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本文引用的文献

1
Spontaneous oscillations of a minimal actomyosin system under elastic loading.在弹性负载下的最小肌动球蛋白系统的自发振荡。
Phys Rev Lett. 2009 Oct 9;103(15):158102. doi: 10.1103/PhysRevLett.103.158102.
2
Inter-sarcomere coordination in muscle revealed through individual sarcomere response to quick stretch.通过单个肌节对快速拉伸的反应揭示肌肉中的肌节间协调。
Proc Natl Acad Sci U S A. 2009 Jul 21;106(29):11954-9. doi: 10.1073/pnas.0813288106. Epub 2009 Jun 10.
3
The mechanism of spontaneous oscillatory contractions in skeletal muscle.骨骼肌自发振荡收缩的机制。
Biophys J. 2009 May 6;96(9):3682-91. doi: 10.1016/j.bpj.2009.01.039.
4
Self-organization of dynein motors generates meiotic nuclear oscillations.动力蛋白马达的自组织产生减数分裂核振荡。
PLoS Biol. 2009 Apr 21;7(4):e1000087. doi: 10.1371/journal.pbio.1000087.
5
Length-dependent activation and auto-oscillation in skeletal myofibrils at partial activation by Ca2+.在钙离子部分激活下骨骼肌肌原纤维中的长度依赖性激活和自激振荡。
Biochem Biophys Res Commun. 2008 Feb 1;366(1):233-8. doi: 10.1016/j.bbrc.2007.11.123. Epub 2007 Dec 3.
6
Nonlinear force-length relationship in the ADP-induced contraction of skeletal myofibrils.ADP诱导的骨骼肌肌原纤维收缩中的非线性力-长度关系。
Biophys J. 2007 Dec 15;93(12):4330-41. doi: 10.1529/biophysj.107.110650. Epub 2007 Sep 21.
7
Regulation of muscle contraction by Ca2+ and ADP: focusing on the auto-oscillation (SPOC).钙离子和二磷酸腺苷对肌肉收缩的调节:聚焦于自振荡(单通道振荡控制)
Adv Exp Med Biol. 2007;592:341-58. doi: 10.1007/978-4-431-38453-3_29.
8
Spindle oscillations during asymmetric cell division require a threshold number of active cortical force generators.不对称细胞分裂过程中的纺锤体振荡需要一定阈值数量的活跃皮质力发生器。
Curr Biol. 2006 Nov 7;16(21):2111-22. doi: 10.1016/j.cub.2006.09.030.
9
Mechanical properties of sarcomeres during cardiac myofibrillar relaxation: stretch-induced cross-bridge detachment contributes to early diastolic filling.心肌纤维舒张过程中肌节的力学特性:拉伸诱导的横桥解离有助于舒张早期充盈。
J Muscle Res Cell Motil. 2006;27(5-7):423-34. doi: 10.1007/s10974-006-9072-7. Epub 2006 Aug 9.
10
Myocardial sarcomeres spontaneously oscillate with the period of heartbeat under physiological conditions.在生理条件下,心肌肌节会随着心跳周期自发振荡。
Biochem Biophys Res Commun. 2006 May 19;343(4):1146-52. doi: 10.1016/j.bbrc.2006.03.070. Epub 2006 Mar 24.

作为自振荡器的分子马达。

Molecular motors as an auto-oscillator.

作者信息

Ishiwata Shin'ichi, Shimamoto Yuta, Suzuki Madoka

出版信息

HFSP J. 2010 Jun;4(3-4):100-4. doi: 10.2976/1.3390455. Epub 2010 Apr 15.

DOI:10.2976/1.3390455
PMID:21119762
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2929627/
Abstract

The organization of biomotile systems possesses structural and functional hierarchy, building up from single molecules via protein assemblies and cells further up to an organ. A typical example is the hierarchy of cardiac muscle, on the top of which is the heart. The heartbeat is supported by the rhythmic contraction of the muscle cells that is controlled by the Ca(2+) oscillation triggered by periodic electrical excitation of pacemaker cells. Thus, it is usually believed that the heartbeat is governed by the control system based on a sequential one-way chain with the electrical∕chemical information transfer from the upper to the lower level of hierarchy. On the other hand, it has been known for many years that the contractile system of muscle, i.e., skinned muscle fibers and myofibrils, itself possesses the auto-oscillatory properties even in the constant chemical environment. A recent paper [Plaçais, et al. (2009), Phys. Rev. Lett. 103, 158102] demonstrated the auto-oscillatory movement∕tension development in an in vitro motility assay composed of a single actin filament and randomly distributed myosin II molecules, suggesting that the auto-oscillatory properties are inherent to the contractile proteins. Here we discuss how the molecular motors may acquire the higher-ordered auto-oscillatory properties while stepping up the staircase of hierarchy.

摘要

生物运动系统的组织具有结构和功能层次结构,从单个分子开始,经由蛋白质组装体和细胞,进一步形成器官。一个典型的例子是心肌的层次结构,其顶端是心脏。心跳由肌肉细胞的节律性收缩支持,而肌肉细胞的收缩由起搏器细胞的周期性电刺激触发的Ca(2+)振荡控制。因此,通常认为心跳由基于顺序单向链的控制系统支配,电/化学信息从层次结构的上层传递到下层。另一方面,多年来人们已经知道,肌肉的收缩系统,即去表皮的肌纤维和肌原纤维,即使在恒定的化学环境中本身也具有自振荡特性。最近的一篇论文[普拉赛斯等人(2009年),《物理评论快报》103》,158102]在由单根肌动蛋白丝和随机分布的肌球蛋白II分子组成的体外运动分析中证明了自振荡运动/张力发展,这表明自振荡特性是收缩蛋白所固有的。在这里,我们讨论分子马达在提升层次结构阶梯的过程中如何获得更高阶的自振荡特性。