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関連する概念動画

Cell Polarization by Rho Proteins01:21

Cell Polarization by Rho Proteins

Cell polarity is the asymmetric distribution of cellular and membrane components, making one side of the cell different from the other. This polarity is essential to many processes such as embryogenesis, axon migration, glucose transport across epithelial cells, and directional cell migration. A migrating cell responds to intracellular or extracellular signals via molecular cascades that reorganize the actin cytoskeleton to establish this polarity. In these cells, the Rho family proteins Cdc42,...
Polarity of the Cytoskeleton01:18

Polarity of the Cytoskeleton

The intrinsic polarity of cells can be primarily attributed to two factors- i) the asymmetric accumulation of mobile components such are regulatory molecules and subcellular components across the cell and ii) the orientation of polar cytoskeletal filaments that make up the cytoskeletal networks, specifically microfilaments, and microtubules arranged along the axis of polarity. Interactions between the cytoskeletal filaments are crucial for the establishment and maintenance of the polar nature...
Cytoskeletal Coordination in Cell Migration01:32

Cytoskeletal Coordination in Cell Migration

A migrating cell changes its shape during the cyclic events of attachment and detachment from the substratum and repositions the cell organelles correspondingly. These complex events are orchestrated by the dynamic cytoskeletal network comprising actin filaments, intermediate filaments, and microtubules. Cytoskeletal crosstalk — the direct and indirect communication between the different components — is crucial for this coordination. Direct communication involves various linker proteins that...
Cell Motility through Blebbing01:16

Cell Motility through Blebbing

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...
Determining the Plane of Cell Division02:13

Determining the Plane of Cell Division

Positioning the cell division plane is a critical step during development and cell differentiation, particularly during mitosis when the plane is essential for determining the size of the two daughter cells. The cell division plane is perpendicular to the plane of chromosome segregation, but different types of organisms have different cell division mechanisms to suit their morphology and function. 
Animal cells
In animal cells, the cleavage furrow forms along the plane of cell division starting...
Cell Migration01:09

Cell Migration

Cell migration, the process by which cells move from one location to another, is essential for the proper development and viability of organisms throughout their life. When cells are not able to migrate properly to their ordained locations, various disorders may occur. For example, disruption in cell migration causes chronic inflammatory diseases such as arthritis.

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関連する実験動画

Updated: May 29, 2026

Mapping the Emergent Spatial Organization of Mammalian Cells using Micropatterns and Quantitative Imaging
09:56

Mapping the Emergent Spatial Organization of Mammalian Cells using Micropatterns and Quantitative Imaging

Published on: April 30, 2019

細胞の極性切り替えによる空間パターンの生成

Sarah Robinson1, Pierre Barbier de Reuille, Jordi Chan

  • 1John Innes Centre, Norwich Research Park, Colney, Norwich NR4 7UH, UK.

Science (New York, N.Y.)
|September 10, 2011
PubMed
まとめ

植物の発達は,正確な空間的なパターンに依存しています. この研究は,子細胞におけるSPEECHLESS (SPCH) 転写因子の維持が,口腔間隔を制御し,極性切り替えを通じて組織パターンを導くことを明らかにしています.

科学分野:

  • 発達生物学 発達生物学とは
  • 植物学は植物科学である.
  • 細胞生物学 細胞生物学

背景:

  • 増殖組織におけるダイナミックな空間パターンの理解は,複雑な細胞相互作用のために困難です.
  • 植物における口腔間隔は,細胞が発達中に再編成しないため,モデルシステムを提供する.

研究 の 目的:

  • 植物における口腔間隔と発達パターンを支配するメカニズムを解明する.
  • 幹細胞の行動と系統の進行におけるSPEECHLESS (SPCH) 転写因子の役割を調査する.

主な方法:

  • 細胞系統と遺伝子の活性について,縦断的に追跡する.
  • 細胞分裂と極性ダイナミクスの計算モデリング.
  • BASLのような極性決定因子のモデル予測の実験的検証.

主要な成果:

  • ストマト前駆体における幹細胞の限られた行動は,単一の子細胞におけるSPEECHLESS (SPCH) の維持に依存しています.
  • 転移後の極性交互化メカニズムは,ステレオタイプ的なストマト系統形成を説明する.
  • このモデルは,BASLの極性決定因子の位置を複数の細胞分裂にわたって正確に予測します.

結論:

さらに関連する動画

The C. elegans Intestine As a Model for Intercellular Lumen Morphogenesis and In Vivo Polarized Membrane Biogenesis at the Single-cell Level: Labeling by Antibody Staining, RNAi Loss-of-function Analysis and Imaging
12:15

The C. elegans Intestine As a Model for Intercellular Lumen Morphogenesis and In Vivo Polarized Membrane Biogenesis at the Single-cell Level: Labeling by Antibody Staining, RNAi Loss-of-function Analysis and Imaging

Published on: October 3, 2017

Improved Visualization and Quantitative Analysis of Drug Effects Using Micropatterned Cells
15:41

Improved Visualization and Quantitative Analysis of Drug Effects Using Micropatterned Cells

Published on: December 2, 2010

関連する実験動画

Last Updated: May 29, 2026

Mapping the Emergent Spatial Organization of Mammalian Cells using Micropatterns and Quantitative Imaging
09:56

Mapping the Emergent Spatial Organization of Mammalian Cells using Micropatterns and Quantitative Imaging

Published on: April 30, 2019

The C. elegans Intestine As a Model for Intercellular Lumen Morphogenesis and In Vivo Polarized Membrane Biogenesis at the Single-cell Level: Labeling by Antibody Staining, RNAi Loss-of-function Analysis and Imaging
12:15

The C. elegans Intestine As a Model for Intercellular Lumen Morphogenesis and In Vivo Polarized Membrane Biogenesis at the Single-cell Level: Labeling by Antibody Staining, RNAi Loss-of-function Analysis and Imaging

Published on: October 3, 2017

Improved Visualization and Quantitative Analysis of Drug Effects Using Micropatterned Cells
15:41

Improved Visualization and Quantitative Analysis of Drug Effects Using Micropatterned Cells

Published on: December 2, 2010

  • この研究は,植物組織で空間的なパターンを生成するための新しいメカニズムを明らかにしています.
  • 幹細胞とその環境の間のダイナミックで双方向的な相互作用は,発達パターンの形成に不可欠です.
  • 発見は,細胞運命を決定し,組織を組織する基本的な原理の洞察を提供します.