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MECHANISM(S) CONTROLLING GROWTH/MEIOSIS SWITCH IN YEAST

MECHANISM(S) CONTROLLING GROWTH/MEIOSIS SWITCH IN YEAST
酵母中控制生长/减数分裂转换的机制
批准号:
6525459
负责人:
SAUL M HONIGBERG
金额:
$16.24万
依托单位国家:
美国
项目类别:
财政年份:
1998
资助国家:
美国
项目状态:
已结题
起止时间:
1998-08-01 至 2004-08-31

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中文摘要
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英文摘要
The switch between differentiation and growth is precisely regulated in all organisms. Loss of this control in humans can lead to cancer. Differentiation/growth switches are generally controlled by multiple extracellular signals, but analyzing the relationship between different controls is difficult in most systems. A simple prototype exists in diploid yeast, where three different types of control (cell cycle, glucose and acetate interact to regulate the switch between growth and meiosis. Yeast genetics provides a powerful tool for analyzing these different layers of control both separately and in combination. A central feature of growth/differentiation switches is that the two programs are mutually exclusive: cells must shut down one program to undergo the other. A recent finding the lab sheds light on this mechanism: the same proteins that trigger growth (cyclins) also repress initiation of meiosis. By measuring expression of specific meiotic regulators under conditions where cyclins are either absent or overexpressed, the mechanisms underlying repression of meiosis by cyclins will be defined (Specific Aim 1). The investigator has discovered the IME1 transcription is regulated like a 3-position switch; it is completely repressed under growth conditions, expressed to high levels under sporulation conditions, and expressed to moderate levels under conditions of carbon deprivation. The moderate level IME1 expression causes some cells to undergo recombination without chromosome segregation. This novel mechanism for transcriptional regulation, which involves interactions between several levels of control, will be dissected using a combination of yeast genetics and molecular biology (Specific Aim 2). Extracellular signals are generally considered to act at the beginning of a differentiation program, triggering a continuous progression of cellular changes. The investigator made the intriguing discovery that meiosis in yeast responds to extracellular signals at two distinct stages: prior to premeiotic DNA synthesis (early) and prior to chromosome segregation (late), and that the regulation at the two stages is different. To further examine this two-step control of differentiation, genes involved in nutritional control of late meiotic events are being identified, and their interactions with known meiotic regulators characterized (Specific Aim 3).
期刊论文(8)
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会议论文
Glucose inhibits meiotic DNA replication through SCFGrr1p-dependent destruction of Ime2p kinase.
葡萄糖通过 Ime2p 激酶的 SCFGrr1p 依赖性破坏来抑制减数分裂 DNA 复制。
DOI: 10.1128/mcb.25.1.440-450.2005
发表时间: 2005
期刊: Molecular and cellular biology
影响因子: 5.3
作者: [Purnapatre,Kedar, Gray,Misa, Piccirillo,Sarah, Honigberg,SaulM]
通讯作者: Honigberg,SaulM
DOI: 10.1186/1472-6750-4-7
发表时间: 2004-04-16
期刊: BMC biotechnology
影响因子: 3.5
作者: [Gray M, Kupiec M, Honigberg SM]
通讯作者: Honigberg SM
Meiotic differentiation during colony maturation in Saccharomyces cerevisiae.
酿酒酵母菌落成熟过程中的减数分裂分化。
DOI: 10.1007/s00294-002-0331-x
发表时间: 2002
期刊: Current genetics
影响因子: 2.5
作者: [Purnapatre,Kedar, Honigberg,SaulM]
通讯作者: Honigberg,SaulM
Admin. supplement for equipment to Mechanisms underlying the Rlm1-dependent G1 checkpoint (NIH R15 GM135807)
Mechanisms underlying cell-fate patterns in yeast communities
Mechanisms underlying cell-fate patterns in yeast communities
Mechanisms underlying pattern formation in S. cerevisiae colonies
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