements were completed with considerably reduced analysis times and material consumption, and yielded a complete thermodynamic profile of the molecular interaction in agreement with published data. This demonstrates the potential usefulness of our approach for biomolecular characterization in biomedical applications. (C) 2015 Elsevier B.V. All rights reserved.
机译:等温滴定热量法(ITC)直接测量化学反应中放出的热量,以确定生物分子系统的平衡结合特性。常规的ITC仪器价格昂贵,使用复杂的设计和结构,并且需要较长的分析时间。微型量热装置是有前途的,尽管它们尚未允许对生化反应进行准确,定量的ITC测量。本文提出了一种基于微细加工的方法来对生物分子相互作用进行定量的ITC表征。该方法将微制造的差示热量传感器与微流体滴定集成在一起。以一系列摩尔比的每一个引入生物分子和试剂,混合并使其反应。对反应热功率进行差分测量,并将其用于确定生物分子相互作用的热力学曲线。该方法在具有热隔离,定义明确的反应体积,最小化的流体蒸发以及高度灵敏的热电传感的微型设备中实施,可在不同等温条件下进行准确,定量的ITC测量蛋白-配体相互作用。使用该方法,我们证明了18-Crown-6与氯化钡的结合以及核糖核酸酶A与胞苷2'-单磷酸的结合的ITC表征在约0.7μL的反应体积内以及低至2 mM的浓度。对于每个结合系统,ITC测量均以大大减少的分析时间和材料消耗完成,并与公开的数据一致,得出了分子相互作用的完整热力学曲线。这证明了我们的方法在生物医学应用中对生物分子表征的潜在有用性。 (C)2015 Elsevier B.V.保留所有权利。

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