Burkhardt Markus, Rapp Johanna, Menzel Claudia, Link Hannes, Forchhammer Karl
Interfaculty Institute of Microbiology and Infection Medicine, University of Tübingen, Auf der Morgenstelle 28, 72076 Tübingen, Germany.
CMFI, Bacterial Metabolomics, University of Tübingen, Auf der Morgenstelle 24, 72076 Tübingen, Germany.
Biology (Basel). 2023 Jan 19;12(2):159. doi: 10.3390/biology12020159.
Dormancy and resuscitation are key to bacterial survival under fluctuating environmental conditions. In the absence of combined nitrogen sources, the non-diazotrophic model cyanobacterium sp. PCC 6803 enters into a metabolically quiescent state during a process termed chlorosis. This state enables the cells to survive until nitrogen sources reappear, whereupon the cells resuscitate in a process that follows a highly orchestrated program. This coincides with a metabolic switch into a heterotrophic-like mode where glycogen catabolism provides the cells with reductant and carbon skeletons for the anabolic reactions that serve to re-establish a photosynthetically active cell. Here we show that the entire resuscitation process requires the presence of sodium, a ubiquitous cation that has a broad impact on bacterial physiology. The requirement for sodium in resuscitating cells persists even at elevated CO levels, a condition that, by contrast, relieves the requirement for sodium ions in vegetative cells. Using a multi-pronged approach, including the first metabolome analysis of cells resuscitating from chlorosis, we reveal the involvement of sodium at multiple levels. Not only does sodium play a role in the bioenergetics of chlorotic cells, as previously shown, but it is also involved in nitrogen compound assimilation, pH regulation, and synthesis of key metabolites.
休眠和复苏是细菌在波动环境条件下生存的关键。在缺乏化合态氮源的情况下,非固氮模式蓝藻菌株PCC 6803在一个称为褪绿的过程中进入代谢静止状态。这种状态使细胞能够存活到氮源重新出现,随后细胞按照一个高度有序的程序进行复苏。这与代谢转变为类似异养的模式同时发生,在这种模式下,糖原分解代谢为细胞提供还原剂和碳骨架,用于合成代谢反应,以重建具有光合活性的细胞。在这里,我们表明整个复苏过程需要钠的存在,钠是一种普遍存在的阳离子,对细菌生理学有广泛影响。即使在高浓度CO条件下,复苏细胞对钠的需求仍然存在,相比之下,这种条件会减轻营养细胞对钠离子的需求。通过多管齐下的方法,包括对从褪绿状态复苏的细胞进行首次代谢组分析,我们揭示了钠在多个层面的作用。正如之前所表明的,钠不仅在褪绿细胞的生物能量学中发挥作用,而且还参与氮化合物同化、pH调节和关键代谢物的合成。