Developmental Coordination of Gamete Differentiation with Programmed Cell Death in Sporulating Yeast.

Eukaryotic Cell Pub Date : 2015-09-01 Epub Date: 2015-06-19 DOI:10.1128/EC.00068-15
Michael D Eastwood, Marc D Meneghini
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引用次数: 21

Abstract

The gametogenesis program of the budding yeast Saccharomyces cerevisiae, also known as sporulation, employs unusual internal meiotic divisions, after which all four meiotic products differentiate within the parental cell. We showed previously that sporulation is typically accompanied by the destruction of discarded immature meiotic products through their exposure to proteases released from the mother cell vacuole, which undergoes an apparent programmed rupture. Here we demonstrate that vacuolar rupture contributes to de facto programmed cell death (PCD) of the meiotic mother cell itself. Meiotic mother cell PCD is accompanied by an accumulation of depolarized mitochondria, organelle swelling, altered plasma membrane characteristics, and cytoplasmic clearance. To ensure that the gametes survive the destructive consequences of developing within a cell that is executing PCD, we hypothesized that PCD is restrained from occurring until spores have attained a threshold degree of differentiation. Consistent with this hypothesis, gene deletions that perturb all but the most terminal postmeiotic spore developmental stages are associated with altered PCD. In these mutants, meiotic mother cells exhibit a delay in vacuolar rupture and then appear to undergo an alternative form of PCD associated with catastrophic consequences for the underdeveloped spores. Our findings reveal yeast sporulation as a context of bona fide PCD that is developmentally coordinated with gamete differentiation.

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孢子酵母配子分化与细胞程序性死亡的发育协调。
出芽酵母酿酒酵母的配子发生程序,也被称为孢子形成,采用不寻常的内部减数分裂,之后所有四种减数分裂产物在亲本细胞内分化。我们之前的研究表明,孢子形成通常伴随着被丢弃的未成熟减数分裂产物的破坏,这些产物暴露于母细胞液泡释放的蛋白酶中,这经历了明显的程序性破裂。在这里,我们证明液泡破裂有助于减数分裂母细胞本身事实上的程序性细胞死亡(PCD)。减数分裂母细胞PCD伴随着去极化线粒体的积累、细胞器肿胀、质膜特性改变和细胞质清除。为了确保配子在执行PCD的细胞内发育的破坏性后果中存活下来,我们假设PCD在孢子达到阈值分化程度之前不会发生。与这一假设相一致的是,干扰除最末端减数分裂后孢子发育阶段外的所有阶段的基因缺失与PCD的改变有关。在这些突变体中,减数分裂母细胞表现出液泡破裂的延迟,然后似乎经历另一种形式的PCD,这与不发达孢子的灾难性后果有关。我们的研究结果揭示了酵母孢子形成是与配子分化发育协调的真正PCD的一个背景。
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Eukaryotic Cell
Eukaryotic Cell 生物-微生物学
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审稿时长
1 months
期刊介绍: Eukaryotic Cell (EC) focuses on eukaryotic microbiology and presents reports of basic research on simple eukaryotic microorganisms, such as yeasts, fungi, algae, protozoa, and social amoebae. The journal also covers viruses of these organisms and their organelles and their interactions with other living systems, where the focus is on the eukaryotic cell. Topics include: - Basic biology - Molecular and cellular biology - Mechanisms, and control, of developmental pathways - Structure and form inherent in basic biological processes - Cellular architecture - Metabolic physiology - Comparative genomics, biochemistry, and evolution - Population dynamics - Ecology
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