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昆虫飞行肌拉伸的最早分子反应,通过快速 X 射线衍射记录揭示。

The earliest molecular response to stretch of insect flight muscle as revealed by fast X-ray diffraction recording.

机构信息

Japan Synchrotron Radiation Research Institute (JASRI), SPring-8, 1-1-1 Kouto, Sayo-cho, Sayo-gun, Hyogo 679-5198, Japan.

出版信息

Sci Rep. 2017 Feb 8;7:42272. doi: 10.1038/srep42272.

Abstract

Small insects drive their flight muscle at frequencies up to 1,000 Hz. This remarkable ability owes to the mechanism of stretch activation. However, it remains unknown as to what sarcomeric component senses the stretch and triggers the following force generation. Here we show that the earliest structural change after a step stretch is reflected in the blinking of the 111 and 201 reflections, as observed in the fast X-ray diffraction recording from isolated bumblebee flight muscle fibers. The same signal has also been observed in live bumblebee. We demonstrate that (1) the signal responds almost concomitantly to a quick step stretch, (2) the signal grows with increasing calcium levels as the stretch-activated force does, and (3) a full 3-dimensional model demonstrates that the signal is maximized when objects having a 38.7-nm actin periodicity travel by ~20 nm along the filament axis. This is the expected displacement if myosin heads are loosely associated with actin target zones (where actin monomers are favorably oriented), and are dragged by a 1.3% stretch, which effectively causes stretch-induced activation. These results support and strengthen our proposal that the myosin head itself acts as the stretch sensor, after calcium-induced association with actin in a low-force form.

摘要

微小的昆虫可以以高达 1000Hz 的频率驱动其飞行肌肉。这种非凡的能力归功于伸展激活机制。然而,目前尚不清楚肌节的哪个成分感知伸展并触发随后的力产生。在这里,我们展示了在从分离的大黄蜂飞行肌纤维的快速 X 射线衍射记录中观察到的 111 和 201 反射的闪烁中,反映了步幅伸展后的最早结构变化。在活体大黄蜂中也观察到了相同的信号。我们证明了:(1)该信号几乎与快速步幅伸展同时响应;(2)该信号随钙水平的增加而增长,与伸展激活力一样;(3)一个完整的三维模型表明,当具有 38.7nm 肌动蛋白周期性的物体沿丝轴移动约 20nm 时,信号最大。如果肌球蛋白头部与肌动蛋白靶区(肌动蛋白单体的取向有利)松散结合,并被 1.3%的拉伸拉动,这有效地导致了拉伸诱导的激活,那么这就是预期的位移。这些结果支持并加强了我们的假设,即肌球蛋白头部本身在钙离子与肌动蛋白结合形成低力形式后充当伸展传感器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a029/5296744/5081eb595405/srep42272-f1.jpg

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