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The evolving biology of cell reprogramming

机译:不断发展的细胞重编程生物学

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摘要

Modern stem cell biology has achieved a transformation that was thought by many to be every bit as unattainable as the ancient alchemists’ dream of transforming base metals into gold. Exciting opportunities arise from the process known as ‘cellular reprogramming’ in which cells can be reliably changed from one tissue type to another. This is enabling novel approaches to more deeply investigate the fundamental basis of cell identity. In addition, new opportunities have also been created to study (perhaps even to treat) human genetic and degenerative diseases. Specific cell types that are affected in inherited disease can now be generated from easily accessible cells from the patient and compared with equivalent cells from healthy donors. The differences in cellular phenotype between the two may then be identified, and assays developed to establish therapies that prevent the development or progression of disease symptoms. Cellular reprogramming also has the potential to create new cells to replace those whose death or dysfunction causes disease symptoms. For patients suffering from inherited cases of degenerative diseases like Parkinson’s disease or amyotrophic lateral sclerosis (also known as motor neuron disease), the future realization of such cell-based therapies would truly be worth its weight in gold. However, before this enormous potential can become a reality, several significant biological and technical challenges must be overcome. Furthermore, to maintain the credibility of the scientific community with the general public, it is important that hope-inspiring advances are not over-hyped. The papers in this issue of the Philosophical Transactions of the Royal Society B: Biological Sciences cover many areas relevant to this topic. In this Introduction, we provide an overall context in which to consider these individual papers.
机译:现代干细胞生物学已经实现了一种转变,这一点被许多人认为是无法实现的,就像古代炼金术士将基本金属转变为黄金的梦想一样。令人兴奋的机会来自称为“细胞重编程”的过程,在该过程中,细胞可以可靠地从一种组织类型改变为另一种组织类型。这使新颖的方法能够更深入地研究细胞身份的基本基础。此外,还创造了新的机会来研究(甚至治疗)人类遗传和退化性疾病。现在可以从患者容易获得的细胞中产生受遗传疾病影响的特定细胞类型,并将其与健康供体的等效细胞进行比较。然后可以鉴定两者之间的细胞表型差异,并开发测定法以建立预防疾病症状发展或进展的疗法。细胞重编程还具有创造新细胞来替代那些死亡或功能障碍导致疾病症状的细胞的潜力。对于患有遗传性退行性疾病(如帕金森氏病或肌萎缩性侧索硬化症(也称为运动神经元病))的患者而言,这种基于细胞的疗法的未来实现确实值得金。但是,在实现这一巨大潜力之前,必须克服一些重大的生物学和技术挑战。此外,为了保持科学界在公众中的信誉,重要的是不要过分夸大激发希望的进展。本期《皇家学会哲学交易B:生物科学》中的论文涵盖了与此主题相关的许多领域。在本简介中,我们提供了一个整体背景来考虑这些单独的论文。

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