Aon J C, Rapisarda V A, Cortassa S
Departamento de Bioquímica de la Nutrición, Facultad de Bioquímica, Química y Farmacia, Universidad Nacional de Tucumán, Argentina.
Exp Cell Res. 1996 Jan 10;222(1):157-62. doi: 10.1006/excr.1996.0020.
In this work we investigated to what extent cellular metabolism and energetics regulate sporulation in Saccharomyces cerevisiae and which metabolic pathways are involved in such regulation. Sporulation, meiosis, and associated metabolic fluxes in S. cerevisiae strain CH1211 were studied in several experimental protocols involving changes of carbon source (acetate, lactate, or pyruvate) or cell density in sporulation medium, or changing the phase of batch growth at which cells were harvested before transfer to sporulation medium. In acetate-based sporulation medium, the rate at which cells utilized glyoxylate and gluconeogenic pathways correlated positively with the percentage of asci per cell at 72 h. In contrast, in lactate sporulation medium the frequency of sporulation correlated negatively with both the rate of lactate consumption and the fluxes through gluconeogenesis and the pyruvate-carboxylase catalyzed step. In the presence of lactate, the respiratory capacity did correlate positively with the percentage of asci per cell. The experimental data suggest that acetate limits fluxes to anabolic precursors during sporulation. In contrast, sporulation on lactate appears to be influenced by catabolic processes or, even more precisely, by the respiratory capacity of yeast cells. The results obtained are discussed in terms of the hypothesis that an imbalance between anabolic and catabolic fluxes may be required for an efficient sporulation.
在本研究中,我们探究了细胞代谢和能量学在多大程度上调控酿酒酵母的孢子形成,以及哪些代谢途径参与了这种调控。在几个实验方案中,研究了酿酒酵母菌株CH1211中的孢子形成、减数分裂及相关代谢通量,这些方案涉及改变碳源(乙酸盐、乳酸盐或丙酮酸盐)、孢子形成培养基中的细胞密度,或改变在转移至孢子形成培养基之前收获细胞时的分批培养阶段。在以乙酸盐为基础的孢子形成培养基中,细胞利用乙醛酸和糖异生途径的速率与72小时时每个细胞的子囊百分比呈正相关。相反,在乳酸孢子形成培养基中,孢子形成频率与乳酸消耗速率以及通过糖异生和丙酮酸羧化酶催化步骤的通量均呈负相关。在有乳酸存在的情况下,呼吸能力确实与每个细胞的子囊百分比呈正相关。实验数据表明,乙酸盐在孢子形成过程中限制了通向合成代谢前体的通量。相比之下,在乳酸上的孢子形成似乎受分解代谢过程影响,或者更确切地说,受酵母细胞的呼吸能力影响。根据合成代谢通量与分解代谢通量之间的失衡可能是高效孢子形成所必需的这一假设,对所得结果进行了讨论。