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Do Femtonewton Forces Affect Genetic Function? A Review

机译:Femtonewton力会影响遗传功能吗?回顾

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摘要

Protein-Mediated DNA looping is intricately related to gene expression. Therefore any mechanical constraint that disrupts loop formation can play a significant role in gene regulation. Polymer physics models predict that less than a piconewton of force may be sufficient to prevent the formation of DNA loops. Thus, it appears that tension can act as a molecular switch that controls the much larger forces associated with the processive motion of RNA polymerase. Since RNAP can exert forces over 20 pN before it stalls, a ‘substrate tension switch’ could offer a force advantage of two orders of magnitude. Evidence for such a mechanism is seen in recent in vitro micromanipulation experiments. In this article we provide new perspective on existing theory and experimental data on DNA looping in vitro and in vivo. We elaborate on the connection between tension and a variety of other intracellular mechanical constraints including sequence specific curvature and supercoiling. In the process, we emphasize that the richness and versatility of DNA mechanics opens up a whole new paradigm of gene regulation to explore.
机译:蛋白质介导的DNA循环与基因表达错综复杂。因此,任何破坏环形成的机械约束都可以在基因调控中发挥重要作用。高分子物理学模型预测,小于皮微的力可能足以防止DNA环的形成。因此,看来张力可以充当分子开关,其控制与RNA聚合酶的进程性运动相关的更大的力。由于RNAP在失速之前可以施加超过20 pN的力,因此“基板张力开关”可以提供两个数量级的力优势。在最近的体外显微操作实验中可以看到这种机制的证据。在本文中,我们提供了有关DNA体外和体内环化的现有理论和实验数据的新观点。我们详细阐述了张力与各种其他细胞内机械约束(包括序列特异性曲率和超螺旋)之间的关系。在此过程中,我们强调DNA力学的丰富性和多功能性为基因调控开辟了一个全新的范式。

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