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Somatic to iPS Cell Reprogramming01:29

Somatic to iPS Cell Reprogramming

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Reprogramming alters the gene expression in somatic cells, transforming them into induced pluripotent stem (iPS) cells over several generations. Scientists can reprogram cells by introducing genes for four transcription factors—Oct4, Sox2, Klf4, and c-Myc (OSKM) by viral or non-viral methods. These factors are also known as Yamanaka factors after Shinya Yamanaka, who first generated iPS cells using mouse skin cells. Yamanaka was awarded the Nobel Prize in Physiology or Medicine in 2012...
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Chromatin Modification in iPS Cells01:32

Chromatin Modification in iPS Cells

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Chromatin modification alters gene expression; therefore, scientists can add histone-modifying enzymes, histone variants, and chromatin remodeling complexes to somatic cells to aid reprogramming into pluripotent stem (iPS) cells.
Compact chromatin makes reprogramming difficult. Enzymes, such as histone demethylases and acetyltransferases, are often added during reprogramming to loosen the chromatin, making the DNA more accessible to transcription factors. Molecules that inhibit histone...
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Methods of Nuclear Reprogramming01:24

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Nuclear reprogramming is a process of transforming one cell type into an unrelated cell type by epigenetic changes that alter the cell’s original gene expression pattern. Such epigenetic changes force cells to express a different set of genes, which play a significant role in inducing transformation into other cell types. Nuclear reprogramming offers applications in reproductive cloning for livestock propagation and regenerative medicine — developing patient-specific cells for...
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Combinatorial Gene Control02:33

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Combinatorial gene control is the synergistic action of several transcriptional factors to regulate the expression of a single gene. The absence of one or more of these factors may lead to a significant difference in the level of gene expression or repression.
The expression of more than 30,000 genes is controlled by approximately 2000-3000 transcription factors. This is possible because a single transcription factor can recognize more than one regulatory sequence. The specificity in gene...
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Induced Pluripotent Stem Cells01:13

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No description available
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Induced Pluripotent Stem Cells01:13

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Stem cells are undifferentiated cells that divide and produce different types of cells. Ordinarily, cells that have differentiated into a specific cell type are post-mitotic—that is, they no longer divide. However, scientists have found a way to reprogram these mature cells so that they “de-differentiate” and return to an unspecialized, proliferative state. These cells are also pluripotent like embryonic stem cells—able to produce all cell types—and are therefore...
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Author Spotlight: Reprogramming Cancer Cells to iPSCs to Study Disease Progression and Treatment Targets
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Author Spotlight: Reprogramming Cancer Cells to iPSCs to Study Disease Progression and Treatment Targets

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プラリポテンツを分割する

Brenton R Graveley1

  • 1Department of Genetics and Developmental Biology, University of Connecticut Stem Cell Institute, University of Connecticut Health Center, Farmington, CT 06030, USA. graveley@neuron.uchc.edu

Cell
|October 4, 2011
PubMed
まとめ

新たに特定されたFOXP1スプライス変種は,ヒト胚性幹細胞の多能性遺伝子を直接制御する. この発見は,幹細胞の多能性を維持し,体細胞を再プログラムするために重要である.

科学分野:

  • 分子生物学は分子生物学である.
  • 幹細胞生物学 幹細胞生物学
  • 遺伝子規制 遺伝子規制

背景:

  • FOXP1遺伝子は細胞の発達に役割を果たしています.
  • プラリポテンスの調節を理解することは,再生医療の鍵です.

研究 の 目的:

  • プラリポテンシー遺伝子の新しいレギュレータを特定する.
  • 幹細胞生物学におけるFOXP1スプライス変異の役割を調査する.
  • ソマティック細胞の再プログラミングの基礎となるメカニズムを探求する.

主な方法:

  • FOXP1 スプライス・バリエーションの分析.
  • 人間の胚性幹細胞における遺伝子発現分析.
  • 細胞再プログラムに関する機能的研究.

主要な成果:

  • 新型FOXP1スプライス変異の特定.
  • この変異体が,多能性遺伝子を直接調節することを示す.
  • この変種が多能性および再プログラミングを維持するために不可欠であるという証拠.

結論:

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  • 新しいFOXP1スプライス変異体が,多能性の重要な調節因子として特定されています.
  • この変種は,ヒトの胚性幹細胞機能において重要な役割を果たします.
  • この発見は,誘導性多能幹細胞技術に意味を持つ.