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出芽酵母沉默复合物及蛋白质-蛋白质相互作用对Sir2活性的调控

Budding yeast silencing complexes and regulation of Sir2 activity by protein-protein interactions.

作者信息

Tanny Jason C, Kirkpatrick Donald S, Gerber Scott A, Gygi Steven P, Moazed Danesh

机构信息

Department of Cell Biology, Harvard Medical School, Boston, MA 02115, USA.

出版信息

Mol Cell Biol. 2004 Aug;24(16):6931-46. doi: 10.1128/MCB.24.16.6931-6946.2004.

Abstract

Gene silencing in the budding yeast Saccharomyces cerevisiae requires the enzymatic activity of the Sir2 protein, a highly conserved NAD-dependent deacetylase. In order to study the activity of native Sir2, we purified and characterized two budding yeast Sir2 complexes: the Sir2/Sir4 complex, which mediates silencing at mating-type loci and at telomeres, and the RENT complex, which mediates silencing at the ribosomal DNA repeats. Analyses of the protein compositions of these complexes confirmed previously described interactions. We show that the assembly of Sir2 into native silencing complexes does not alter its selectivity for acetylated substrates, nor does it allow the deacetylation of nucleosomal histones. The inability of Sir2 complexes to deacetylate nucleosomes suggests that additional factors influence Sir2 activity in vivo. In contrast, Sir2 complexes show significant enhancement in their affinities for acetylated substrates and their sensitivities to the physiological inhibitor nicotinamide relative to recombinant Sir2. Reconstitution experiments showed that, for the Sir2/Sir4 complex, these differences stem from the physical interaction of Sir2 with Sir4. Finally, we provide evidence that the different nicotinamide sensitivities of Sir2/Sir4 and RENT in vitro could contribute to locus-specific differences in how Sir2 activity is regulated in vivo.

摘要

在出芽酵母酿酒酵母中,基因沉默需要Sir2蛋白的酶活性,Sir2是一种高度保守的依赖NAD的脱乙酰酶。为了研究天然Sir2的活性,我们纯化并鉴定了两种出芽酵母Sir2复合物:介导交配型基因座和端粒沉默的Sir2/Sir4复合物,以及介导核糖体DNA重复序列沉默的RENT复合物。对这些复合物蛋白质组成的分析证实了先前描述的相互作用。我们发现,Sir2组装成天然沉默复合物不会改变其对乙酰化底物的选择性,也不会使核小体组蛋白发生脱乙酰化。Sir2复合物无法使核小体脱乙酰化,这表明体内还有其他因素影响Sir2的活性。相比之下,与重组Sir2相比,Sir2复合物对乙酰化底物的亲和力及其对生理抑制剂烟酰胺的敏感性显著增强。重组实验表明,对于Sir2/Sir4复合物,这些差异源于Sir2与Sir4的物理相互作用。最后,我们提供的证据表明,Sir2/Sir4和RENT在体外对烟酰胺的不同敏感性可能导致体内Sir2活性调控在基因座特异性上的差异。

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