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相关概念视频

Induced Pluripotent Stem Cells01:13

Induced Pluripotent Stem Cells

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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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EPS and iPS Cells in Disease Research01:21

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Embryonic and induced pluripotent stem cells are excellent models for disease research because of their ability to self-renew and differentiate into most cell types. Somatic cells from a patient are isolated and reprogrammed into induced pluripotent stem cells or iPSCs. These iPSCs are later differentiated into the desired cell type, which mirrors the diseased cell of the patient. In this way, disease models have been created for investigating diseases such as Down syndrome, type I diabetes,...
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iPS Cell Differentiation01:22

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The ability of induced pluripotent stem cells or iPSCs to differentiate into most body cell types has stimulated repair and regenerative medicine research over the past few decades. iPSC-derived blood cells, hepatocytes, beta islet cells, cardiomyocytes, neurons, and other cell types can repair injuries or regenerate damaged tissue in diseases such as diabetes and neurodegenerative disorders.
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Somatic to iPS Cell Reprogramming01:29

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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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蛋白质组学在下一代诱导多能干细胞模型中的应用.

Vyshnavi Manda1,2, Jay Pavelka1,2, Edward Lau1,2

  • 1Department of Medicine, Division of Cardiology, University of Colorado School of Medicine, Aurora, Colorado, USA.

Expert review of proteomics
|March 21, 2024
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概括

蛋白质学提供了一个不偏见的看法,在诱导多能干细胞 (iPS) 细胞分化和组织生成过程中蛋白质的变化. 这项技术有助于发现细胞标记物和表征iPS衍生的有机物,以改善研究和临床应用.

关键词:
诱导的多能干细胞干细胞.质谱测量质谱测量质谱测量质谱测量质量测量质谱测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量质量测量有机生物有机物蛋白质组学 蛋白质组学一些秘密一些秘密.

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科学领域:

  • 生物医学研究生物医学研究
  • 干细胞技术 干细胞技术
  • 蛋白质组学是指蛋白质组学.

背景情况:

  • 诱导多能干细胞 (iPS) 技术已经彻底改变了生物医学研究.
  • 创建有机体,微组织和芯片上的身体系统的新途径正在开辟.
  • 这些系统对于基本的生物研究和临床应用非常有价值.

研究的目的:

  • 突出蛋白质组学在理解iPS细胞分化和成熟过程中蛋白质表达的实用性.
  • 为了证明蛋白质组学如何帮助识别细胞类型特定标记物.
  • 展示蛋白质学在表征iPS衍生器官中的作用,以弥合体外和体内系统.

主要方法:

  • 对iPS细胞分化的蛋白质组分析.
  • 来自iPS的细胞和有机体的蛋白质学特征.
  • 整合蛋白质基因和转录基因数据用于系统级分析.

主要成果:

  • 蛋白质组学在iPS细胞过程中提供了对蛋白质表达变化的无偏见.
  • 发现细胞类型特定的蛋白质标记物提高了细胞生产产量和忠实性.
  • 来自iPS的有机体的蛋白质特性有助于整合体外和体内模型.

结论:

  • 蛋白质组学是iPS细胞研究中的一个强大的工具,用于了解分化和成熟.
  • 蛋白质组的洞察力对于改善基于细胞的疗法和有机体的发展至关重要.
  • 未来的方向包括整合蛋白质组和转录组数据,用于全面的系统生物学分析.