Jove
Visualize
联系我们
JoVE
x logofacebook logolinkedin logoyoutube logo
关于 JoVE
概览领导团队博客JoVE 帮助中心
作者
出版流程编辑委员会范围与政策同行评审常见问题投稿
图书馆员
用户评价订阅访问资源图书馆顾问委员会常见问题
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experiments存档
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教师资源中心教师网站
使用条款与条件
隐私政策
政策

相关概念视频

The Role of Actin and Myosin in Non-muscle Cells01:10

The Role of Actin and Myosin in Non-muscle Cells

3.3K
Actin and myosin or actomyosin filaments also play a significant role in cells other than those involved in muscle contraction (which occurs within the sarcomere of muscle cells). The mechanism of non-muscle cell contractile bundles was first observed in Dictyostelium and Acanthamoeba. In non-muscle cells, two bundles are commonly found: stress fibers and actomyosin adherence belts. These contractile bundles are smaller and less organized than the ones found in muscle cells. They  are held...
3.3K
Actin and Myosin in Muscle Contraction01:16

Actin and Myosin in Muscle Contraction

8.1K
Actin and myosin are contractile proteins that form the sarcomere found in skeletal muscle tissues for regulating muscle contraction. Actin, a globular contractile protein, interacts with myosin for muscle contraction. The skeletal tissue appears striped or striated under a microscope due to the repeated arrangement of contractile proteins actin and myosin along the length of myofibrils. Dark A bands and light I bands repeat along myofibrils, and the alignment of myofibrils in the cell causes...
8.1K
Overview of Myosin Structure and Function01:15

Overview of Myosin Structure and Function

3.6K
Myosins are a family of molecular motor proteins, first identified in the skeletal muscles, where they are responsible for muscle contraction. Along with their role in muscle contraction, these proteins also play a role in the intracellular transport of molecules and vesicles. There are twenty-four classes of myosins based on their domain sequence and organization. Of the twenty-four, six classes (Myosin I, Myosin II, Myosin V, Myosin VI, Myosin VII, and Myosin X)  have been well...
3.6K
Cross-bridge Cycle01:26

Cross-bridge Cycle

116.1K
As muscle contracts, the overlap between the thin and thick filaments increases, decreasing the length of the sarcomere—the contractile unit of the muscle—using energy in the form of ATP. At the molecular level, this is a cyclic, multistep process that involves binding and hydrolysis of ATP, and movement of actin by myosin.
116.1K
The Movement of Organelles and Vesicles01:43

The Movement of Organelles and Vesicles

4.3K
In eukaryotic cells,  cytoskeletal filaments such as actin, microtubules, and intermediate filaments form a mesh-like cytoskeletal network. These filaments serve as tracks for transporting cellular cargo. Specialized motor proteins use the chemical energy stored in adenosine triphosphate (ATP) for this transport. During interphase, microtubules are polarized, with the plus-end towards the cell periphery and the minus-end towards the cell center. Two microtubule-associated motor proteins,...
4.3K
Role of Myosin in Cell Migration01:18

Role of Myosin in Cell Migration

2.2K
Myosins are multimeric motor proteins involved in various cellular processes such as migration, adhesion, and proliferation. Myosin II is the most common type in animal cells, which binds and cross-links actin filaments.
Myosin II  is a hexamer comprising two heavy chains with globular heads and coiled-coil tails, two regulatory light chains, and two essential light chains. The ATPase sites on the myosin heads hydrolyze ATP, and the released phosphate generates the force for contraction....
2.2K

您也可能阅读

相关文章

通过共同作者、期刊和引用图与本文相关的文章。

排序
Same author

A balance between nucleating and elongating actin filaments controls deformation of protein condensates.

Science advances·2026
Same author

Morphological control of bundled actin networks subject to fixed-mass depletion.

The Journal of chemical physics·2024
Same author

Hill-type, bioinspired actuation delivers energy economy in DC motors.

Bioinspiration & biomimetics·2022
查看所有相关文章

相关实验视频

Updated: May 16, 2025

Probing Myosin Ensemble Mechanics in Actin Filament Bundles Using Optical Tweezers
06:53

Probing Myosin Ensemble Mechanics in Actin Filament Bundles Using Optical Tweezers

Published on: May 4, 2022

2.1K

微观速度依赖的解结产生了宏观性能-效率的权衡在actomyosin系统.

Jake McGrath1, Brian Kent1,2, Colin L Johnson1

  • 1Center for Nonlinear Dynamics, Department of Physics, University of Texas at Austin, Austin, Texas, USA.

Communications biology
|May 12, 2025
PubMed
概括

肌运动脱离率 (α) 影响细胞能量使用. 类似肌肉的模型揭示了这种非线性平衡功率和效率,优化生物和机器人执行器.

更多相关视频

Dissecting Mechanoenzymatic Properties of Processive Myosins with Ultrafast Force-Clamp Spectroscopy
09:38

Dissecting Mechanoenzymatic Properties of Processive Myosins with Ultrafast Force-Clamp Spectroscopy

Published on: July 1, 2021

1.3K
The Mechanics of Poro-Elastic Contractile Actomyosin Networks As a Model System of the Cell Cytoskeleton
08:50

The Mechanics of Poro-Elastic Contractile Actomyosin Networks As a Model System of the Cell Cytoskeleton

Published on: March 10, 2023

716

相关实验视频

Last Updated: May 16, 2025

Probing Myosin Ensemble Mechanics in Actin Filament Bundles Using Optical Tweezers
06:53

Probing Myosin Ensemble Mechanics in Actin Filament Bundles Using Optical Tweezers

Published on: May 4, 2022

2.1K
Dissecting Mechanoenzymatic Properties of Processive Myosins with Ultrafast Force-Clamp Spectroscopy
09:38

Dissecting Mechanoenzymatic Properties of Processive Myosins with Ultrafast Force-Clamp Spectroscopy

Published on: July 1, 2021

1.3K
The Mechanics of Poro-Elastic Contractile Actomyosin Networks As a Model System of the Cell Cytoskeleton
08:50

The Mechanics of Poro-Elastic Contractile Actomyosin Networks As a Model System of the Cell Cytoskeleton

Published on: March 10, 2023

716

科学领域:

  • 生物物理学的生物物理.
  • 细胞力学 细胞力学
  • 机器人技术 机器人技术 机器人技术

背景情况:

  • 肌酶电机是必不可少的ATP驱动生物机器.
  • 肌肉蛋白脱离率与细胞能量动态之间的联系尚未完全理解.
  • 现有的模型将肌肉素速度与肌肉动力学联系起来,但不是能量学.

研究的目的:

  • 开发一种将髓解结 (α) 与细胞能量联系起来的模型.
  • 通过实验验证由a.所规定的性能效率权衡.
  • 调查非线性在肌肉效率中的作用.

主要方法:

  • 开发了一种分析模型,将肌解结参数α与能量学联系起来.
  • 构建了HillBot,一个机器人物理的Hill肌肉模型,以解α的效应.
  • 分析了来自体内肌肉样本的136个已发表的α测量结果.

主要成果:

  • 分析模型与体内肌肉数据保持一致,显示了性能效率的权衡.
  • 希尔博特证明,非线性显著影响肌肉效率.
  • 在肌肉样本中确定了α值的分布 (α* = 3.85 ± 2.32).

结论:

  • 肌氨酸的非线性 (α) 对于在生物执行器中平衡功率和效率至关重要.
  • 在肌肉中观察到的α*代表了一个通用的执行器策略.
  • 洞察力可以为机器人技术提供非线性变量阻抗控制信息.