John Innes Centre, Norwich, United Kingdom.
Department of Biology, Institute of Molecular Plant Biology, Swiss Federal Institute of Technology (ETH) Zurich, Zürich, Switzerland.
Curr Top Dev Biol. 2023;151:91-126. doi: 10.1016/bs.ctdb.2022.04.008. Epub 2022 Jun 20.
Chromosomes adopt specific conformations to regulate various cellular processes. A well-documented chromosome configuration is the highly compacted chromosome structure during metaphase. More regional chromatin conformations have also been reported, including topologically associated domains encompassing mega-bases of DNA and local chromatin loops formed by kilo-bases of DNA. In this review, we discuss the changes in chromatin conformation taking place between somatic and meiotic cells, with a special focus on the establishment of a proteinaceous structure, called the chromosome axis, at the beginning of meiosis. The chromosome axis is essential to support key meiotic processes such as chromosome pairing, homologous recombination, and balanced chromosome segregation to transition from a diploid to a haploid stage. We review the role of the chromosome axis in meiotic chromatin organization and provide a detailed description of its protein composition. We also review the conserved and distinct roles between species of axis proteins in meiotic recombination, which is a major factor contributing to the creation of genetic diversity and genome evolution. Finally, we discuss situations where the chromosome axis is deregulated and evaluate the effects on genome integrity and the consequences from protein deregulation in meiocytes exposed to heat stress, and aberrant expression of genes encoding axis proteins in mammalian somatic cells associated with certain types of cancers.
染色体通过采取特定构象来调控各种细胞过程。一种被充分记录的染色体构象是在有丝分裂中期高度压缩的染色体结构。更多的局部染色质构象也被报道过,包括包含兆碱基 DNA 的拓扑关联域和由千碱基 DNA 形成的局部染色质环。在这篇综述中,我们讨论了染色质构象在体细胞和减数体之间发生的变化,特别关注在减数分裂开始时形成一种被称为染色体轴的蛋白质结构。染色体轴对于支持关键的减数过程至关重要,如染色体配对、同源重组和平衡染色体分离,以从二倍体过渡到单倍体阶段。我们综述了染色体轴在减数染色质组织中的作用,并提供了其蛋白组成的详细描述。我们还综述了轴蛋白在减数分裂重组中的保守和独特作用,这是导致遗传多样性和基因组进化的主要因素。最后,我们讨论了染色体轴失调的情况,并评估了在热应激下暴露于减数细胞的基因组完整性和蛋白失调的影响,以及与某些类型癌症相关的哺乳动物体细胞中编码轴蛋白的基因异常表达的影响。