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相关概念视频

Mechanism of Filopodia Formation01:39

Mechanism of Filopodia Formation

2.3K
Filopodia are thin, actin-rich cellular protrusions that play an important role in many fundamental cellular functions. They vary in their occurrence, length, and positioning in different cell types, suggesting their diverse roles.
Their main function is to guide migrating cells during normal tissue morphogenesis or cancer metastasis by recognizing and making initial contacts with the extracellular matrix. However, they can also act as stationary cell anchors or help to establish communication...
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Cell Motility through Blebbing01:16

Cell Motility through Blebbing

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Blebs are a type of membrane protrusion formed by the internal hydrostatic pressure of the cytoplasm. Blebs are observed in several cell types, including fibroblasts, immune cells, and single-celled organisms like the amoeba. The primary function of blebs is cell locomotion and apoptosis, but they are also found during necrosis and cell division. The life cycle of a bleb comprises an initiation phase followed by the expansion and retraction phases.
Blebbing Through the Matrix
In multicellular...
1.9K
Mechanism of Lamellipodia Formation01:31

Mechanism of Lamellipodia Formation

2.5K
Cells migrating in response to external stimuli form lamellipodia, which are thin membrane protrusions supported by a mesh of linked, branched, or unbranched actin filaments. These actin filaments interact with myosin motor proteins, creating the dynamic actomyosin complex within the cytoskeleton. Contractility, or the ability to generate contractile stress, is inherent to the actomyosin complex. It helps cells detect the stiffness of the surrounding ECM and exert contractile force for...
2.5K
Mechanism of Ciliary Motion01:05

Mechanism of Ciliary Motion

3.6K
The ciliary structures were first seen in 1647 by Antonie Leeuwenhoek while observing the protozoans. In lower organisms, these appendages are responsible for cell movement, while in higher organisms, these appendages help in the movement of the extracellular fluids within the body cavities.
The cilia are made up of microtubules in a 9+2 arrangement, with nine microtubule doublet ring bundles, surrounding a pair of central singlet microtubule bundles. The doublet microtubule bundles are...
3.6K
Microtubules in Cell Motility01:24

Microtubules in Cell Motility

3.3K
Microtubules are thick hollow cylindrical proteins that help form the cytoskeleton. Microtubules have varied roles in the cell. These filaments help form cellular appendages like cilia and flagella, which are responsible for locomotion. The cilia arise from basal bodies, separated from the main body by a membrane-like structure forming the transition zone. This zone is the gate for the entry of lipids and proteins, creating a unique composition of lipids and proteins in the ciliary membrane and...
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相关实验视频

Updated: Jun 24, 2025

Investigating Flagella-Driven Motility in Escherichia coli by Applying Three Established Techniques in a Series
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Investigating Flagella-Driven Motility in Escherichia coli by Applying Three Established Techniques in a Series

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通过水力动力学相互作用控制的多片游泳.

Shiyuan Hu1, Fanlong Meng1,2,3

  • 1CAS Key Laboratory of Theoretical Physics, Institute of Theoretical Physics, Chinese Academy of Sciences, Beijing 100190, China.

Physical review letters
|June 3, 2024
PubMed
概括

这项研究模拟了多片的微生物,揭示了鞭毛相互作用和配置如何影响游泳效率. 微游泳器的最佳设计取决于鞭毛体的排列和协调.

科学领域:

  • 生物物理学的生物物理.
  • 流体动力学 流体动力学
  • 微生物学 微生物学

背景情况:

  • 许多真核微生物利用多个鞭毛来进行运动.
  • 了解多叶状游泳者的复杂水力动力学对于生物学和工程应用至关重要.

研究的目的:

  • 为了建模一个三维的多鞭游泳者,并研究鞭激活和配置对游泳效率的影响.
  • 探索水力动力相互作用 (HI) 和鞭毛体相互作用在微游泳者运动中的作用.

主要方法:

  • 开发一个3D计算模型,用于多鞭翼游泳者.
  • 模拟同步和异步的鞭毛激活模式.
  • 对不同鞭毛配置 (前后) 的鞭毛体相互作用的分析.

主要成果:

  • 同步的鞭毛激活效率是敏感的鞭毛倾斜角度由于水力动力相互作用.
  • 异步步态可以通过基底机械合来减轻振荡运动.
  • 前鞭状结构比后鞭状结构优越,后鞭状结构具有最佳的鞭状数量.

结论:

  • 水力动力相互作用显著影响多叶片微生物的游泳性能.

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  • 这些发现为微藻的运动策略提供了洞察力,并可以为人工微游泳器的设计提供信息.