Chou Y C
Department of Physics, National Tsing Hua University, Hsinchu, Taiwan.
Eur Phys J E Soft Matter. 2020 Apr 21;43(4):21. doi: 10.1140/epje/i2020-11944-1.
Three recently observed facts of the translocation of actual hexameric and nonstructural (NS) helicases are related to the various physical quantities and are in accordance with the recently proposed mechanical mechanism: a) the translocation of hexameric helicases might be led by either the N-terminal domain (NTD) or C-terminal domain (CTD) depending on which domain has a smaller central pore, b) the translocation speed (v) of the ring-shaped helicases and NS helicases decreased with decreasing applied tension, and c) a large difference in the v of the NS helicase was observed for the helicase translocating on DNA and RNA. These findings are the effects of the physical quantities of the helicase/nuclei acid strands on the translocation of helicases and are difficult to explain with biochemical models. We predict that a similar behavior as described in b) and c) is also shown by hexameric helicases. The validity of the mechanical mechanism is demonstrated in simulation experiments.
最近观察到的关于实际六聚体和非结构(NS)解旋酶转位的三个事实与各种物理量相关,并且与最近提出的机械机制一致:a)六聚体解旋酶的转位可能由N端结构域(NTD)或C端结构域(CTD)引导,这取决于哪个结构域具有较小的中心孔;b)环状解旋酶和NS解旋酶的转位速度(v)随着施加张力的降低而降低;c)观察到NS解旋酶在DNA和RNA上转位时v有很大差异。这些发现是解旋酶/核酸链的物理量对解旋酶转位的影响,很难用生化模型来解释。我们预测六聚体解旋酶也会表现出与b)和c)中描述的类似行为。机械机制的有效性在模拟实验中得到了证明。