Rothman Douglas L, Moore Peter B, Shulman Robert G
Departments of Radiology, Yale University, New Haven, CT, United States.
Biomedical Engineering, Yale University, New Haven, CT, United States.
Front Cell Dev Biol. 2023 Jun 12;11:1197226. doi: 10.3389/fcell.2023.1197226. eCollection 2023.
Since Jacob and Monod's discovery of the lac operon ∼1960, the explanations offered for most metabolic adaptations have been genetic. The focus has been on the adaptive changes in gene expression that occur, which are often referred to as "metabolic reprogramming." The contributions metabolism makes to adaptation have been largely ignored. Here we point out that metabolic adaptations, including the associated changes in gene expression, are highly dependent on the metabolic state of an organism prior to the environmental change to which it is adapting, and on the plasticity of that state. In support of this hypothesis, we examine the paradigmatic example of a genetically driven adaptation, the adaptation of to growth on lactose, and the paradigmatic example of a metabolic driven adaptation, the Crabtree effect in yeast. Using a framework based on metabolic control analysis, we have reevaluated what is known about both adaptations, and conclude that knowledge of the metabolic properties of these organisms prior to environmental change is critical for understanding not only how they survive long enough to adapt, but also how the ensuing changes in gene expression occur, and their phenotypes post-adaptation. It would be useful if future explanations for metabolic adaptations acknowledged the contributions made to them by metabolism, and described the complex interplay between metabolic systems and genetic systems that make these adaptations possible.
自1960年左右雅各布和莫诺发现乳糖操纵子以来,对于大多数代谢适应现象的解释一直都是基于遗传学的。研究重点一直放在所发生的基因表达适应性变化上,这些变化通常被称为“代谢重编程”。而代谢对适应的贡献在很大程度上被忽视了。在此我们指出,代谢适应,包括相关的基因表达变化,高度依赖于生物体在适应环境变化之前的代谢状态以及该状态的可塑性。为支持这一假设,我们研究了基因驱动适应的典型例子,即大肠杆菌对乳糖生长的适应,以及代谢驱动适应的典型例子,即酵母中的巴斯德效应。利用基于代谢控制分析的框架,我们重新评估了关于这两种适应的已知情况,并得出结论:了解这些生物体在环境变化之前的代谢特性,对于理解它们不仅如何存活足够长的时间以实现适应,而且对于理解随后基因表达的变化如何发生以及适应后的表型至关重要。如果未来对代谢适应的解释能够承认代谢对其的贡献,并描述使这些适应成为可能的代谢系统与遗传系统之间的复杂相互作用,那将是很有帮助的。