Lee Jung-Hoon, Maskos Klaus, Huber Robert
Max-Planck-Institute of Biochemistry, Martinsried, Germany.
J Mol Biol. 2009 Aug 28;391(4):744-57. doi: 10.1016/j.jmb.2009.06.059. Epub 2009 Jun 30.
Yeast class II Hda1 histone deacetylase (HDAC) complex is an H2B- and H3-specific HDAC in Saccharomyces cerevisiae consisting of three previously identified subunits, the catalytic subunit scHda1p and two non-catalytic structural subunits scHda2p and scHda3p. We co-expressed and co-purified recombinant yeast class II HDAC complex from bacteria as a functionally active and trichostatin-A-sensitive hetero-tetrameric complex. According to an extensive analysis of domain organization and interaction of all subunits (or domains), the N-terminal domain of scHda1p associates through the C-terminal coiled-coil domains (CCDs) of the scHda2p-scHda3p sub-complex, yielding a truncated scHda1pHDAC-scHda2pCCD2-scHda3pCCD3 complex with indistinguishable deacetylase activity compared to the full-length complex in vitro. We characterized the interaction of the HDAC complex with either single-stranded or double-stranded DNA and identified the N-terminal halves of scHda2p and scHda3p as binding modules. A high-resolution structure of the scHda3p DNA-binding domain by X-ray crystallography is presented. The crystal structure shows an unanticipated structural homology with the C-terminal helicase lobes of SWI2/SNF2 chromatin-remodeling domains of the Rad54 family enzymes. DNA binding is unspecific for nucleotide sequence and structure, similar to the Rad54 enzymes in vitro. Our structural and functional analyses of the budding yeast class II Hda1 HDAC complex provide insight into DNA recognition and deacetylation of histones in nucleosomes.
酵母II类Hda1组蛋白去乙酰化酶(HDAC)复合物是酿酒酵母中一种特异性作用于H2B和H3的HDAC,由三个先前已鉴定的亚基组成,即催化亚基scHda1p以及两个非催化结构亚基scHda2p和scHda3p。我们从细菌中共表达并共纯化了重组酵母II类HDAC复合物,其作为一种功能活性且对曲古抑菌素A敏感的异源四聚体复合物。通过对所有亚基(或结构域)的结构组织和相互作用进行广泛分析,scHda1p的N端结构域通过scHda2p - scHda3p亚复合物的C端卷曲螺旋结构域(CCDs)缔合,产生了一个截短的scHda1pHDAC - scHda2pCCD2 - scHda3pCCD3复合物,其在体外的去乙酰化酶活性与全长复合物难以区分。我们对HDAC复合物与单链或双链DNA的相互作用进行了表征,并确定scHda2p和scHda3p的N端一半为结合模块。通过X射线晶体学展示了scHda3p DNA结合结构域的高分辨率结构。晶体结构显示与Rad54家族酶的SWI2/SNF2染色质重塑结构域的C端解旋酶叶具有意想不到的结构同源性。DNA结合对核苷酸序列和结构不具有特异性,类似于体外的Rad54酶。我们对芽殖酵母II类Hda1 HDAC复合物的结构和功能分析为核小体中组蛋白的DNA识别和去乙酰化提供了深入见解。