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関連する概念動画

Role Of Notch Signalling In Intestinal Stem Cell Renewal01:12

Role Of Notch Signalling In Intestinal Stem Cell Renewal

2.6K
Notch signaling was first discovered in Drosophila melanogaster, where it is involved in cell lineage differentiation. Notch signaling regulates the maintenance and differentiation of intestinal stem cells or ISCs by controlling the expression of atonal homolog 1 or Atoh1. Atoh1 directs cells to differentiate into secretory cells.
Direct cell-to-cell contact is needed for the activation of Notch signaling. The signal is initiated when a notch ligand binds to a receptor on an adjacent cell, also...
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Renewal of Intestinal Stem Cells01:23

Renewal of Intestinal Stem Cells

3.6K
The intestinal epithelial lining rapidly renews every 4 to 5 days. The renewal is facilitated by intestinal stem cells (ISCs) located at the base of the crypt– a gland located at the bottom of each villus. ISCs divide asymmetrically to form new stem cells and progenitor daughter cells. The daughter cells are called transit-amplifying (TA) cells which move upwards along the crypt and either differentiate into absorptive cells– the enterocytes or secretory cells– including the...
3.6K
Role of Ephrin-Eph Signalling in Intestinal Stem Cell Renewal01:22

Role of Ephrin-Eph Signalling in Intestinal Stem Cell Renewal

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Erythropoietin-producing hepatocellular carcinoma receptor (Eph) and its ligand, Eph receptor-interacting protein (Ephrin) were first discovered in the human carcinoma cell line, hence the name. Ephrin-Eph interaction guides cells to reach their appropriate location in adult tissues. They also play an essential role in the immune system by helping in immune cell migration, adhesion, and activation. Based on their structure and function, Eph is divided into two classes — EphA and EphB.
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Feedback Regulation of Calcium Concentration01:27

Feedback Regulation of Calcium Concentration

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Calcium is an essential signaling molecule required for various cellular functions. Calcium pumps and ion channels on cell and organellar membranes, such as those on the endoplasmic reticulum (ER), regulate calcium concentrations inside the cell. They remain closed, keeping the cytosolic calcium levels low at a resting state.
Various transmembrane receptors, such as G protein-coupled receptors (GPCRs), elicit a response to extracellular signals by increasing cytosolic calcium. Activated GPCRs...
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Calmodulin-dependent Signaling01:16

Calmodulin-dependent Signaling

7.0K
Calmodulin (CaM) is a calcium-binding protein in eukaryotes that controls various calcium-regulated cellular processes. It has four calcium-binding sites that bind calcium to form the calcium-calmodulin ( Ca2+-CaM) complex. GPCR stimulation increases the calcium levels in the cells that bind to CaM and induces a conformational change.
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
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Adult Stem Cells01:33

Adult Stem Cells

34.3K
Stem cells are undifferentiated cells that divide and produce more stem cells or progenitor cells that differentiate into mature, specialized cell types. All the cells in the body are generated from stem cells in the early embryo, but small populations of stem cells are also present in many adult tissues including the bone marrow, brain, skin, and gut. These adult stem cells typically produce the various cell types found in that tissue—to replace cells that are damaged or to continuously...
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関連する実験動画

Updated: Mar 29, 2026

Applications of Spatio-temporal Mapping and Particle Analysis Techniques to Quantify Intracellular Ca2+ Signaling In Situ
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Applications of Spatio-temporal Mapping and Particle Analysis Techniques to Quantify Intracellular Ca2+ Signaling In Situ

Published on: January 7, 2019

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Ca ((2+) によるシグナル統合は腸の幹細胞活動を調節する

Hansong Deng1, Akos A Gerencser1, Heinrich Jasper1

  • 1The Buck Institute for Research on Aging, 8001 Redwood Boulevard, Novato, California 94945, USA.

Nature
|December 4, 2015
PubMed
まとめ

食中のL-グルタミン酸は,ドロソフィラの腸幹細胞 (ISC) の分裂と腸の成長を促進する. メタボトロピックグルタミン酸受容体 (mGluRs) によって調節されるカルシウム (Ca2+) 信号は,カルシヌーリンとCrtc経由でISCの増殖を制御する.

科学分野:

  • 幹細胞生物学
  • カルシウム信号
  • ドロソフィラ・メラノガスター モデル生物

背景:

  • ソマティック幹細胞は,ダイナミックな増殖と分化によって組織ホメオスタシスを維持する.
  • ストレスと代謝が 幹細胞の行動に影響します
  • 腸の幹細胞 (ISC) は腸の健康と再生に不可欠です

研究 の 目的:

  • ドロソフィラの腸内幹細胞 (ISC) 活性に関する重要な調節物質を特定する.
  • ISCの増殖におけるカルシウム (Ca2+) 信号の役割を明らかにする.
  • ISCの行動に 食事のシグナルがどう影響するかを理解するためです

主な方法:

  • モデルシステムとしてDrosophila melanogasterを研究した.
  • L-グルタミン酸を刺激剤として使った.
  • ISCにおけるメタボトロピックグルタミン酸受容体 (mGluRs) の役割を調べた.
  • サイトソリックCa2+の振動と濃度を測定した.
  • カルシヌーリンとCREB調節された転写共同活性化剤 (Crtc) の関与を分析した.

主要な成果:

  • 食中のL-グルタミン酸は,ISCの分裂と腸の成長を刺激する.

さらに関連する動画

Improved Swiss-rolling Technique for Intestinal Tissue Preparation for Immunohistochemical and Immunofluorescent Analyses
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Improved Swiss-rolling Technique for Intestinal Tissue Preparation for Immunohistochemical and Immunofluorescent Analyses

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Dissection of Local Ca2+ Signals in Cultured Cells by Membrane-targeted Ca2+ Indicators
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Dissection of Local Ca2+ Signals in Cultured Cells by Membrane-targeted Ca2+ Indicators

Published on: March 22, 2019

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関連する実験動画

Last Updated: Mar 29, 2026

Applications of Spatio-temporal Mapping and Particle Analysis Techniques to Quantify Intracellular Ca2+ Signaling In Situ
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Applications of Spatio-temporal Mapping and Particle Analysis Techniques to Quantify Intracellular Ca2+ Signaling In Situ

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Improved Swiss-rolling Technique for Intestinal Tissue Preparation for Immunohistochemical and Immunofluorescent Analyses
07:42

Improved Swiss-rolling Technique for Intestinal Tissue Preparation for Immunohistochemical and Immunofluorescent Analyses

Published on: July 13, 2016

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Dissection of Local Ca2+ Signals in Cultured Cells by Membrane-targeted Ca2+ Indicators
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Dissection of Local Ca2+ Signals in Cultured Cells by Membrane-targeted Ca2+ Indicators

Published on: March 22, 2019

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  • メタボトロピックグルタミン酸受容体 (mGluRs) は,ISCにおけるこの反応に不可欠である.
  • mGluRの活性化により,細胞内のCa2+振動が調節され,Ca2+濃度が持続的に高まります.
  • 高細胞濃度Ca2+は,カルシヌーリンとCrtcを通してISCの増殖を誘導する.
  • ISCはCa2+振動状態の間の可逆的な移行を示し,増殖モードを反映しています.
  • 結論:

    • カルシウム (Ca2+) 信号伝達は,ドロソフィラの腸幹細胞 (ISC) の活動の中心的調節体である.
    • 細胞内Ca2+のダイナミックな調節により,ISCは多様な信号を統合し,増殖に適応することができます.
    • このメカニズムは,ISCが食事やストレス刺激に反応して,組織のニーズに応じて増殖活動を調整することを可能にします.