Mechanistic studies of life's lower metabolic limits have been limited due to a paucity of tractable experimental systems. Here, we show that redox-cycling of phenazine-1-carboxamide (PCN) by Pseudomonas aeruginosa supports cellular maintenance in the absence of growth with a low mass-specific metabolic rate of 8.7 Ã 10(-4) W (g C)(-1) at 25°C. Leveraging a high-throughput electrochemical culturing device, we find that non-growing cells cycling PCN tolerate conventional antibiotics but are susceptible to those that target membrane components. Under these conditions, cells conserve energy via a noncanonical, facilitated fermentation that is dependent on acetate kinase and NADH dehydrogenases. Across PCN concentrations that limit cell survival, the cell-specific metabolic rate is constant, indicating the cells are operating near their bioenergetic limit. This quantitative platform opens the door to further mechanistic investigations of maintenance, a physiological state that underpins microbial survival in nature and disease.
Mechanistic study of a low-power bacterial maintenance state using high-throughput electrochemistry.
利用高通量电化学方法对低功率细菌维持状态进行机理研究
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作者:Ciemniecki John A, Ho Chia-Lun, Horak Richard D, Okamoto Akihiro, Newman Dianne K
| 期刊: | Cell | 影响因子: | 42.500 |
| 时间: | 2024 | 起止号: | 2024 Nov 27; 187(24):6882-6895 |
| doi: | 10.1016/j.cell.2024.09.042 | 研究方向: | 微生物学 |
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