oskm介导的心肌细胞可逆重编程可再生损伤心肌。

IF 4 Q2 CELL & TISSUE ENGINEERING
Gregory Farber, Jiandong Liu, Li Qian
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引用次数: 0

摘要

细胞重编程已迅速成为一种有前途的方法,从非心肌细胞细胞类型产生新的心肌细胞。利用OSKM因子的瞬时表达,Chen等人展示了一种独特的重编程策略,包括将常驻成年心肌细胞身份调节到不成熟的增殖状态(Science 373:1537- 40,2021)。这种oskm介导的逆转导致成年小鼠心肌细胞采用与发育中的心肌细胞相似的转录谱,并且与成熟心肌细胞相比,这些重编程心肌细胞的增殖能力增加。此外,这种新方法还能促进成年小鼠心肌损伤后心脏的再生。尽管仍存在担忧和问题,但本研究令人鼓舞的结果通过提供一种生成心肌细胞的新技术以及对心肌细胞去分化及其与增殖的关系的见解,推动了心脏再生领域的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
OSKM-mediated reversible reprogramming of cardiomyocytes regenerates injured myocardium.

Cellular reprogramming has rapidly become a promising methodology to generate new cardiomyocytes from non-cardiomyocyte cell types. Using the transient expression of OSKM factors, Chen et al. demonstrate a unique reprogramming strategy involving the modulation of the resident adult cardiomyocyte identity to an immature proliferative state (Science 373:1537-40, 2021). This OSKM-mediated reversion results in the adoption by adult murine cardiomyocytes of a transcriptional profile similar to cardiomyocytes found in developing hearts, as well as increased proliferative capacity of these reprogrammed cardiomyocytes compared to mature cardiomyocytes. Furthermore, this novel approach enhances the regeneration of adult murine hearts post-myocardial injury. Although concerns and questions remain, the encouraging results of this study advance the field of cardiac regeneration by providing a new technique to generate cardiomyocytes as well as insights into cardiomyocyte dedifferentiation and its relation to proliferation.

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来源期刊
Cell Regeneration
Cell Regeneration Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
5.80
自引率
0.00%
发文量
42
审稿时长
35 days
期刊介绍: Cell Regeneration aims to provide a worldwide platform for researches on stem cells and regenerative biology to develop basic science and to foster its clinical translation in medicine. Cell Regeneration welcomes reports on novel discoveries, theories, methods, technologies, and products in the field of stem cells and regenerative research, the journal is interested, but not limited to the following topics: ◎ Embryonic stem cells ◎ Induced pluripotent stem cells ◎ Tissue-specific stem cells ◎ Tissue or organ regeneration ◎ Methodology ◎ Biomaterials and regeneration ◎ Clinical translation or application in medicine
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