Li Xiang, de Assis Souza Robson, Heinemann Matthias
Molecular Systems Biology, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, 9747 AG Groningen, the Netherlands.
Molecular Systems Biology, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, 9747 AG Groningen, the Netherlands; Laboratory of Microbial Physiology, Department of Microbiology, Federal University of Viçosa, 36570-900 Viçosa, MG, Brazil.
Curr Biol. 2025 Feb 24;35(4):788-798.e4. doi: 10.1016/j.cub.2024.12.039. Epub 2025 Jan 28.
Yeasts are a diverse group of unicellular fungi that have developed a wide array of phenotypes and traits over 400 million years of evolution. However, we still lack an understanding of the biological principles governing the range of cell morphologies, metabolic modes, and reproductive strategies yeasts display. In this study, we explored the relationship between cell morphology and metabolism in sixteen yeast strains across eleven species. We performed a quantitative analysis of the physiology and morphology of these strains and discovered a strong correlation between the glucose uptake rate (GUR) and the surface-area-to-volume ratio. C-glucose uptake experiments demonstrated that the GUR for a given strain is governed either by glucose transport capacity or glycolytic rate, indicating that it is rather the rate of glucose metabolism in general that correlates with cell morphology. Furthermore, perturbations in glucose metabolism influenced cell sizes, whereas manipulating cell size did not affect GUR, suggesting that glucose metabolism determines cell size rather than the reverse. Across the strains tested, we also found that the rate of glucose metabolism influenced ethanol production rate, biomass yield, and carbon dioxide transfer rate. Overall, our findings demonstrate that the rate of glucose metabolism is a key factor shaping yeast cell morphology and physiology, offering new insights into the fundamental principles of yeast biology.
酵母是多种多样的单细胞真菌,在超过4亿年的进化过程中形成了广泛的表型和特性。然而,我们仍然缺乏对酵母所展现出的细胞形态、代谢模式和繁殖策略范围背后生物学原理的理解。在这项研究中,我们探究了11个物种的16种酵母菌株的细胞形态与代谢之间的关系。我们对这些菌株的生理学和形态进行了定量分析,发现葡萄糖摄取率(GUR)与表面积与体积比之间存在很强的相关性。¹⁴C - 葡萄糖摄取实验表明,给定菌株的GUR受葡萄糖转运能力或糖酵解速率的控制,这表明一般而言,是葡萄糖代谢速率与细胞形态相关。此外,葡萄糖代谢的扰动会影响细胞大小,而操纵细胞大小并不会影响GUR¹⁴,这表明是葡萄糖代谢决定细胞大小,而非相反。在测试的所有菌株中,我们还发现葡萄糖代谢速率会影响乙醇产生速率、生物量产量和二氧化碳转移速率。总体而言,我们的研究结果表明,葡萄糖代谢速率是塑造酵母细胞形态和生理学的关键因素,为酵母生物学的基本原理提供了新的见解。