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相关概念视频

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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Regulation of Hematopoietic Stem Cells01:01

Regulation of Hematopoietic Stem Cells

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All blood and immune cells are produced from the multipotent hematopoietic stem cells (HSCs) by the process of hematopoiesis. However, they all have a limited life span. In addition, many are depleted in immune surveillance or combatting an injury or infection. This makes blood one of the most regenerative tissues. Hematopoiesis helps replenish these blood and immune cells, restoring the body's normal functioning. However, overproduction of blood and immune cells can make them cancerous or...
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Differentiation of Common Myeloid Progenitor Cells01:15

Differentiation of Common Myeloid Progenitor Cells

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Common myeloid progenitors (CMPs) are oligopotent cells that can differentiate into granulocytes and macrophages. Granulocytes and macrophages are essential for protecting the body against bacterial, viral, or fungal infections. They migrate from the bone marrow into the circulating blood to reach specific tissue sites where they differentiate and help in immune surveillance. However, they survive only for a few days and must be continuously made available to the organism to maintain a robust...
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Lineage Commitment01:21

Lineage Commitment

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Commitment is the  process whereby stem cells:
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Forced Transdifferentiation01:28

Forced Transdifferentiation

2.3K
Transdifferentiation, also known as lineage reprogramming, was first discovered by Selman and Kafatos in 1974 in silkmoths. They observed that the moths’ cuticle-producing cells transformed into salt-producing cells. Many such cases of natural transdifferentiation occur in organisms. In humans, pancreatic alpha cells can become beta cells. In newts, the loss of the eye’s lens causes the pigmented epithelial cells to transdifferentiate into the lens cells.
Artificial...
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Methods of Nuclear Reprogramming01:24

Methods of Nuclear Reprogramming

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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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Preparation of Myeloid Derived Suppressor Cells MDSC from Naive and Pancreatic Tumor-bearing Mice using Flow Cytometry and Automated Magnetic Activated Cell Sorting AutoMACS
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Preparation of Myeloid Derived Suppressor Cells MDSC from Naive and Pancreatic Tumor-bearing Mice using Flow Cytometry and Automated Magnetic Activated Cell Sorting AutoMACS

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骨髓细胞重编程和免疫抑制

Amit Grover1, Evgenii N Tcyganov2, Dmitry I Gabrilovich2

  • 11Immuno-Oncology, Circuits-Engagers, & Cell Therapy, Oncology R&D, AstraZeneca, Cambridge, United Kingdom;

Annual review of physiology
|October 3, 2025
PubMed
概括

髓状细胞的可塑性使得像巨细胞和中性粒细胞这样的免疫细胞能够重新编程. 了解病理极化对于开发针对癌症等疾病的向疗法至关重要.

科学领域:

  • 免疫学 免疫学 免疫学
  • 细胞生物学 细胞生物学
  • 分子生物学分子生物学

背景情况:

  • 髓状细胞的可塑性通过重编程使多功能免疫功能成为可能.
  • 巨细胞和中性粒细胞表现出不同的经典和病理极化状态.
  • 病理极化与慢性炎症,癌症和免疫抑制有关.

研究的目的:

  • 审查当前对髓状细胞两极化状态的表征.
  • 探索转录,表观遗传和新陈代谢驱动器的髓状细胞重编程.
  • 突出细胞因子和组织微环境对髓状细胞两极分化的影响.

主要方法:

  • 关于髓状细胞可塑性和极化性的文献综述.
  • 对影响髓状细胞重编程的因素的分析.
  • 检查细胞因子和组织特异性的影响 (例如瘤缺氧).

主要成果:

  • 骨髓状细胞在响应环境线索时进行重新编程.
  • 经典的两极化支持抗微生物活性和炎症.
  • 病理两极分化涉及免疫抑制和异常功能.

结论:

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  • 了解髓状细胞重编程机制至关重要.
  • 病态两极化提供了治疗目标.
  • 调节髓状细胞活动可以导致新的干预措施.