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肉碱在嗜盐色杆菌DSM 3043及其突变体适应限定培养基中的渗透和温度胁迫中的作用。

Role of carnitine in adaptation of Chromohalobacter salexigens DSM 3043 and its mutants to osmotic and temperature stress in defined medium.

作者信息

Meng Xiang-Lin, Gao Xia, Si Yuan-Ming, Xu Li-Li, Guo Li-Zhong, Lu Wei-Dong

机构信息

Shandong Provincial Key Laboratory of Applied Mycology, College of Life Sciences, Qingdao Agricultural University, Qingdao, 266109, China.

Shandong Agricultural Technology Extension Station, Jinan, 250100, China.

出版信息

Extremophiles. 2022 Aug 14;26(3):28. doi: 10.1007/s00792-022-01276-x.

Abstract

L-Carnitine is widespread in nature, but little information is available on its metabolism and physiological functions in moderate halophiles. In this study, we found that Chromohalobacter salexigens DSM 3043 could utilize carnitine not only as a nutrient, but also as an osmolyte. When grown at 37 °C under salt-stress conditions, the strain utilized carnitine as an osmoprotectant by enzymatically converting it into GB. When grown at low and high temperature, both carnitine and its metabolic intermediate GB were simultaneously accumulated intracellularly, serving as cryoprotectants and thermoprotectants. The genes (csal_3172, csal_3173, and csal_3174) which were predicted to participate in L-carnitine degradation to GB were deleted to construct the corresponding mutants. The effects of salinity and temperature on the growth rates and cytoplasmic solute pools of the C. salexigens wild-type and mutant strains were investigated. C-NMR analysis revealed that GB was still detected in the Δcsal_3172Δcsal_3173Δcsal_3174 mutant grown in a defined medium with added DL-carnitine, but not with L-carnitine, indicating that an unidentified D-carnitine degradation pathway exists in C. salexigens. Taken together, the data presented in this study expand our knowledge on carnitine metabolism and its physiological functions in C. salexigens exposed to single or multiple environmental abiotic stress.

摘要

左旋肉碱在自然界广泛存在,但关于其在中度嗜盐菌中的代谢和生理功能的信息却很少。在本研究中,我们发现盐生嗜盐色杆菌DSM 3043不仅可以将肉碱用作营养物质,还可以用作渗透剂。当该菌株在37°C的盐胁迫条件下生长时,它通过酶促将肉碱转化为甘氨酸甜菜碱(GB),从而将其用作渗透保护剂。当在低温和高温下生长时,肉碱及其代谢中间体GB会同时在细胞内积累,充当冷冻保护剂和热保护剂。我们删除了预测参与左旋肉碱降解为GB的基因(csal_3172、csal_3173和csal_3174),以构建相应的突变体。研究了盐度和温度对盐生嗜盐色杆菌野生型和突变体菌株生长速率和细胞质溶质库的影响。碳核磁共振(C-NMR)分析表明,在添加了DL-肉碱而非L-肉碱的限定培养基中生长的Δcsal_3172Δcsal_3173Δcsal_3174突变体中仍检测到GB,这表明盐生嗜盐色杆菌中存在一条未知的D-肉碱降解途径。综上所述,本研究提供的数据扩展了我们对肉碱代谢及其在暴露于单一或多种环境非生物胁迫下的盐生嗜盐色杆菌中的生理功能的认识。

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