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    甜菜碱增强延长盐单胞菌高盐适应性的代谢机理解析

    Analysis of the metabolic mechanism for the enhancement of high salt acclimatization of Halomonas elongata mediated through betaine

    • 摘要: 本研究针对延长盐单胞菌(Halomonas elongata)在高盐胁迫下生长受抑制的瓶颈问题,系统筛选了可缓解盐抑制效应的保护因子。结果显示甜菜碱的添加能够使菌体生物量提高18%,显著优于其他渗透调节剂。进一步,代谢动力学建模分析表明甜菜碱添加后菌体的最大比生长速率(μmax)显著增加42%、呼吸强度提高118%。碳分布统计结果显示甜菜碱添加后依克多因合成在延滞期明显减弱,碳代谢向细胞菌体生长迁移。最后胞内关键代谢物分析表明,甜菜碱的添加显著降低丙氨酸、缬氨酸和亮氨酸水平,揭示其可能通过增强三羧酸循环(TCA循环)代谢通量以提升盐适应能力。该研究为构建高盐环境下嗜盐菌高效表达体系提供了理论依据与工艺优化策略。

       

      Abstract: In this study, to address the bottleneck problem of growth inhibition under high salt stress in Halomonas elongata, we conducted a systematic selection of protective factors that could relieve the effect of salt stress inhibition. The results showed that the addition of betaine was able to increase the biomass by 18%, which was significantly better than other osmotic regulators. Further, metabolic kinetic modeling analysis showed that the maximum specific growth rate (μmax) of the bacterium significantly increased by 42% after the betaine addition, and the respiratory intensity increased by 118%. Carbon distribution statistics showed that ectoine synthesis was significantly weakened during the delayed phase after betaine addition, and carbon metabolism was shifted toward growth of the cells. Finally the analysis of intracellular key metabolites showed that the addition of betaine significantly reduced the levels of alanine, valine and leucine, revealing that it may enhance the salt adaptation capacity of Halomonas elongata by strengthening the metabolic flux of the tricarboxylic acid cycle (TCA cycle). This study provides a theoretical basis and process optimization strategy for the construction of an efficient expression system for halophilic bacteria under high salt environment.

       

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