综述了在干细胞分化过程中柠檬酸盐代谢改变的重要核心作用。

Leslie C Costello, Renty B Franklin
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引用次数: 37

摘要

干细胞是高度增殖的细胞,具有分化的潜力,导致特化功能细胞类型的发展。干细胞分化的过程需要增加未分化干细胞的招募和数量,然后将其分化为特定的功能细胞类型。细胞中间能量代谢的遗传/代谢转化需要在这一过程中提供干细胞的生物能量、合成和分解代谢需求。然而,中间能量代谢途径的鉴定及其在干细胞增殖和分化过程中的改变在很大程度上仍然未知;主要是由于缺乏对这种关系的关注和/或所需的研究。在缺乏这些信息的情况下,就无法充分了解促进干细胞分化导致正常功能代谢特化细胞发育所需的因素和条件。本文旨在为干细胞增殖和分化过程中细胞中间体代谢改变的本质关系提供背景和关注。柠檬酸盐代谢是导致特化功能细胞发育的遗传和代谢转化的核心。这篇综述确定了柠檬酸盐代谢的改变和关键途径、酶和转运体的相关遗传改变的参与;以及对生物能源的影响。强调了识别和使用必要条件的重要性,以确保实验干细胞分化过程导致特化细胞的发育,这些特化细胞代表其天然特化细胞的功能代谢特征和能力。这是干细胞治疗和再生医学成功应用于许多病理条件的基本要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A review of the important central role of altered citrate metabolism during the process of stem cell differentiation.

Stem cells are highly proliferating cells that have the potential for differentiation leading to the development of specialized functional cell types. The process of stem cell differentiation requires an increase in the recruitment and population of the undifferentiated stem cells, which are then differentiated to specific functional cell types. Genetic/metabolic transformations in the cellular intermediary energy metabolism are required to provide the bioenergetic, synthetic, and catabolic requirements of the stem cells during this process. However, the identification of the intermediary energy metabolism pathways and their alterations during the proliferation and differentiation of stem cells remain largely unknown; mainly due to the lack of attention and/or required research that focuses on this relationship. In the absence of such information, a full understanding of the factors and conditions required to promote stem cell differentiation leading to development of normal functional metabolic specialized cells cannot be achieved. The purpose of this review is to provide the background and bring attention to the essential relationship of altered cellular intermediary metabolism in the context of the process of stem cell proliferation and differentiation. Citrate metabolism is central to the genetic and metabolic transformation leading to the development of the specialized functional cells. This review identifies the involvement of altered citrate metabolism and the associated genetic alterations of key pathways, enzymes, and transporters; as well as the bioenergetic implications. The importance is emphasized for identification and employment of required conditions to insure that the process of experimental stem cell differentiation results in the development of specialized cells that represent the functional metabolic characteristics and capabilities of their native specialized cells. This is an essential requirement for the successful application of stem cell therapy and regenerative medicine for many pathological conditions.

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