Schaner Christine E, Kelly William G
Biology Department, Emory University, Atlanta, GA 30322, USA.
WormBook. 2006 Jan 24:1-14. doi: 10.1895/wormbook.1.73.1.
The DNA in eukaryotes is wrapped around a histone octamer core, together comprising the main subunit of chromatin, the nucleosome. Modifications of the nucleosomal histones in the genome correlate with the ability or inability of chromatin to form higher order structures, that in turn influence gene activity. The genome in primordial germ cells in early C. elegans germ cells carries a unique pattern of histone modifications that correlate with transcriptional repression in these cells, and aspects of this chromatin regulation are conserved in Drosophila. Loss of repression causes sterility in the adults, suggesting that chromatin-based repression is essential for germ line maintenance. The post-embryonic germ line also exhibits unique and dynamic aspects of chromatin regulation, with chromosome-wide regulation particularly evident on the X chromosome. Several properties of X-specific chromatin assembly are also sex-specific. These properties appear to be responding to the meiotic pairing status of the X chromosome, rather than the sex of the germ cells. Finally, gamete-specific chromatin regulation during gametogenesis impacts on X chromatin assembly in the offspring, leading to an apparent sperm-imprinted X inactivation in the early embryo. Other potential roles for germline-specific modes of chromatin assembly in genome regulation and protection are discussed.
真核生物中的DNA缠绕在组蛋白八聚体核心周围,二者共同构成染色质的主要亚基——核小体。基因组中核小体组蛋白的修饰与染色质形成高阶结构的能力相关,而这又反过来影响基因活性。秀丽隐杆线虫早期生殖细胞中原始生殖细胞的基因组具有独特的组蛋白修饰模式,这与这些细胞中的转录抑制相关,并且这种染色质调控的某些方面在果蝇中是保守的。抑制作用的丧失会导致成虫不育,这表明基于染色质的抑制对于生殖系的维持至关重要。胚胎后期的生殖系也表现出染色质调控的独特和动态方面,全染色体范围的调控在X染色体上尤为明显。X特异性染色质组装的几个特性也是性别特异性的。这些特性似乎是对X染色体的减数分裂配对状态做出反应,而不是对生殖细胞的性别做出反应。最后,配子发生过程中配子特异性的染色质调控会影响后代的X染色质组装,导致早期胚胎中明显的精子印记X失活。本文还讨论了生殖系特异性染色质组装模式在基因组调控和保护中的其他潜在作用。