Research Centre of Basic Medical Sciences, Medical College, Qinghai University, Xining, 810016, People's Republic of China.
Extremophiles. 2022 Mar 1;26(1):14. doi: 10.1007/s00792-022-01256-1.
Halophilic bacteria such as the genus Halomonas are promising candidates in diverse industrial, agricultural and biomedical applications. Here, we successfully isolated a halophilic Halomonas alkaliphila strain XH26 from Xiaochaidan Salt Lake, and studied its osmoadaptation strategies using transcriptome and ectoine analysis. Divergent mechanisms were involved in osmoadaptation at different salinities in H. alkaliphila XH26. At moderate salinity (6% NaCl), increased transcriptions of ABC transporters related to iron (III), phosphate, phosphonate, monosaccharide and oligosaccharide import were observed. At high salinity (15% NaCl), transcriptions of flagellum assembly and cell motility were significantly inhibited. The transcriptional levels of ABC transporter genes related to iron (III) and iron-hydroxamate import, glycine betaine and putrescine uptake, and cytochrome biogenesis and assembly were significantly up-regulated. Ectoine synthesis and accumulation was significantly increased under salt stress, and the increased transcriptional expressions of ectoine synthesis genes ectB and ectC may play a key role in high salinity induced osmoadaptation. At extreme high salinity (18% NaCl), 5-hydroxyectoine and ectoine worked together to maintain cell survival. Together these results give valuable insights into the osmoadaptation mechanisms of H. alkaliphila XH26, and provide useful information for further engineering this specific strain for increased ectoine synthesis and related applications.
嗜盐菌,如盐单胞菌属,是在各种工业、农业和生物医学应用中很有前途的候选者。在这里,我们成功地从小柴旦盐湖中分离到一株嗜盐的盐单胞菌属耐碱菌 XH26,并通过转录组和章鱼胺分析研究了其渗透压适应策略。在 H. alkaliphila XH26 中,不同盐度下的渗透压适应涉及不同的机制。在中等盐度(6%NaCl)下,观察到与铁(III)、磷酸盐、膦酸盐、单糖和寡糖进口相关的 ABC 转运体的转录增加。在高盐度(15%NaCl)下,鞭毛组装和细胞运动的转录明显受到抑制。与铁(III)和铁-羟肟酸盐进口、甘氨酸甜菜碱和腐胺摄取以及细胞色素生物发生和组装相关的 ABC 转运体基因的转录水平显著上调。在盐胁迫下,章鱼胺的合成和积累显著增加,ectB 和 ectC 等ectoine 合成基因的转录表达增加可能在高盐诱导的渗透压适应中发挥关键作用。在极端高盐度(18%NaCl)下,5-羟基章鱼胺和章鱼胺一起维持细胞存活。这些结果为 H. alkaliphila XH26 的渗透压适应机制提供了有价值的见解,并为进一步工程改造该特定菌株以增加章鱼胺合成和相关应用提供了有用信息。