Centro Andaluz de Biología del Desarrollo/CSIC/Universidad Pablo de Olavide/Junta de Andalucía. Departamento de Biología Molecular e Ingeniería Bioquímica, Seville, Spain.
Sci Rep. 2019 Apr 18;9(1):6297. doi: 10.1038/s41598-019-42768-9.
Sphingomonads comprises a group of interesting aerobic bacteria because of their ubiquity and metabolic capability of degrading many recalcitrant contaminants. The tetralin-degrader Sphingopyxis granuli strain TFA has been recently reported as able to anaerobically grow using nitrate as the alternative electron acceptor and so far is the only bacterium with this ability within the sphingomonads group. To understand how strain TFA thrives under anoxic conditions, a differential transcriptomic analysis while growing under aerobic or anoxic conditions was performed. This analysis has been validated and complemented with transcription kinetics of representative genes of different functional categories. Results show an extensive change of the expression pattern of this strain in the different conditions. Consistently, the most induced operon in anoxia codes for proteases, presumably required for extensive changes in the protein profile. Besides genes that respond to lack of oxygen in other bacteria, there are a number of genes that respond to stress or to damage of macromolecules, including genes of the SOS DNA-damage response, which suggest that anoxic conditions represent a hostile environment for this bacterium. Interestingly, growth under anoxic conditions also resulted in repression of all flagellar and type IV pilin genes, which suggested that this strain shaves its appendages off while growing in anaerobiosis.
鞘氨醇单胞菌属是一组有趣的需氧细菌,因为它们无处不在,并且具有代谢能力,可以降解许多难降解的污染物。最近有报道称,四氢萘降解菌鞘氨醇单胞菌 S.granuli 菌株 TFA 能够在无氧条件下以硝酸盐作为替代电子受体进行厌氧生长,到目前为止,它是鞘氨醇单胞菌属中唯一具有这种能力的细菌。为了了解菌株 TFA 在缺氧条件下是如何茁壮成长的,我们进行了一项差异转录组分析,即在有氧和缺氧条件下生长时的转录组分析。该分析已得到验证,并辅以不同功能类别代表性基因的转录动力学分析。结果表明,该菌株在不同条件下的表达模式发生了广泛变化。一致地,在缺氧条件下最诱导的操纵子编码蛋白酶,可能需要对蛋白质谱进行广泛改变。除了在其他细菌中响应缺氧的基因外,还有许多响应应激或大分子损伤的基因,包括 SOS DNA 损伤反应的基因,这表明缺氧条件对该细菌来说是一个恶劣的环境。有趣的是,在缺氧条件下生长也会抑制所有鞭毛和 IV 型菌毛基因的表达,这表明该菌株在无氧生长时会脱落其附属物。