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Temperature Effects on Force and Actin⁻Myosin Interaction in Muscle: A Look Back on Some Experimental Findings.温度对肌肉力和肌动球蛋白相互作用的影响:对一些实验发现的回顾。
Int J Mol Sci. 2018 May 22;19(5):1538. doi: 10.3390/ijms19051538.
2
Effects of cross-bridge compliance on the force-velocity relationship and muscle power output.横桥弹性对力-速度关系及肌肉功率输出的影响。
PLoS One. 2017 Dec 28;12(12):e0190335. doi: 10.1371/journal.pone.0190335. eCollection 2017.
3
Skeletal muscle contractile properties in a novel murine model for limb girdle muscular dystrophy 2i.肢带型肌营养不良症 2i 新型小鼠模型中的骨骼肌收缩特性。
J Appl Physiol (1985). 2017 Dec 1;123(6):1698-1707. doi: 10.1152/japplphysiol.00744.2016. Epub 2017 Aug 31.
4
Myosin MgADP Release Rate Decreases as Sarcomere Length Increases in Skinned Rat Soleus Muscle Fibers.在去皮肤的大鼠比目鱼肌纤维中,随着肌节长度增加,肌球蛋白MgADP释放速率降低。
Biophys J. 2016 Nov 1;111(9):2011-2023. doi: 10.1016/j.bpj.2016.09.024.
5
Effects of myosin light chain phosphorylation on length-dependent myosin kinetics in skinned rat myocardium.肌球蛋白轻链磷酸化对去表皮大鼠心肌长度依赖性肌球蛋白动力学的影响。
Arch Biochem Biophys. 2016 Jul 1;601:56-68. doi: 10.1016/j.abb.2015.12.014. Epub 2016 Jan 5.
6
Force generation by skeletal muscle is controlled by mechanosensing in myosin filaments.骨骼肌的力生成由肌球蛋白丝中的机械感觉控制。
Nature. 2015 Dec 10;528(7581):276-9. doi: 10.1038/nature15727. Epub 2015 Nov 11.
7
Myosin MgADP release rate decreases at longer sarcomere length to prolong myosin attachment time in skinned rat myocardium.在去表皮的大鼠心肌中,肌球蛋白MgADP释放速率在更长的肌节长度下降低,以延长肌球蛋白附着时间。
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8
Optimization of Active Muscle Force-Length Models Using Least Squares Curve Fitting.使用最小二乘法曲线拟合优化活动肌肉力-长度模型
IEEE Trans Biomed Eng. 2016 Mar;63(3):630-5. doi: 10.1109/TBME.2015.2467169. Epub 2015 Aug 11.
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An inverse power-law distribution of molecular bond lifetimes predicts fractional derivative viscoelasticity in biological tissue.分子键寿命的逆幂律分布预测生物组织的分数阶导数粘弹性。
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Effect of muscle length on cross-bridge kinetics in intact cardiac trabeculae at body temperature.肌肉长度对体温下完整心肌小梁横桥动力学的影响。
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在完整的小鼠比目鱼肌等长收缩过程中,肌球蛋白横桥动力学在肌肉长度较长时会减慢。

Myosin cross-bridge kinetics slow at longer muscle lengths during isometric contractions in intact soleus from mice.

作者信息

Fenwick Axel J, Lin David C, Tanner Bertrand C W

机构信息

Department of Integrative Physiology and Neuroscience, Washington State University, Pullman, WA 99164, USA.

Washington Center for Muscle Biology, Washington State University, Pullman, WA 99164, USA.

出版信息

Proc Biol Sci. 2021 May 12;288(1950):20202895. doi: 10.1098/rspb.2020.2895.

DOI:10.1098/rspb.2020.2895
PMID:33975478
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8190544/
Abstract

Muscle contraction results from force-generating cross-bridge interactions between myosin and actin. Cross-bridge cycling kinetics underlie fundamental contractile properties, such as active force production and energy utilization. Factors that influence cross-bridge kinetics at the molecular level propagate through the sarcomeres, cells and tissue to modulate whole-muscle function. Conversely, movement and changes in the muscle length can influence cross-bridge kinetics on the molecular level. Reduced, single-molecule and single-fibre experiments have shown that increasing the strain on cross-bridges may slow their cycling rate and prolong their attachment duration. However, whether these strain-dependent cycling mechanisms persist in the intact muscle tissue, which encompasses more complex organization and passive elements, remains unclear. To investigate this multi-scale relationship, we adapted traditional step-stretch protocols for use with mouse soleus muscle during isometric tetanic contractions, enabling novel estimates of length-dependent cross-bridge kinetics in the intact skeletal muscle. Compared to rates at the optimal muscle length (), we found that cross-bridge detachment rates increased by approximately 20% at 90% of (shorter) and decreased by approximately 20% at 110% of (longer). These data indicate that cross-bridge kinetics vary with whole-muscle length during intact, isometric contraction, which could intrinsically modulate force generation and energetics, and suggests a multi-scale feedback pathway between whole-muscle function and cross-bridge activity.

摘要

肌肉收缩源于肌球蛋白和肌动蛋白之间产生力的横桥相互作用。横桥循环动力学是诸如主动力产生和能量利用等基本收缩特性的基础。在分子水平上影响横桥动力学的因素会通过肌节、细胞和组织传播,从而调节全肌肉功能。相反,肌肉长度的变化和运动也会在分子水平上影响横桥动力学。简化的单分子和单纤维实验表明,增加横桥上的应变可能会减慢其循环速率并延长其附着持续时间。然而,这些应变依赖性循环机制在包含更复杂组织结构和被动元件的完整肌肉组织中是否仍然存在尚不清楚。为了研究这种多尺度关系,我们调整了传统的阶梯拉伸方案,以便在等长强直收缩期间用于小鼠比目鱼肌,从而能够对完整骨骼肌中长度依赖性横桥动力学进行新的估计。与最佳肌肉长度()时的速率相比,我们发现在(较短)的90%时横桥脱离速率增加了约20%,在(较长)的110%时降低了约20%。这些数据表明,在完整的等长收缩过程中,横桥动力学随全肌肉长度而变化,这可能会内在地调节力的产生和能量学,并提示了全肌肉功能和横桥活动之间的多尺度反馈途径。