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首页> 外文期刊>Journal of the Korean Physical Society >Double-stranded DNA force sensors to study the molecular level forces required to activate signaling pathways
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Double-stranded DNA force sensors to study the molecular level forces required to activate signaling pathways

机译:双链DNA力传感器研究激活信号通路所需的分子水平力

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摘要

Single-molecule force measurement techniques provide unique opportunities to investigate simple molecular interactions and complicated force-induced cell responses. This has revolutionized our understanding of how mechanical cues influence cell behaviors. Recent advances in DNA technologies have led to the development of tension sensors for high-throughput screening of pN scale forces with single-molecule precision. Thus, the emerging DNA-based mechano-sensors are replacing conventional single-molecule force spectroscopes. This review provides an overview of double-stranded DNA-based mechano-sensors, such as the tension gauge tether (TGT) and its derivatives, and their biophysical applications. First, we review the theoretical background of the force-induced rupture of DNA duplexes and force sensing mechanisms using DNA structures. Next, we survey the use of double-stranded DNA-based force sensors to study the role of mechanical forces, mostly receptor tensions, in signaling pathways.
机译:单分子力测量技术为研究简单的分子相互作用和复杂的力诱导细胞反应提供了独特的机会。这彻底改变了我们对机械信号如何影响细胞行为的理解。DNA技术的最新进展导致了张力传感器的发展,该传感器可用于单分子精度的pN规模力的高通量筛选。因此,新兴的基于DNA的机械传感器正在取代传统的单分子力分光镜。本文综述了基于双链DNA的机械力传感器,如张力计系链(TGT)及其衍生物及其生物物理应用。首先,我们回顾了力诱导DNA双链体断裂的理论背景和利用DNA结构的力传感机制。接下来,我们调查了基于双链DNA的力传感器的使用情况,以研究机械力(主要是受体张力)在信号通路中的作用。

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