DEOXYRIBONUCLEOTIDE METABOLISM IN ESCHERICHIA COLI
DEOXYRIBONUCLEOTIDE METABOLISM IN ESCHERICHIA COLI
批准号:
3298672
负责人:
JAMES R FUCHS
金额:
$13.5万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1988
资助国家:
美国
项目状态:
已结题
起止时间:
1988-07-01 至 1993-06-30
关键词:
DNA replication Escherichia coli alleles antineoplastics cell growth regulation cell population study deoxyribonuclease I deoxyribonucleotides enzyme mechanism eukaryote gel electrophoresis genetic regulation hydrogenase molecular cloning neoplasm /cancer pharmacology nucleotide metabolism plasmids regulatory gene
中文摘要
核糖核苷酸还原酶催化
核糖核苷酸到脱氧核糖核苷酸。 分离的酶
已经被广泛表征,
作为其他核糖核苷酸还原酶的模型,
源 高等真核生物中的酶似乎非常
与E.大肠杆菌酶。 一种酶催化
所有核糖核苷酸二磷酸和底物的还原
特异性和整体活性由变构控制
调控 该酶合成的调节是
不寻常. 核糖核苷酸编码基因的表达
还原酶(nrd)似乎与DNA复制的控制平行。
因此,了解控制的分子机制,
NRD表达将是理解
DNA复制的调节。 这反过来将是一个重大的
了解细胞生长控制的一步。
由于这种酶的水平与细胞生长成正比,
真核生物和E.大肠杆菌,这种酶似乎是一种
抗肿瘤化疗药物理想靶点
细胞 由于这种酶是由疱疹病毒和爱泼斯坦-酒吧编码
病毒,它可能是化疗药物的一个可能的目标
对抗这些病毒。
为了了解nrd调节的分子细节,
迄今为止的实验已经利用胸腺嘧啶剥夺来改变NRD
表情 本提案的一个目标是调查NRD
在指数生长细胞中的表达作为细胞的函数
周期 初步实验表明,nrd表达
在胸腺嘧啶剥夺期间观察到的调节结果
通常发生在细胞周期中。 为了进一步研究
NRD调控的细节,含有NRD的质粒
与lacZ融合的调节区将用于分离和
表征反式作用突变体。 这些变种人将被用来
克隆并表征“野生型”等位基因。 A DNA蛋白
结合聚丙烯酰胺凝胶分析将用于鉴定和
纯化调节蛋白。 DNA酶足迹法将用于
显示这些蛋白质结合到被鉴定为操纵基因的位点上,
网站. 在体外产生的点突变体的调控区5'
对NRD的结构基因进行表征和测序
为了进一步确定涉及阳性和阴性的位点,
调控
英文摘要
Ribonucleotide reductases catalyze the reduction of
ribonucleotides to deoxyribonucleotides. The enzyme isolated
from Escherichia coli has been extensively characterized and
serves as the model for ribonucleotide reductases from other
sources. The enzyme in higher eucaryotes appears to be very
similar to the E. coli enzyme. A single enzyme catalyzes the
reduction of all ribonucleotide diphosphates and the substrate
specificity and overall activity is controlled by allosteric
regulation. The regulation of the synthesis of the enzyme is
unusual. The expression of the genes encoding ribonucleotide
reductase (nrd) appear to parallel the control of DNA replication.
Thus, understanding the molecular mechanism of the control of
nrd expression will be an important step in the understanding of
the regulation of DNA replication. This in turn will be a major
step in understanding the control of cell growth.
Since the level of this enzyme is proportional to cell growth in
both eucaryotes and in E. coli, this enzyme would appear to be an
ideal target for chemotherapeutic agents active against tumor
cells. Since this enzyme is encoded by Herpes and Epstein-Bar
virus, it could be a possible target for chemotherapeutic agents
against these viruses.
To understand the molecular details of nrd regulation,
experiments to date have utilized thymine deprivation to alter nrd
expression. One objective of this proposal is to investigate nrd
expression in exponentially growing cells as a function of the cell
cycle. Preliminary experiments suggest that the nrd expression
observed during thymine deprivation results from regulation
normally occurring during the cell cycle. To further investigate
the details of nrd regulation, plasmids containing the nrd
regulatory region fused to lacZ will be utilized to isolate and
characterize transacting mutants. These mutants will be used to
clone and characterize the "wild type" allele. A DNA-protein
binding polyacrylamide gel assay will be used to identify and
purify the regulatory proteins. DNase footprinting will be used to
show that these proteins bind to the sites identified as operator
sites. In vitro generated point mutants in the regulatory region 5'
to the structural genes of nrd will be characterized and sequenced
to further define sites involved in both positive and negative
regulation.
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