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Embryonic Stem Cells00:58

Embryonic Stem Cells

25.7K
Embryonic stem (ES) cells are undifferentiated pluripotent cells, meaning they can produce any cell type in the body. This gives them tremendous potential in science and medicine since they can generate specific cell types for use in research or to replace body cells lost due to damage or disease.
25.7K
Zygotic Development And Stem Cell Formation01:10

Zygotic Development And Stem Cell Formation

6.2K
The development of all multicellular organisms starts with the fusion of haploid cells called sperm and egg to form a diploid zygote. A zygote is a totipotent cell that can develop into a complete organism. The zygote undergoes cell division or cleavage to form an 8-cell mass. Until this stage, the cells are spherical, loosely attached, and remain totipotent. Totipotent cells are capable of developing both the embryonic and the extraembryonic tissues. However, as they continue to divide, they...
6.2K
Stem Cell Niche01:26

Stem Cell Niche

5.0K
The stem cell niche is the dynamic microenvironment where stem cells reside. Inside these niches, the cells may remain undifferentiated, undergo high self-renewal, or become lineage-specific progenitors. Stem cells coexist with other niche cells, such as stromal cells. They also interact closely with the ECM. Cell-cell and cell-matrix communication occur via adhesion molecules or soluble factors that signal the stem cells and determine their fate. Stromal cells also provide survival signals to...
5.0K
Stem Cell Therapy for Tissue Regeneration01:21

Stem Cell Therapy for Tissue Regeneration

3.7K
Stem cell therapy is a method used in regenerative medicine to repair and restore function to damaged tissues and organs. Stem cells have the potential to proliferate and differentiate into various tissue types, making them ideal candidates for tissue regeneration. For example, hematopoietic stem cell transplants are commonly used in blood cancer treatment to replenish damaged bone marrow and restore healthy blood cells.
Types of Stem Cells used in Stem Cell Therapy
The two main cell...
3.7K
Embryonic Stem Cells00:57

Embryonic Stem Cells

4.5K
Embryonic stem (ES) cells were first discovered in mice in 1981 by Martin Evans. In 1998, James Thomson identified a method to isolate embryonic stem cells from humans. Human embryonic stem cells (hESCs) are obtained from 3-5 day old embryos that remain unused after an in vitro fertilization procedure.
ES cells are grown in a culture medium where they can divide indefinitely, creating ES cell lines. Under certain conditions, ES cells can differentiate, either spontaneously into a variety of...
4.5K
Maintenance of the ES Cell State01:14

Maintenance of the ES Cell State

1.9K
The cells of the blastocyst inner cell mass only remain pluripotent for a short time. This state of pluripotency and self-renewal can be maintained in embryonic stem (ES) cell culture by adding specific chemicals or growth factors to ensure the cells can continue dividing and later differentiate into different cell types. In some cases, the cells are grown on a feeder layer of differentiated cells, which provides the growth factors and extracellular matrix components necessary for stem cell...
1.9K

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関連する実験動画

Updated: Apr 24, 2026

Stem cell-like Xenopus Embryonic Explants to Study Early Neural Developmental Features In Vitro and In Vivo
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Stem cell-like Xenopus Embryonic Explants to Study Early Neural Developmental Features In Vitro and In Vivo

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胚性幹細胞のネットワークを断片化する.

Stuart H Orkin1

  • 1Dana Farber Cancer Institute and Children's Hospital Boston, Harvard Medical School, Howard Hughes Medical Institute, Boston, Massachusetts 02115, USA.

Cell
|September 24, 2005
PubMed
まとめ

重要な転写因子であるOCT4,SOX2およびNANOGは,胚性幹細胞 (ESC) の自己再生と多能性にとって極めて重要です. ゲノム全体の分析により,標的遺伝子のプロモーターに頻繁に共存することが明らかになり,人間のESCにおける複雑な規制ネットワークが示唆されています.

科学分野:

  • 幹細胞生物学 幹細胞生物学とは
  • エピジェネティクス エピジェネティクス
  • 遺伝子調節 遺伝子調節

背景:

  • 胚性幹細胞 (ESC) は自己再生能力と多能性を有する.
  • 転写因子であるOCT4,SOX2およびNANOGは,これらの性質を維持するために重要である.

研究 の 目的:

  • 人間のESCにおけるOCT4,SOX2,NANOGの全ゲノム結合パターンを調査する.
  • 多能性と自己更新を制御する規制メカニズムを理解する.

主な方法:

  • ゲノム全体の局所化分析 (ChIPチップまたは類似)
  • 重要な転写因子によって対象となるプロモーター地域を特定する.

主要な成果:

  • 多くの標的遺伝子プロモーターでOCT4,SOX2,およびNANOGの頻繁な併用.
  • 規制の相互作用の複雑なネットワークの証拠.

結論:

  • OCT4,SOX2,NANOGは協調して機能しています.
  • 自律制御とフィードフォワードループは,人間のESC多能性を維持するのに関与している可能性が高い.

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Differentiation and Characterization of Neural Progenitors and Neurons from Mouse Embryonic Stem Cells
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