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从 X 射线衍射图谱和力学数据估算活体肌肉中肌动蛋白丝上的力。

Estimation of Forces on Actin Filaments in Living Muscle from X-ray Diffraction Patterns and Mechanical Data.

机构信息

Department of Biological Sciences, Illinois Institute of Technology, Chicago, IL 60616, USA.

Department of Chemistry and Chemical Biology, Northeastern University, Boston, MA 02115, USA.

出版信息

Int J Mol Sci. 2019 Nov 30;20(23):6044. doi: 10.3390/ijms20236044.

Abstract

Many biological processes are triggered or driven by mechanical forces in the cytoskeletal network, but these transducing forces have rarely been assessed. Striated muscle, with its well-organized structure provides an opportunity to assess intracellular forces using small-angle X-ray fiber diffraction. We present a new methodology using Monte Carlo simulations of muscle contraction in an explicit 3D sarcomere lattice to predict the fiber deformations and length changes along thin filaments during contraction. Comparison of predicted diffraction patterns to experimental meridional X-ray reflection profiles allows assessment of the stepwise changes in intermonomer spacings and forces in the myofilaments within living muscle cells. These changes along the filament length reflect the effect of forces from randomly attached crossbridges. This approach enables correlation of the molecular events, such as the current number of attached crossbridges and the distributions of crossbridge forces to macroscopic measurements of force and length changes during muscle contraction. In addition, assessments of fluctuations in local forces in the myofilaments may reveal how variations in the filament forces acting on signaling proteins in the sarcomere M-bands and Z-discs modulate gene expression, protein synthesis and degradation, and as well to mechanisms of adaptation of muscle in response to changes in mechanical loading.

摘要

许多生物过程都是由细胞骨架网络中的机械力触发或驱动的,但这些转换力很少被评估。横纹肌具有组织良好的结构,为使用小角度 X 射线纤维衍射评估细胞内力提供了机会。我们提出了一种新的方法,使用显式 3D 肌节晶格中肌肉收缩的蒙特卡罗模拟来预测收缩过程中沿细肌丝的纤维变形和长度变化。将预测的衍射图案与实验子午线 X 射线反射轮廓进行比较,可以评估活肌肉细胞中肌球蛋白丝内单体间间距和力的逐步变化。沿细丝长度的这些变化反映了随机附着的交联桥的力的影响。这种方法可以将分子事件(例如当前附着的交联桥的数量以及交联桥力的分布)与肌肉收缩过程中力和长度变化的宏观测量相关联。此外,评估肌球蛋白丝中局部力的波动可以揭示作用于肌节 M 带和 Z 盘上信号蛋白的细丝力的变化如何调节基因表达、蛋白质合成和降解,以及肌肉对机械负荷变化的适应机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0771/6928692/4d13e1e31535/ijms-20-06044-g001.jpg

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