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两个平滑肌肌球蛋白头部的合作对于通过磷酸化充分激活运动功能是必不可少的。

Cooperation between the two heads of smooth muscle myosin is essential for full activation of the motor function by phosphorylation.

机构信息

School of Life Sciences, University of Science and Technology of China , Hefei, Anhui 230027, China.

出版信息

Biochemistry. 2013 Sep 10;52(36):6240-8. doi: 10.1021/bi400554s. Epub 2013 Aug 26.

Abstract

The motor function of smooth muscle myosin (SmM) is regulated by phosphorylation of the regulatory light chain (RLC) bound to the neck region of the SmM heavy chain. It is generally accepted that unphosphorylated RLC induces interactions between the two heads and between the head and the tail, thus inhibiting the motor activity of SmM, whereas phosphorylation of RLC interrupts those interactions, thus reversing the inhibition and restoring the motor activity to the maximal value. One assumption of this model is that single-headed SmM is fully active regardless of phosphorylation. To re-evaluate this model, we produced a number of SmM constructs with coiled coils of various lengths and examined their structure and regulation. With these constructs we identified the segment in the coiled-coil key for the formation of a stable double-headed structure. In agreement with the current model, we found that the actin-activated ATPase activity of unphosphorylated SmM increased with shortening of the coiled-coil. However, contrary to the current model, we found that the actin-activated ATPase activity of phosphorylated SmM decreased with shortening coiled-coil and only the stable double-headed SmM was fully activated by phosphorylation. These results indicate that single-headed SmM is neither fully active nor fully inhibited. Based on our findings, we propose that cooperation between the two heads is essential, not only for the inhibition of unphosphorylated SmM, but also for the activation of phosphorylated SmM.

摘要

平滑肌肌球蛋白 (SmM) 的运动功能受结合在 SmM 重链颈部区域的调节轻链 (RLC) 磷酸化的调节。人们普遍认为,未磷酸化的 RLC 诱导两个头部之间以及头部与尾部之间的相互作用,从而抑制 SmM 的运动活性,而 RLC 的磷酸化中断了这些相互作用,从而逆转抑制并将运动活性恢复到最大值。该模型的一个假设是,无论磷酸化如何,单头 SmM 都是完全活跃的。为了重新评估该模型,我们产生了许多具有不同长度卷曲螺旋的 SmM 构建体,并检查了它们的结构和调节。通过这些构建体,我们确定了卷曲螺旋中形成稳定双头结构的关键片段。与当前模型一致,我们发现未磷酸化 SmM 的肌动蛋白激活 ATP 酶活性随着卷曲螺旋的缩短而增加。然而,与当前模型相反,我们发现磷酸化 SmM 的肌动蛋白激活 ATP 酶活性随着卷曲螺旋的缩短而降低,只有稳定的双头 SmM 被磷酸化完全激活。这些结果表明,单头 SmM 既不是完全活跃的,也不是完全抑制的。基于我们的发现,我们提出两个头部之间的合作不仅对于未磷酸化 SmM 的抑制,而且对于磷酸化 SmM 的激活都是必不可少的。

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