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Ran1+控制裂殖酵母中从有丝分裂到减数分裂的转变。

ran1+ controls the transition from mitotic division to meiosis in fission yeast.

作者信息

Beach D, Rodgers L, Gould J

机构信息

Cold Spring Harbor Laboratory, NY 11742.

出版信息

Curr Genet. 1985;10(4):297-311. doi: 10.1007/BF00365626.

Abstract

We have investigated the genetic and physiological control of meiosis in fission yeast. Nutritionally depleted h+/h- diploid cells become irreversibly commited to meiosis immediately prior to the initiation of premeiotic S phase. Premeiotic DNA synthesis requires matP+, matM+, mei2+ and mei3+ but not the mitotic cell cycle control gene, cdc2+. ran1+ is an essential gene, loss of which provokes sexual conjugation, premeiotic DNA synthesis, pseudo-meiosis and the sporulation of haploid cells. Our experiments suggest that sexual differentiation is achieved physiologically by the inhibition of ran1+ activity in a two-step process. In the first step, partial inhibition of ran1+ in starved haploid cells, leads to cell cycle arrest in G1 followed by sexual conjugation. In the second step, a pathway requiring the matP+, matM+ and mei3+ genes of the newly-formed zygote, further inhibits ran1+ and thereby commits the cell to meiosis. mei2+ is required for meiotic commitment after full inhibition of ran1+. ran1+ is normally essential for vegetative cell reproduction but is inessential in cells which have abnormally high levels of cAMP-dependent protein kinase. We propose that the ran1+ gene encodes a highly controlled protein kinase which shares key substrates with cAMP-dependent protein kinase.

摘要

我们研究了裂殖酵母减数分裂的遗传和生理控制。营养耗尽的h⁺/h⁻二倍体细胞在减数分裂前S期开始前立即不可逆转地进入减数分裂。减数分裂前的DNA合成需要matP⁺、matM⁺、mei2⁺和mei3⁺,但不需要有丝分裂细胞周期控制基因cdc2⁺。ran1⁺是一个必需基因,其缺失会引发有性接合、减数分裂前DNA合成、假减数分裂和单倍体细胞的孢子形成。我们的实验表明,有性分化是通过两步过程中ran1⁺活性的抑制在生理上实现的。第一步,饥饿单倍体细胞中ran1⁺的部分抑制导致细胞周期在G1期停滞,随后进行有性接合。第二步,一条需要新形成的合子的matP⁺、matM⁺和mei3⁺基因的途径进一步抑制ran1⁺,从而使细胞进入减数分裂。在ran1⁺完全抑制后,减数分裂的进行需要mei2⁺。ran1⁺通常对营养细胞繁殖至关重要,但在具有异常高水平的cAMP依赖性蛋白激酶的细胞中则非必需。我们提出ran1⁺基因编码一种受到高度控制的蛋白激酶,它与cAMP依赖性蛋白激酶共享关键底物。

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