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On the thermodynamics of multilevel evolution

机译:关于多级演化的热力学

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摘要

Biodiversity is hierarchically structured both phylogenetically and functionally. Phylogenetic hierarchy is understood as a product of branching organic evolution as described by Darwin. Ecosystem biologists understand some aspects of functional hierarchy, such as food web architecture, as a product of evolutionary ecology; but functional hierarchy extends to much lower scales of organization than those studied by ecologists. We argue that the more general use of the term "evolution" employed by physicists and applied to non-living systems connects directly to the narrow biological meaning. Physical evolution is best understood as a thermodynamic phenomenon, and this perspective comfortably includes all of biological evolution. We suggest four dynamical factors that build on each other in a hierarchical fashion and set the stage for the Darwinian evolution of biological systems: (1) the entropic erosion of structure; (2) the construction of dissipative systems; (3) the reproduction of growing systems and (4) the historical memory accrued to populations of reproductive agents by the acquisition of hereditary mechanisms. A particular level of evolution can underpin the emergence of higher levels, but evolutionary processes persist at each level in the hierarchy. We also argue that particular evolutionary processes can occur at any level of the hierarchy where they are not obstructed by material constraints. This theoretical framework provides an extensive basis for understanding natural selection as a multilevel process. The extensive literature on thermodynamics in turn provides an important advantage to this perspective on the evolution of higher levels of organization, such as the evolution of altruism that can accompany the emergence of social organization.
机译:生物多样性在系统发育和功能上都是层次结构。系统发育等级被理解为达尔文描述的分支有机进化的产物。生态系统生物学家理解功能层次结构的某些方面,例如食物网架构,是进化生态学的产物。但是功能层级扩展到的组织规模比生态学家研究的要低得多。我们认为,物理学家使用的“进化”一词的更普遍使用直接适用于狭义的生物学含义。最好将物理进化理解为热力学现象,并且这种观点舒适地涵盖了所有生物进化。我们提出了四个动力学因素,它们以层级的方式相互建立,并为生物系统的达尔文进化奠定了基础:(1)结构的熵侵蚀; (2)耗散系统的建设; (3)生长系统的繁殖,以及(4)通过遗传机制的获得,对繁殖种群产生的历史记忆。特定的进化级别可以支撑更高级别的出现,但是进化过程在层次结构的每个级别上都持续存在。我们还认为,特定的进化过程可以发生在层次结构的任何层次上,这些层次不会受到物质约束的阻碍。这个理论框架为理解自然选择作为一个多层次的过程提供了广泛的基础。反过来,关于热力学的大量文献反过来为这种观点提供了一个重要的优势,即这种观点对于组织的更高层次的演变,例如可以伴随社会组织出现的利他主义的演变。

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