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首页> 外文期刊>BMC Genomics >Biosynthesis of storage compounds by Rhodococcus jostii RHA1 and global identification of genes involved in their metabolism
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Biosynthesis of storage compounds by Rhodococcus jostii RHA1 and global identification of genes involved in their metabolism

机译:罗氏红球菌RHA1生物合成贮藏化合物及其代谢相关基因的整体鉴定

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Background Members of the genus Rhodococcus are frequently found in soil and other natural environments and are highly resistant to stresses common in those environments. The accumulation of storage compounds permits cells to survive and metabolically adapt during fluctuating environmental conditions. The purpose of this study was to perform a genome-wide bioinformatic analysis of key genes encoding metabolism of diverse storage compounds by Rhodococcus jostii RHA1 and to examine its ability to synthesize and accumulate triacylglycerols (TAG), wax esters, polyhydroxyalkanoates (PHA), glycogen and polyphosphate (PolyP). Results We identified in the RHA1 genome: 14 genes encoding putative wax ester synthase/acyl-CoA:diacylglycerol acyltransferase enzymes (WS/DGATs) likely involved in TAG and wax esters biosynthesis; a total of 54 genes coding for putative lipase/esterase enzymes possibly involved in TAG and wax ester degradation; 3 sets of genes encoding PHA synthases and PHA depolymerases; 6 genes encoding key enzymes for glycogen metabolism, one gene coding for a putative polyphosphate kinase and 3 putative exopolyphosphatase genes. Where possible, key amino acid residues in the above proteins (generally in active sites, effectors binding sites or substrate binding sites) were identified in order to support gene identification. RHA1 cells grown under N-limiting conditions, accumulated TAG as the main storage compounds plus wax esters, PHA (with 3-hydroxybutyrate and 3-hydroxyvalerate monomers), glycogen and PolyP. Rhodococcus members were previously known to accumulate TAG, wax esters, PHAs and polyP, but this is the first report of glycogen accumulation in this genus. Conclusion RHA1 possess key genes to accumulate diverse storage compounds. Under nitrogen-limiting conditions lipids are the principal storage compounds. An extensive capacity to synthesize and metabolize storage compounds appears to contribute versatility to RHA1 in its responses to environmental stresses.
机译:背景技术红球菌属成员经常在土壤和其他自然环境中发现,并且对那些环境中常见的胁迫具有高度的抵抗力。存储化合物的积累使细胞能够在变化的环境条件下存活并代谢适应。这项研究的目的是对由红球菌RHA1编码多种存储化合物代谢的关键基因进行全基因组生物信息学分析,并检查其合成和积累三酰甘油(TAG),蜡酯,聚羟基链烷酸酯(PHA),糖原的能力。和聚磷酸盐(PolyP)。结果我们在RHA1基因组中鉴定出:14个编码可能与TAG和蜡酯生物合成有关的蜡酯合酶/酰基辅酶A:二酰基甘油酰基转移酶(WS / DGAT)的基因;总共54个基因编码可能与TAG和蜡酯降解有关的假定的脂肪酶/酯酶; 3组编码PHA合酶和PHA解聚酶的基因; 6个编码糖原代谢关键酶的基因,一个编码推定的多磷酸盐激酶基因,以及3个推定的外多聚磷酸酶基因。在可能的情况下,鉴定上述蛋白质中的关键氨基酸残基(通常在活性位点,效应子结合位点或底物结合位点),以支持基因鉴定。在N极限条件下生长的RHA1细胞积累了TAG作为主要存储化合物,以及蜡酯,PHA(具有3-羟基丁酸酯和3-羟基戊酸酯单体),糖原和PolyP。以前已知红球菌成员会积累TAG,蜡酯,PHA和polyP,但这是该属糖原积累的首次报道。结论RHA1拥有关键的基因,可以积累多种存储化合物。在氮限制条件下,脂质是主要的储存化合物。合成和代谢存储化合物的广泛能力似乎在RHA1对环境压力的响应中为多功能性做出了贡献。

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