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微流控多功能探针阵列介电泳力谱学,具有较宽的加载速率。

Microfluidic multifunctional probe array dielectrophoretic force spectroscopy with wide loading rates.

机构信息

Department of Biomedical Engineering, Yonsei University, Won-Ju, 220-710, Korea.

出版信息

ACS Nano. 2012 Oct 23;6(10):8665-73. doi: 10.1021/nn302202t. Epub 2012 Sep 11.

Abstract

The simultaneous investigation of a large number of events with different types of intermolecular interactions, from nonequilibrium high-force pulling assays to quasi-equilibrium unbinding events in the same environment, can be very important for fully understanding intermolecular bond-rupture mechanisms. Here, we describe a novel dielectrophoretic force spectroscopy technique that utilizes microsized beads as multifunctional probes for parallel measurement of intermolecular forces with an extremely wide range of force rate (10(-4) to 10(4) pN/s) inside a microfluidic device. In our experiments, various forces, which broadly form the basis of all molecular interactions, were measured across a range of force loading rates by multifunctional probes of various diameters with a throughput of over 600 events per mm(2), simultaneously and in the same environment. Furthermore, the individual bond-rupture forces, the parameters for the characterization of entire energy landscapes, and the effective stiffness of the force spectroscopy were determined on the basis of the measured results. This method of determining intermolecular forces could be very useful for the precise and simultaneous examination of various molecular interactions, as it can be easily and cost-effectively implemented within a microfluidic device for a range of applications including immunoassays, molecular mechanics, chemical and biological screening, and mechanobiology.

摘要

同时研究具有不同类型分子间相互作用的大量事件,从非平衡高力拉伸测定到相同环境中的准平衡解联事件,对于全面理解分子间键断裂机制非常重要。在这里,我们描述了一种新颖的介电泳力谱技术,该技术利用微球作为多功能探针,在微流控装置内以极宽的力速率范围(10(-4) 到 10(4) pN/s)进行分子间力的并行测量。在我们的实验中,通过各种直径的多功能探针以超过 600 个事件/mm(2)的通量在各种力加载速率下测量了广泛构成所有分子相互作用基础的各种力。此外,基于测量结果确定了单个键断裂力、整个能量景观的特征参数以及力谱学的有效刚度。这种确定分子间力的方法对于精确和同时检查各种分子相互作用非常有用,因为它可以在微流控装置中轻松且具有成本效益地实现,适用于包括免疫测定、分子力学、化学和生物筛选以及机械生物学在内的多种应用。

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