The role of self-organization in developmental evolution

被引:0
作者
Joseph E. Hannon Bozorgmehr
机构
[1] Laboratory of Systems Biology and Bioinformatics,
来源
Theory in Biosciences | 2014年 / 133卷
关键词
Self-organization; Gene regulatory networks; Morphogenesis; Evo-devo; Regeneration;
D O I
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中图分类号
学科分类号
摘要
In developmental and evolutionary biology, particular emphasis has been given to the relationship between transcription factors and the cognate cis-regulatory elements of their target genes. These constitute the gene regulatory networks that control expression and are assumed to causally determine the formation of structures and body plans. Comparative analysis has, however, established a broad sequence homology among species that nonetheless display quite different anatomies. Transgenic experiments have also confirmed that many developmentally important elements are, in fact, functionally interchangeable. Although dependent upon the appropriate degree of gene expression, the actual construction of specific structures appears not directly linked to the functions of gene products alone. Instead, the self-formation of complex patterns, due in large part to epigenetic and non-genetic determinants, remains a persisting theme in the study of ontogeny and regenerative medicine. Recent evidence indeed points to the existence of a self-organizing process, operating through a set of intrinsic rules and forces, which imposes coordination and a holistic order upon cells and tissue. This has been repeatedly demonstrated in experiments on regeneration as well as in the autonomous formation of structures in vitro. The process cannot be wholly attributed to the functional outcome of protein–protein interactions or to concentration gradients of diffusible chemicals. This phenomenon is examined here along with some of the methodological and theoretical approaches that are now used in understanding the causal basis for self-organization in development and its evolution.
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页码:145 / 163
页数:18
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共 558 条
  • [31] Negre B(2011)Emergence, self-organization and morphogenesis in biological structures J Med Life 12 101-25
  • [32] Simpson P(2011)The similarity of gene expression between human and mouse tissues Genome Biol 22 579-1186
  • [33] Stollewerk A(2007)The uniqueness of biological self-organization: challenging the Darwinian paradigm Biol Philos 2 384-4942
  • [34] Baker RE(2011)Regenerative capacity in newts is not altered by repeated regeneration and ageing Nat Commun 3 519-306
  • [35] Schnell S(2008)Self-organized formation of polarized cortical tissues from ESCs and its active manipulation by extrinsic signals Cell Stem Cell 472 51-2037
  • [36] Maini PK(2011)Self-organizing optic-cup morphogenesis in three-dimensional culture Nature 1 17-603
  • [37] Balleza E(2012)Relaxation-expansion model for self-driven retinal morphogenesis: a hypothesis from the perspective of biosystems dynamics at the multi-cellular level BioEssays 297 1183-1229
  • [38] López-Bojorquez LN(2002)Stochastic gene expression in a single cell Science 86 4938-73
  • [39] Martínez-Antonio A(1989)On the dynamics of a forced reaction-diffusion model for biological pattern formation Proc Natl Acad Sci USA 229 287-125
  • [40] Resendis-Antonio O(2001)The pitx2 homeobox protein is required early for endoderm formation and nodal signaling Dev Biol 309 2033-372