Zheng Chunyang, Lu Xu, Hansen Jeffrey C, Hayes Jeffrey J
Department of Biochemistry and Biophysics, School of Medicine and Dentistry, University of Rochester, Rochester, New York 14642, USA.
J Biol Chem. 2005 Sep 30;280(39):33552-7. doi: 10.1074/jbc.M507241200. Epub 2005 Aug 2.
The core histone tail domains are known to be key regulators of chromatin structure and function. The tails are required for condensation of nucleosome arrays into secondary and tertiary chromatin structures, yet little is known regarding tail structures or sites of tail interactions in chromatin. We have developed a system to test the hypothesis that the tails participate in internucleosomal interactions during salt-dependent chromatin condensation, and here we used it to examine interactions of the H3 tail domain. We found that the H3 tail participates primarily in intranucleosome interactions when the nucleosome array exists in an extended "beads-on-a-string" conformation and that tail interactions reorganize to engage in primarily internucleosome interactions as the array successively undergoes salt-dependent folding and oligomerization. These results indicated that the location and interactions of the H3 tail domain are dependent upon the degree of condensation of the nucleosomal array, suggesting a mechanism by which alterations in tail interactions may elaborate different structural and functional states of chromatin.
核心组蛋白尾部结构域是染色质结构和功能的关键调节因子。尾部对于核小体阵列凝聚成二级和三级染色质结构是必需的,然而关于染色质中尾部结构或尾部相互作用位点却知之甚少。我们开发了一个系统来验证尾部在盐依赖性染色质凝聚过程中参与核小体间相互作用的假说,在此我们用该系统研究H3尾部结构域的相互作用。我们发现,当核小体阵列以伸展的“串珠”构象存在时,H3尾部主要参与核小体内相互作用,并且随着阵列依次经历盐依赖性折叠和寡聚化,尾部相互作用会重新组织,主要参与核小体间相互作用。这些结果表明,H3尾部结构域的位置和相互作用取决于核小体阵列的凝聚程度,提示了一种尾部相互作用改变可能阐述染色质不同结构和功能状态的机制。