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Genomic and metabolic features of Tetragenococcus halophilus as revealed by pan-genome and transcriptome analyses

机译:通过全基因组和转录组分析揭示了嗜盐四核球菌的基因组和代谢特征

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The genomic and metabolic diversity and features of Tetragenococcus halophilus, a moderately halophilic lactic acid bacterium, were investigated by pan-genome, transcriptome, and metabolite analyses. Phylogenetic analyses based on the 16S rRNA gene and genome sequences of 15 T. halophilus strains revealed their phylogenetic distinctness from other Tetragenococcus species. Pan-genome analysis of the T. halophilus strains showed that their carbohydrate metabolic capabilities were diverse and strain dependent. Aside from one histidine decarboxylase gene in one strain, no decarboxylase gene associated with biogenic amine production was identified from the genomes. However, T. halophilus DSM 20339(T) produced tyramine without a biogenic amine-producing decarboxylase gene, suggesting the presence of an unidentified tyramine-producing gene. Our reconstruction of the metabolic pathways of these strains showed that T. halophilus harbors a facultative lactic acid fermentation pathway to produce c-lactate, ethanol, acetate, and CO2 from various carbohydrates. The transcriptomic analysis of strain DSM 20339(T) suggested that T. halophilus may produce more acetate via the heterolactic pathway (including D-ribose metabolism) at high salt conditions. Although genes associated with the metabolism of glycine betaine, proline, glutamate, glutamine, choline, and citrulline were identified from the T. halophilus genomes, the transcriptome and metabolite analyses suggested that glycine betaine was the main compatible solute responding to high salt concentration and that citrulline may play an important role in the coping mechanism against high salinity-induced osmotic stresses. Our results will provide a better understanding of the genome and metabolic features of T. halophilus, which has implications for the food fermentation industry.
机译:通过泛基因组,转录组和代谢物分析,研究了嗜盐嗜四性乳酸菌Tetragenococcus halophilus的基因组和代谢多样性以及特征。根据16S rRNA基因和15个嗜盐丁酸杆菌菌株的基因组序列进行的系统发育分析表明,它们与其他四核球菌属物种的系统发育差异明显。嗜盐丁酸杆菌菌株的全基因组分析表明,它们的碳水化合物代谢能力各不相同,且依赖菌株。除了在一株中的一个组氨酸脱羧酶基因外,从基因组中未鉴定出与生物胺产生相关的脱羧酶基因。但是,嗜盐嗜热菌DSM 20339(T)产生了酪胺,而没有产生生物胺的脱羧酶基因,这表明存在未鉴定的产生酪胺的基因。我们对这些菌株的代谢途径的重建表明,嗜盐链球菌具有兼备的乳酸发酵途径,可以从各种碳水化合物中产生c-乳酸,乙醇,乙酸盐和CO2。菌株DSM 20339(T)的转录组分析表明,在高盐条件下,嗜盐链球菌可能通过杂乳酸途径(包括D-核糖代谢)产生更多的乙酸盐。尽管从嗜盐热单胞菌基因组中鉴定了与甘氨酸甜菜碱,脯氨酸,谷氨酸,谷氨酰胺,胆碱和瓜氨酸代谢相关的基因,但转录组和代谢物分析表明,甘氨酸甜菜碱是对高盐浓度响应的主要相容性溶质,瓜氨酸在应对高盐度引起的渗透胁迫的应对机制中可能起重要作用。我们的结果将提供对嗜盐丁酸杆菌的基因组和代谢特征的更好理解,这对食品发酵行业具有重要意义。

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