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用于基于力检测DNA杂交事件的树枝状阵列。

Dendron arrays for the force-based detection of DNA hybridization events.

作者信息

Jung Yu Jin, Hong Bong Jin, Zhang Wenke, Tendler Saul J B, Williams Philip M, Allen Stephanie, Park Joon Won

机构信息

Center for Integrated Molecular Systems, Department of Chemistry, Pohang University of Science and Technology, San 31 Hyoja-Dong, Pohang, Korea.

出版信息

J Am Chem Soc. 2007 Aug 1;129(30):9349-55. doi: 10.1021/ja0676105. Epub 2007 Jul 11.

Abstract

Single-molecule force measurement methods have attracted increasing interest over recent years for the development of novel approaches for biomolecular screening. However, many of these developments are currently hindered by the available biomolecule surface attachment methods, in that it is still not trivial to create surfaces and devices with highly defined surface functionality and/or uniformity. Here we offer a new approach to address such issues based on the formation of dendron arrays. Through the measurement of forces between dendron surfaces functionalized with complementary DNA oligonucleotides, we observed several unique properties of the surfaces modified via this approach. The capability to record attractive or "jump-in" forces associated with molecular binding events is one of them. Additionally, these events occur in greater than 80% of measurements, and the forces are dependent on the number of complementary DNA bases of the associating strands while being insensitive to the measurement rate. Combined with a narrow distribution of both attractive forces and unbinding forces we suggest such functionalized surfaces offer a significant advance for fast and accurate force-based studies of oligonucleotide hybridization.

摘要

近年来,单分子力测量方法在开发新型生物分子筛选方法方面引起了越来越多的关注。然而,目前这些进展中的许多都受到现有生物分子表面附着方法的阻碍,因为创建具有高度明确的表面功能和/或均匀性的表面和设备仍然并非易事。在此,我们基于树枝状阵列的形成提供一种新方法来解决此类问题。通过测量用互补DNA寡核苷酸功能化的树枝状表面之间的力,我们观察到通过这种方法修饰的表面具有几个独特的特性。记录与分子结合事件相关的吸引力或“跳入”力的能力就是其中之一。此外,这些事件在超过80%的测量中发生,并且力取决于结合链的互补DNA碱基数量,而对测量速率不敏感。结合吸引力和解离力的窄分布,我们认为这种功能化表面为基于力的寡核苷酸杂交快速准确研究提供了重大进展。

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