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関連する概念動画

Contact-dependent Signaling01:19

Contact-dependent Signaling

Contact-dependent signaling, as the name suggests, requires that communicating cells be in direct contact with each other. This is achieved either through receptor-ligand interactions or by specialized cytoplasmic channels that allow the flow of small molecules between cells. In animal cells, channels called gap junctions facilitate contact-dependent signaling in certain tissues, whereas, plasmodesmata perform a similar function in plants.
Gap Junctions
In animal cells, gap junctions are formed...
Plasticity00:58

Plasticity

Plasticity is the property where an object loses its elasticity and undergoes irreversible deformation, even after the deformation forces are eliminated. If a material deforms irreversibly without increasing stress or load, then this is called ideal plasticity. For example, when a force is applied to an aluminum rod, it changes its shape, but it does not return to its original shape once the force is removed. Plastic deformation or ductility is thus a permanent deformation or change in the...
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...
Plastic Behavior01:21

Plastic Behavior

A material's elastic behavior is characterized by the disappearance of stress once the load is removed, allowing the material to return to its original state. However, when stress surpasses the yield point, yielding commences, marking the onset of plastic deformation or permanent set. This change from elastic to plastic behavior is influenced by the peak stress value and the duration before the load is removed. An intriguing observation occurs when a specimen is loaded, unloaded, and reloaded.
Plastic Deformations01:14

Plastic Deformations

It is essential to understand how structural members behave under plastic deformation when the bending stress exceeds the material's yield strength. This state of deformation permanently alters the shape of the member, in contrast to the linear elastic behavior observed before yielding. The strain at any point in the member is expressed in terms of maximum strain. Notably, the neutral axis, which coincides with the centroid during elastic bending, shifts away from the centroid under plastic...
Plastic Deformations01:19

Plastic Deformations

Plastic deformation represents a fundamental concept in materials science, which explains the irreversible change in the shape of a material when it experiences stress beyond its elastic capability. This phenomenon is important in structural engineering, especially in designing and analyzing cantilever beams—structures that are securely fixed at one end and bear loads at the opposite end. When these beams are subjected to loads within their elastic range, they will return to their original...

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関連する実験動画

Updated: Jul 13, 2026

Fabrication Process of Silicone-based Dielectric Elastomer Actuators
10:32

Fabrication Process of Silicone-based Dielectric Elastomer Actuators

Published on: February 1, 2016

ポストシナプス信号と可塑性メカニズム

Morgan Sheng1, Myung Jong Kim

  • 1Picower Center for Learning and Memory, RIKEN-MIT Neuroscience Research Center, Howard Hughes Medical Institute, Massachusetts Institute of Technology, Cambridge, MA 02139, USA. msheng@mit.edu

Science (New York, N.Y.)
|October 26, 2002
PubMed
まとめ

脳シナプスのグルタミン酸受容体は信号伝達経路を活性化し,シナプスの可塑性に影響を与えます. これらの複雑な分子機構を理解することは,脳の機能にとって極めて重要です.

科学分野:

  • 神経科学は神経科学である.
  • 分子生物学は分子生物学である.
  • シナプス生理学 シナプス生理学

背景:

  • 刺激性シナプスは,ポストシナプス膜のグルタミン酸受容体を利用する.
  • グルタミン酸受容体の活性化により,細胞内生化学的経路が開始されます.
  • シナプスの活動パターンは,シナプスの強さと持続時間を調節します.

研究 の 目的:

  • ポストシナプス信号伝達の分子メカニズムを解明する.
  • シナプス性可塑性の基礎を理解するために.
  • 異なるシナプス活動がどのように多様なシグナルパターンを生み出すかを探求する.

主な方法:

  • ポストシナプスニューロンにおけるグルタミン酸受容体の機能を研究した.
  • 受容体刺激によって活性化された生化学経路を分析した.
  • シナプス活動パターンとシグナリング結果の関係を調べた.

主要な成果:

  • 特定のグルタミン酸受容体は信号伝達を媒介する.
  • 異なるシナプス活動によって,異なるポストシナプス信号が誘発されます.
  • これらの信号は,短期的および長期的シナプス変異と相関しています.

さらに関連する動画

Visualization and Quantification of TGF&#946;/BMP/SMAD Signaling under Different Fluid Shear Stress Conditions using Proximity-Ligation-Assay
11:38

Visualization and Quantification of TGFβ/BMP/SMAD Signaling under Different Fluid Shear Stress Conditions using Proximity-Ligation-Assay

Published on: September 14, 2021

Measurement of Compressive Stress-Strain Response at Small-Strains
02:58

Measurement of Compressive Stress-Strain Response at Small-Strains

Published on: December 5, 2025

関連する実験動画

Last Updated: Jul 13, 2026

Fabrication Process of Silicone-based Dielectric Elastomer Actuators
10:32

Fabrication Process of Silicone-based Dielectric Elastomer Actuators

Published on: February 1, 2016

Visualization and Quantification of TGF&#946;/BMP/SMAD Signaling under Different Fluid Shear Stress Conditions using Proximity-Ligation-Assay
11:38

Visualization and Quantification of TGFβ/BMP/SMAD Signaling under Different Fluid Shear Stress Conditions using Proximity-Ligation-Assay

Published on: September 14, 2021

Measurement of Compressive Stress-Strain Response at Small-Strains
02:58

Measurement of Compressive Stress-Strain Response at Small-Strains

Published on: December 5, 2025

結論:

  • 複雑な分子機構が,ポストシナプス信号伝達を統制する.
  • これらのメカニズムはシナプス性可塑性の根底にある.
  • これらのプロセスの複雑さを完全に明らかにするために,さらなる研究が必要です.