Hocher Antoine, Taddei Angela
MRC London Institute of Medical Sciences (LMS), Du Cane Road, London, W12 0NN, UK.
Institute of Clinical Sciences (ICS), Faculty of Medicine, Imperial College London, Du Cane Road, London, W12 0NN, UK.
Bioessays. 2020 May;42(5):e1900205. doi: 10.1002/bies.201900205. Epub 2020 Mar 17.
Specificities associated with chromosomal linearity are not restricted to telomeres. Here, recent results obtained on fission and budding yeast are summarized and an attempt is made to define subtelomeres using chromatin features extending beyond the heterochromatin emanating from telomeres. Subtelomeres, the chromosome domains adjacent to telomeres, differ from the rest of the genome by their gene content, rapid evolution, and chromatin features that together contribute to organism adaptation. However, current definitions of subtelomeres are generally based on synteny and are largely gene-centered. Taking into consideration both the peculiar gene content and dynamics as well as the chromatin properties of those domains, it is discussed how chromatin features can contribute to subtelomeric properties and functions, and play a pivotal role in the emergence of subtelomeres.
与染色体线性相关的特异性并不局限于端粒。在此,总结了近期在裂殖酵母和芽殖酵母上获得的结果,并尝试利用超出端粒异染色质范围的染色质特征来定义亚端粒。亚端粒是与端粒相邻的染色体区域,其基因组成、快速进化以及染色质特征与基因组的其他部分不同,这些共同促成了生物体的适应性。然而,目前亚端粒的定义通常基于同线性,并且在很大程度上以基因为中心。考虑到这些区域独特的基因组成和动态变化以及染色质特性,本文讨论了染色质特征如何有助于亚端粒的特性和功能,并在亚端粒的出现中发挥关键作用。