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酵母SAGA复合物的功能组织:参与结构完整性、核小体乙酰化及TATA结合蛋白相互作用的不同组分

Functional organization of the yeast SAGA complex: distinct components involved in structural integrity, nucleosome acetylation, and TATA-binding protein interaction.

作者信息

Sterner D E, Grant P A, Roberts S M, Duggan L J, Belotserkovskaya R, Pacella L A, Winston F, Workman J L, Berger S L

机构信息

The Wistar Institute, Philadelphia, Pennsylvania 19104, USA.

出版信息

Mol Cell Biol. 1999 Jan;19(1):86-98. doi: 10.1128/MCB.19.1.86.

DOI:10.1128/MCB.19.1.86
PMID:9858534
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC83868/
Abstract

SAGA, a recently described protein complex in Saccharomyces cerevisiae, is important for transcription in vivo and possesses histone acetylation function. Here we report both biochemical and genetic analyses of members of three classes of transcription regulatory factors contained within the SAGA complex. We demonstrate a correlation between the phenotypic severity of SAGA mutants and SAGA structural integrity. Specifically, null mutations in the Gcn5/Ada2/Ada3 or Spt3/Spt8 classes cause moderate phenotypes and subtle structural alterations, while mutations in a third subgroup, Spt7/Spt20, as well as Ada1, disrupt the complex and cause severe phenotypes. Interestingly, double mutants (gcn5Delta spt3Delta and gcn5Delta spt8Delta) causing loss of a member of each of the moderate classes have severe phenotypes, similar to spt7Delta, spt20Delta, or ada1Delta mutants. In addition, we have investigated biochemical functions suggested by the moderate phenotypic classes and find that first, normal nucleosomal acetylation by SAGA requires a specific domain of Gcn5, termed the bromodomain. Deletion of this domain also causes specific transcriptional defects at the HIS3 promoter in vivo. Second, SAGA interacts with TBP, the TATA-binding protein, and this interaction requires Spt8 in vitro. Overall, our data demonstrate that SAGA harbors multiple, distinct transcription-related functions, including direct TBP interaction and nucleosomal histone acetylation. Loss of either of these causes slight impairment in vivo, but loss of both is highly detrimental to growth and transcription.

摘要

SAGA是最近在酿酒酵母中发现的一种蛋白质复合物,对体内转录很重要,并具有组蛋白乙酰化功能。在此,我们报告了对SAGA复合物中所含三类转录调节因子成员的生化和遗传学分析。我们证明了SAGA突变体的表型严重程度与SAGA结构完整性之间的相关性。具体而言,Gcn5/Ada2/Ada3或Spt3/Spt8类别的无效突变会导致中等表型和细微的结构改变,而第三个亚组Spt7/Spt20以及Ada1中的突变会破坏复合物并导致严重表型。有趣的是,导致每类中等表型成员缺失的双突变体(gcn5Δ spt3Δ和gcn5Δ spt8Δ)具有严重表型,类似于spt7Δ、spt20Δ或ada1Δ突变体。此外,我们研究了中等表型类别所暗示的生化功能,发现首先,SAGA进行正常的核小体乙酰化需要Gcn5的一个特定结构域,称为溴结构域。该结构域的缺失也会在体内导致HIS3启动子处的特定转录缺陷。其次,SAGA与TATA结合蛋白TBP相互作用,并且这种相互作用在体外需要Spt8。总体而言,我们的数据表明SAGA具有多种不同的转录相关功能,包括直接与TBP相互作用和核小体组蛋白乙酰化。这些功能中的任何一种丧失在体内都会导致轻微损害,但两者都丧失对生长和转录非常有害。

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本文引用的文献

1
Transcriptional activators direct histone acetyltransferase complexes to nucleosomes.转录激活因子将组蛋白乙酰转移酶复合物导向核小体。
Nature. 1998 Jul 30;394(6692):498-502. doi: 10.1038/28886.
2
The SAGA unfolds: convergence of transcription regulators in chromatin-modifying complexes.SAGA的故事展开:转录调节因子在染色质修饰复合物中的汇聚
Trends Cell Biol. 1998 May;8(5):193-7. doi: 10.1016/s0962-8924(98)01263-x.
3
A subset of TAF(II)s are integral components of the SAGA complex required for nucleosome acetylation and transcriptional stimulation.一部分TAF(II)是SAGA复合物的组成成分,对于核小体乙酰化和转录激活是必需的。
Cell. 1998 Jul 10;94(1):45-53. doi: 10.1016/s0092-8674(00)81220-9.
4
Absence of Gcn5 HAT activity defines a novel state in the opening of chromatin at the PHO5 promoter in yeast.Gcn5组蛋白乙酰转移酶活性的缺失定义了酵母中PHO5启动子处染色质开放的一种新状态。
Mol Cell. 1998 Mar;1(4):495-505. doi: 10.1016/s1097-2765(00)80050-7.
5
Association of transcription factor IIA with TATA binding protein is required for transcriptional activation of a subset of promoters and cell cycle progression in Saccharomyces cerevisiae.转录因子IIA与TATA结合蛋白的结合对于酿酒酵母中一部分启动子的转录激活及细胞周期进程是必需的。
Mol Cell Biol. 1998 May;18(5):2559-70. doi: 10.1128/MCB.18.5.2559.
6
Critical residues for histone acetylation by Gcn5, functioning in Ada and SAGA complexes, are also required for transcriptional function in vivo.在Ada和SAGA复合物中发挥作用的Gcn5对组蛋白乙酰化至关重要的残基,在体内转录功能中也是必需的。
Genes Dev. 1998 Mar 1;12(5):640-53. doi: 10.1101/gad.12.5.640.
7
Histone acetyltransferase activity of yeast Gcn5p is required for the activation of target genes in vivo.酵母Gcn5p的组蛋白乙酰转移酶活性在体内对靶基因的激活是必需的。
Genes Dev. 1998 Mar 1;12(5):627-39. doi: 10.1101/gad.12.5.627.
8
Repression of GCN5 histone acetyltransferase activity via bromodomain-mediated binding and phosphorylation by the Ku-DNA-dependent protein kinase complex.通过Ku-DNA依赖性蛋白激酶复合物的溴结构域介导的结合和磷酸化来抑制GCN5组蛋白乙酰转移酶活性。
Mol Cell Biol. 1998 Mar;18(3):1349-58. doi: 10.1128/MCB.18.3.1349.
9
Role for ADA/GCN5 products in antagonizing chromatin-mediated transcriptional repression.ADA/GCN5 产物在拮抗染色质介导的转录抑制中的作用。
Mol Cell Biol. 1997 Nov;17(11):6212-22. doi: 10.1128/MCB.17.11.6212.
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Essential functional interactions of SAGA, a Saccharomyces cerevisiae complex of Spt, Ada, and Gcn5 proteins, with the Snf/Swi and Srb/mediator complexes.酿酒酵母中由Spt、Ada和Gcn5蛋白组成的SAGA复合物与Snf/Swi和Srb/中介复合物之间的重要功能相互作用。
Genetics. 1997 Oct;147(2):451-65. doi: 10.1093/genetics/147.2.451.