Gándara Lautaro, Wappner Pablo
Instituto Leloir, Av. Patricias Argentinas 435, Ciudad de Buenos Aires C1405BWE, Argentina.
Instituto Leloir, Av. Patricias Argentinas 435, Ciudad de Buenos Aires C1405BWE, Argentina; Departamento de Fisiología, Biología Molecular, y Celular, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Buenos Aires, Argentina.
Mech Dev. 2018 Dec;154:12-23. doi: 10.1016/j.mod.2018.02.004. Epub 2018 Feb 21.
In the last years, several reports have established the notion that metabolism is not just a housekeeping process, but instead an active effector of physiological changes. The idea that the metabolic status may rule a wide range of phenomena in cell biology is starting to be broadly accepted. Thus, current developmental biology has begun to describe different ways by which the metabolic profile of the cell and developmental programs of the organism can crosstalk. In this review, we discuss mechanisms by which metabolism impacts on processes governing development. We review the growing body of evidence that supports the notion that aerobic glycolysis is required in cells undergoing fast growth and high proliferation, similarly to the Warburg effect described in tumor cells. Glycolytic metabolism explains not only the higher ATP synthesis rate required for cell growth, but also the uncoupling between mitochondrial activity and bioenergetics needed to provide anabolism with sufficient precursors. We also discuss some recent studies, which show that in addition to its role in providing energy and carbon chains, the metabolic status of the cell can also influence epigenetic regulation of developmental processes. Although metabolic aspects of development are just starting to be explored, there is no doubt that ongoing research in this field will shape the future landscape of Developmental Biology.
在过去几年中,多项报告确立了这样一种观念,即新陈代谢不仅仅是一个维持生命的过程,而是生理变化的积极效应器。代谢状态可能支配细胞生物学中广泛现象的观点开始被广泛接受。因此,当前的发育生物学已开始描述细胞代谢特征与生物体发育程序相互影响的不同方式。在这篇综述中,我们讨论了新陈代谢影响发育调控过程的机制。我们回顾了越来越多的证据,这些证据支持这样一种观点,即与肿瘤细胞中描述的瓦伯格效应类似,快速生长和高增殖的细胞需要有氧糖酵解。糖酵解代谢不仅解释了细胞生长所需的较高ATP合成速率,还解释了线粒体活性与生物能量学之间的解偶联,这种解偶联是为合成代谢提供足够前体所必需的。我们还讨论了一些近期研究,这些研究表明,除了在提供能量和碳链方面的作用外,细胞的代谢状态还可以影响发育过程的表观遗传调控。尽管发育的代谢方面才刚刚开始被探索,但毫无疑问,该领域正在进行的研究将塑造发育生物学的未来格局。