Leclerc Robert D
Wagner Lab, Department of Ecology and Evolutionary Biology, Yale University, New Haven, CT 06520, USA.
Mol Syst Biol. 2008;4:213. doi: 10.1038/msb.2008.52. Epub 2008 Aug 5.
Biological gene networks appear to be dynamically robust to mutation, stochasticity, and changes in the environment and also appear to be sparsely connected. Studies with computational models, however, have suggested that denser gene networks evolve to be more dynamically robust than sparser networks. We resolve this discrepancy by showing that misassumptions about how to measure robustness in artificial networks have inadvertently discounted the costs of network complexity. We show that when the costs of complexity are taken into account, that robustness implies a parsimonious network structure that is sparsely connected and not unnecessarily complex; and that selection will favor sparse networks when network topology is free to evolve. Because a robust system of heredity is necessary for the adaptive evolution of complex phenotypes, the maintenance of frugal network complexity is likely a crucial design constraint that underlies biological organization.
生物基因网络似乎对突变、随机性和环境变化具有动态稳健性,并且似乎连接稀疏。然而,计算模型研究表明,更密集的基因网络比更稀疏的网络进化得更具动态稳健性。我们通过表明对人工网络中如何衡量稳健性的错误假设无意中忽略了网络复杂性的成本,解决了这一差异。我们表明,当考虑到复杂性的成本时,稳健性意味着一种简约的网络结构,这种结构连接稀疏且不过于复杂;并且当网络拓扑结构可以自由进化时,选择将有利于稀疏网络。由于稳健的遗传系统对于复杂表型的适应性进化是必要的,节俭的网络复杂性的维持可能是生物组织基础的关键设计约束。