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関連する概念動画

Studying the Cytoskeleton01:17

Studying the Cytoskeleton

The cytoskeletal architecture can be studied using different microscopic and biochemical techniques. Electron microscopy was instrumental in discovering the cytoskeletal architecture around the 1960s, which allowed obtaining structural information at a high-resolution level. However, the sample preparation procedure often limits this ability in biological samples. Several protocols have been developed over the years to optimize sample preparation. In one of the protocols known as rotary...
Actin Filament Depolymerization01:19

Actin Filament Depolymerization

Actin filaments (F-actin) are composed of actin subunits. The dissociation of actin monomers can occur from either end of F-actin. The rate of dissociation is faster from the minus-end or the pointed end, where the actin subunits exist with a bound ADP, together known as ADP-actin. The depolymerization of F-actin is aided by proteins, including the actin-depolymerizing factor (ADF) and cofilin family of proteins, gelsolin, and glia maturation factor (GMF).
In F-actin, the ADF/cofilin proteins...
Actin Polymerization and Cell Motility01:13

Actin Polymerization and Cell Motility

Actin is a family of globular proteins that are highly abundant in eukaryotic cells. It makes up approximately 1-5% of total cell protein concentration. Actin monomers polymerize to form a complex network of polarized filaments, the actin cytoskeleton, that plays a crucial role in many cellular processes, including cell motility, division, endocytosis, and metastasis of cancer cells.
Actin cytoskeleton dynamics can produce pushing, pulling, and resistance forces that help the cell to migrate.
Cell-matrix's Response to Mechanical Forces01:13

Cell-matrix's Response to Mechanical Forces

In animal cells, the extracellular matrix allows cells within tissues to withstand external stresses and transmits signals from the outside of the cell to the inside. The extracellular matrix is extensive, and its composition varies between different types of tissues. For example, the reticular fibers and ground substance make up the ECM in loose connective tissue, while collagen and bone minerals make up the ECM of bone tissue. 
Anchoring junctions mechanically attach a cell to the...
Tension Response at Adherens Junctions01:26

Tension Response at Adherens Junctions

The adherens junctions that anchor cells together are multi-protein complexes that dynamically adapt to mechanical stimuli such as tensile forces and shear stress. Mechanosensory proteins in these junctions can sense such mechanical stimuli and undergo a shift in their conformation, resulting in an altered function — a process called mechanotransduction.
α-Catenin as a Mechanosensory Protein
The α-catenin of adherens junctions is an allosteric protein with three VH (vinculin homology) domains...
Induced Electric Fields: Applications01:27

Induced Electric Fields: Applications

An important distinction exists between the electric field induced by a changing magnetic field and the electrostatic field produced by a fixed charge distribution. Specifically, the induced electric field is nonconservative because it does not work in moving a charge over a closed path. In contrast, the electrostatic field is conservative and does no net work over a closed path. Hence, electric potential can be associated with the electrostatic field but not the induced field. The following...

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関連する実験動画

Updated: Jul 21, 2026

A Galvanotaxis Assay for Analysis of Neural Precursor Cell Migration Kinetics in an Externally Applied Direct Current Electric Field
11:00

A Galvanotaxis Assay for Analysis of Neural Precursor Cell Migration Kinetics in an Externally Applied Direct Current Electric Field

Published on: October 13, 2012

恒定電場によって引き起こされる細胞の形状とアクチン分布の変化.

P W Luther, H B Peng, J J Lin

    Nature
    |May 5, 1983
    PubMed
    まとめ

    培養されたXenopusの上皮細胞は,電場に垂直に伸びて,ガルバノトロピズムを示します. この反応には,アノドの細胞収縮と,カトドと細胞の末端のラメリポディアの拡張,アクチンの再編成が含まれます.

    科学分野:

    • 細胞生物学 細胞生物学
    • 電気生理学 電気生理学
    • バイオフィジックス 生物物理学

    背景:

    • 細胞の運動性には,形状の偏分化,ラメラの拡張,およびストレス繊維の並べ替えが含まれています.
    • 外部に付加された直流 (d.c.) の電場は,細胞の方向性に影響を与えるが,その運動性への影響はほとんど不明である.

    研究 の 目的:

    • 培養されたXenopusの上皮細胞のガルヴァノトロピク反応を調査する.
    • 電気場が細胞の形状,運動性,細胞骨格の組織にどのように影響するかを理解する.

    主な方法:

    • クセノプスの上皮細胞の培養.
    • 直流 (d.c.) 電場 (5 V cm-1) を適用する.
    • 細胞形態の顕微鏡観察,ラメリポディアの拡張,およびストレス繊維の組織.

    主要な成果:

    • 電気フィールドの方向に垂直に伸びた細胞.
    • 細胞の陽極側が収縮し,正極の縁と細胞の末端が伸びてラッフリングラメルリポディアを示した.
    • ストレス繊維はフィールドに垂直して方向転換し,アクチンは活性なラメラに局所化しました.

    結論:

    さらに関連する動画

    Utilizing Custom-designed Galvanotaxis Chambers to Study Directional Migration of Prostate Cells
    08:45

    Utilizing Custom-designed Galvanotaxis Chambers to Study Directional Migration of Prostate Cells

    Published on: December 7, 2014

    Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device
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    Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device

    Published on: September 19, 2025

    関連する実験動画

    Last Updated: Jul 21, 2026

    A Galvanotaxis Assay for Analysis of Neural Precursor Cell Migration Kinetics in an Externally Applied Direct Current Electric Field
    11:00

    A Galvanotaxis Assay for Analysis of Neural Precursor Cell Migration Kinetics in an Externally Applied Direct Current Electric Field

    Published on: October 13, 2012

    Utilizing Custom-designed Galvanotaxis Chambers to Study Directional Migration of Prostate Cells
    08:45

    Utilizing Custom-designed Galvanotaxis Chambers to Study Directional Migration of Prostate Cells

    Published on: December 7, 2014

    Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device
    11:08

    Revealing Electromechanical Control of Tissue Homeostasis Using a Two-Layer Microfluidic Device

    Published on: September 19, 2025

    • Xenopusの上皮細胞は,明確なガルバノトロピク反応を示し,電気場への反応として,その方向性や運動性を変化させます.
    • 電気場は,細胞の極性,細胞骨格の組織,そして細胞と基板の相互作用のダイナミクスに大きな変化を誘導する.