Center of Mathematics for Social Creativity, Hokkaido University, 5-8 Kita Ward, Sapporo 060-0808, Japan.
Maretec, Instituto Superior Técnico, Universidade de Lisboa, Av. Rovisco Pais 1, 1049-001 Lisboa, Portugal.
Phys Life Rev. 2017 Mar;20:1-39. doi: 10.1016/j.plrev.2016.09.001. Epub 2016 Sep 9.
We review the most comprehensive metabolic theory of life existing to date. A special focus is given to the thermodynamic roots of this theory and to implications that the laws of physics-such as the conservation of mass and energy-have on all life. Both the theoretical foundations and biological applications are covered. Hitherto, the foundations were more accessible to physicists or mathematicians, and the applications to biologists, causing a dichotomy in what always should have been a single body of work. To bridge the gap between the two aspects of the same theory, we (i) adhere to the theoretical formalism, (ii) try to minimize the amount of information that a reader needs to process, but also (iii) invoke examples from biology to motivate the introduction of new concepts and to justify the assumptions made, and (iv) show how the careful formalism of the general theory enables modular, self-consistent extensions that capture important features of the species and the problem in question. Perhaps the most difficult among the introduced concepts, the utilization (or mobilization) energy flow, is given particular attention in the form of an original and considerably simplified derivation. Specific examples illustrate a range of possible applications-from energy budgets of individual organisms, to population dynamics, to ecotoxicology.
我们回顾了迄今为止存在的最全面的生命代谢理论。特别关注该理论的热力学基础,以及物理定律(如质量和能量守恒)对所有生命的影响。涵盖了理论基础和生物学应用。迄今为止,该理论的基础对物理学家或数学家来说更容易理解,而其应用对生物学家来说则更具吸引力,这导致了本应是同一理论的两个方面之间存在二分法。为了弥合同一理论的两个方面之间的差距,我们(i)坚持理论形式主义,(ii)尽量减少读者需要处理的信息量,但也(iii)从生物学中引用实例来激发新概念的引入,并证明所做的假设是合理的,(iv)展示一般理论的精心形式主义如何能够实现模块化、自洽的扩展,从而捕捉到所讨论物种和问题的重要特征。在引入的概念中,也许最难理解的是利用(或动员)能量流,我们以原创且相当简化的推导形式特别关注它。具体示例说明了一系列可能的应用,从单个生物体的能量预算到种群动态再到生态毒理学。