Badyaev Alexander V, Morrison Erin S, Belloni Virginia, Sanderson Michael J
Department of Ecology and Evolutionary Biology, University of Arizona, Tucson, AZ, 85721, USA.
Biol Direct. 2015 Aug 20;10:45. doi: 10.1186/s13062-015-0073-6.
Resolution of the link between micro- and macroevolution calls for comparing both processes on the same deterministic landscape, such as genomic, metabolic or fitness networks. We apply this perspective to the evolution of carotenoid pigmentation that produces spectacular diversity in avian colors and show that basic structural properties of the underlying carotenoid metabolic network are reflected in global patterns of elaboration and diversification in color displays. Birds color themselves by consuming and metabolizing several dietary carotenoids from the environment. Such fundamental dependency on the most upstream external compounds should intrinsically constrain sustained evolutionary elongation of multi-step metabolic pathways needed for color elaboration unless the metabolic network gains robustness - the ability to synthesize the same carotenoid from an additional dietary starting point.
We found that gains and losses of metabolic robustness were associated with evolutionary cycles of elaboration and stasis in expressed carotenoids in birds. Lack of metabolic robustness constrained lineage's metabolic explorations to the immediate biochemical vicinity of their ecologically distinct dietary carotenoids, whereas gains of robustness repeatedly resulted in sustained elongation of metabolic pathways on evolutionary time scales and corresponding color elaboration.
The structural link between length and robustness in metabolic pathways may explain periodic convergence of phylogenetically distant and ecologically distinct species in expressed carotenoid pigmentation; account for stasis in carotenoid colors in some ecological lineages; and show how the connectivity of the underlying metabolic network provides a mechanistic link between microevolutionary elaboration and macroevolutionary diversification.
要解决微观进化与宏观进化之间的联系,需要在相同的确定性景观(如基因组、代谢或适应度网络)上对这两个过程进行比较。我们将这一观点应用于类胡萝卜素色素沉着的进化,这种色素沉着在鸟类颜色中产生了惊人的多样性,并表明潜在的类胡萝卜素代谢网络的基本结构特性反映在颜色展示的全局细化和多样化模式中。鸟类通过摄取和代谢环境中的几种膳食类胡萝卜素来为自己着色。对最上游外部化合物的这种基本依赖本质上应限制颜色细化所需的多步代谢途径的持续进化延长,除非代谢网络获得稳健性——即从额外的膳食起始点合成相同类胡萝卜素的能力。
我们发现代谢稳健性的获得和丧失与鸟类中表达的类胡萝卜素的进化细化和停滞周期相关。缺乏代谢稳健性将谱系的代谢探索限制在其生态上不同的膳食类胡萝卜素的直接生化邻近区域,而稳健性的获得反复导致代谢途径在进化时间尺度上的持续延长以及相应的颜色细化。
代谢途径长度与稳健性之间的结构联系可能解释了在表达的类胡萝卜素色素沉着中系统发育上遥远且生态上不同的物种的周期性趋同;解释了某些生态谱系中类胡萝卜素颜色的停滞现象;并展示了潜在代谢网络的连通性如何在微观进化细化和宏观进化多样化之间提供一种机制联系。