Bioland Laboratory (Guangzhou Regenerative Medicine and Health Guangdong Laboratory), Guangzhou 510320, China.
Guangzhou Laboratory, Guangzhou 510320, China.
Genes (Basel). 2022 Oct 15;13(10):1864. doi: 10.3390/genes13101864.
The 3D chromatin structure within the nucleus is important for gene expression regulation and correct developmental programs. Recently, the rapid development of low-input chromatin conformation capture technologies has made it possible to study 3D chromatin structures in gametes, zygotes and early embryos in a variety of species, including flies, vertebrates and mammals. There are distinct 3D chromatin structures within the male and female gametes. Following the fertilization of male and female gametes, fertilized eggs undergo drastic epigenetic reprogramming at multi levels, including the 3D chromatin structure, to convert the terminally differentiated gamete state into the totipotent state, which can give rise to an individual. However, to what extent the 3D chromatin structure reorganization is evolutionarily conserved and what the underlying mechanisms are for the tremendous reorganization in early embryos remain elusive. Here, we review the latest findings on the 3D chromatin structure reorganization during embryogenesis, and discuss the convergent and divergent reprogramming patterns and key molecular mechanisms for the 3D chromatin structure reorganization from gametes to embryos in different species. These findings shed light on how the 3D chromatin structure reorganization contribute to embryo development in different species. The findings also indicate the role of the 3D chromatin structure on the acquisition of totipotent developmental potential.
细胞核内的三维染色质结构对于基因表达调控和正确的发育程序至关重要。最近,低投入染色质构象捕获技术的快速发展使得研究各种物种(包括苍蝇、脊椎动物和哺乳动物)的配子、受精卵和早期胚胎中的三维染色质结构成为可能。在雄性和雌性配子中存在明显的三维染色质结构。雌雄配子受精后,受精卵在多个层面经历剧烈的表观遗传重编程,包括三维染色质结构,将终末分化的配子状态转变为全能状态,从而产生个体。然而,三维染色质结构重排在多大程度上是进化保守的,以及早期胚胎中巨大的重排的潜在机制是什么,仍然难以捉摸。在这里,我们回顾了胚胎发生过程中三维染色质结构重排的最新发现,并讨论了不同物种从配子到胚胎的三维染色质结构重排的趋同和分歧的重编程模式和关键分子机制。这些发现揭示了三维染色质结构重排在不同物种中的胚胎发育中的作用。这些发现还表明了三维染色质结构在获得全能发育潜能方面的作用。