TAFS AND GENERAL TRANSCRIPTION FACTORS IN YEAST
TAFS AND GENERAL TRANSCRIPTION FACTORS IN YEAST
批准号:
2187476
负责人:
RICHARD YOUNG
金额:
$22.66万
依托单位国家:
美国
项目类别:
财政年份:
1993
资助国家:
美国
项目状态:
已结题
起止时间:
1993-08-01 至 1997-07-31
关键词:
DNA binding protein DNA directed RNA polymerase Saccharomyces cerevisiae fungal genetics gene complementation gene expression genetic promoter element immunoprecipitation laboratory rabbit molecular cloning mutant nucleic acid probes nucleic acid sequence protein sequence recombinant DNA suppressor mutations transcription factor
中文摘要
转录起始装置包括一组通用因子,
与启动子DNA和RNA聚合酶II相关,
入会仪式通用转录因子TFIID是第一个
在起始复合物的装配过程中与启动子DNA结合。的
一般转录因子TFIID的天然形式由TATA
结合蛋白(TBP)和多种TBP相关因子(TAFs)在高血压中的作用
真核生物,我们最近发现,这也是这种情况,
酵母这项建议旨在鉴定和克隆基因的
完整的酿酒酵母TBP相关因子,以及
利用这些基因进行分子遗传学和生物化学实验
旨在阐明酵母TFIID的结构和TAFs的作用,
在转录起始中。
为实现这些目标,本提案的三个具体目标是:
i)分离编码S.酿酒厂使用
遗传学和生物化学方法; 2)研究
突变对个体TAF体内功能的影响;以及3)研究
TAF和TBP/TAF复合物的体外功能。分离基因
编码TAFs,我们将继续利用遗传选择,
已经导致了四个TAF基因的分离;四个基因外
迄今为止研究的RNA聚合酶II CTD截短突变体的抑制子
编码TAF。作为分离TAF基因的生物化学方法,我们将
鉴定高分子量复合物的蛋白质组分
含有TBP的蛋白质,对这些蛋白质进行微序列分析,
利用这些信息来设计用于基因分离的寡核苷酸。到
研究突变对体内个体TAF功能的影响,
我们将在TAF基因中构建无效突变和条件突变,
分析它们对体内转录的影响。探讨
TAF在TFIID复合物、野生型和突变型TFIID中的功能
将在各种转录测定中检查制备物
旨在评估TAF在模板组装和承诺中的作用
以及基础转录和激活转录。
这项研究的健康相关性来自于它对以下方面的贡献:
对控制基因的基本分子机制的理解
表情
英文摘要
The transcription initiation apparatus includes a set of general factors
that associate with promoter DNA and with RNA polymerase II during
initiation. The general transcription factor TFIID is the first to
associate with promoter DNA during assembly of the initiation complex. The
native form of the general transcription factor TFIID consists of the TATA
binding protein (TBP) and multiple TBP-associated factors (TAFs) in higher
eukaryotes, and we have recently found that this is also the case for
yeast. This proposal is designed to identify and clone the genes for the
complete set of Saccharomyces cerevisiae TBP-associated factors, and to
use these genes to pursue molecular genetic and biochemical experiments
designed to elucidate the structure of yeast TFIID and the roles of TAFs
in transcription initiation.
To accomplish these goals, the three specific aims of this proposal are:
i) to isolate genes encoding TBP-associated factors in S. cerevisiae using
genetic and biochemical approaches; 2) to investigate the effects of
mutations on individual TAF functions in vivo; and 3) to study the
function of TAFs and the TBP/TAF complex in vitro. To isolate genes
encoding TAFs, we will continue to exploit a genetic selection that has
already led to the isolation of four TAF genes; the four extragenic
suppressors of RNA polymerase II CTD truncation mutants studied to date
encode TAFs. As a biochemical approach to isolating TAF genes, we will
identify the protein components of a high molecular weight complex
containing TBP, subject these proteins to microsequence analysis, and use
this information to design oligonucleotides for gene isolation. To
investigate the effects of mutations on individual TAF functions in vivo,
we will construct null and conditional mutations in the TAF genes and
analyze their effects on transcription in vivo. To investigate the
functions of the TAFs in the TFIID complex, wild-type and mutant TFIID
preparations will be examined in a variety of transcription assays
designed to assess the role of TAFs in template assembly and commitment
and in basal and activated transcription.
The health relatedness of this research derives from its contribution to
the understanding of the basic molecular mechanisms that control gene
expression.
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