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Role of N,N-Dimethylglycine and Its Catabolism to Sarcosine in Chromohalobacter salexigens DSM 3043

机译:N,N-二甲基甘氨酸及其分解代谢在色度杆菌Salexigens DSM 3043中的角质氨基的作用

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Chromohalobacter salexigens DSM 3043 can grow on N , N -dimethylglycine (DMG) as the sole C, N, and energy source and utilize sarcosine as the sole N source under aerobic conditions. However, little is known about the genes and enzymes involved in the conversion of DMG to sarcosine in this strain. In the present study, gene disruption and complementation assays indicated that the csal_0990 , csal_0991 , csal_0992 , and csal_0993 genes are responsible for DMG degradation to sarcosine. The csal_0990 gene heterologously expressed in Escherichia coli was proven to encode an unusual DMG dehydrogenase (DMGDH). The enzyme, existing as a monomer of 79?kDa with a noncovalently bound flavin adenine dinucleotide, utilized both DMG and sarcosine as substrates and exhibited dual coenzyme specificity, preferring NAD~(+) to NADP~(+). The optimum pH and temperature of enzyme activity were determined to be 7.0 and 60°C, respectively. Kinetic parameters of the enzyme toward its substrates were determined accordingly. Under high-salinity conditions, the presence of DMG inhibited growth of the wild type and induced the production and accumulation of trehalose and glucosylglycerate intracellularly. Moreover, exogenous addition of DMG significantly improved the growth rates of the four DMG~(–) mutants ( Δcsal_0990 , Δcsal_0991 , Δcsal_0992 , and Δcsal_0993 ) incubated at 37°C in S-M63 synthetic medium with sarcosine as the sole N source. ~(13)C nuclear magnetic resonance (~(13)C-NMR) experiments revealed that not only ectoine, glutamate, and N -acetyl-2,4-diaminobutyrate but also glycine betaine (GB), DMG, sarcosine, trehalose, and glucosylglycerate are accumulated intracellularly in the four mutants.IMPORTANCE Although N , N -dimethylglycine (DMG) dehydrogenase (DMGDH) activity was detected in cell extracts of microorganisms, the genes encoding microbial DMGDHs have not been determined until now. In addition, to our knowledge, the physiological role of DMG in moderate halophiles has never been investigated. In this study, we identified the genes involved in DMG degradation to sarcosine, characterized an unusual DMGDH, and investigated the role of DMG in Chromohalobacter salexigens DSM 3043 and its mutants. Our results suggested that the conversion of DMG to sarcosine is accompanied by intramolecular delivery of electrons in DMGDH and intermolecular electron transfer between DMGDH and other electron acceptors. Moreover, an unidentified methyltransferase catalyzing the production of glycine betaine (GB) from DMG but sharing no homology with the reported sarcosine DMG methyltransferases was predicted to be present in the cells. The results of this study expand our understanding of the physiological role of DMG and its catabolism to sarcosine in C. salexigens .
机译:色度杆菌Salexigens DSM 3043可以在N,N-二甲基甘氨酸(DMG)上生长为唯一的C,N和能量源,并在有氧条件下使用Sarcosine作为鞋底源。然而,对于在该菌株中涉及DMG转化为肌氨酸的基因和酶知之甚少。在本研究中,基因破坏和互补测定表明CSAL_0990,CSAL_0991,CSAL_0992和CSAL_0993基因负责DMG降解肌氨酸。经证明在大肠杆菌中异源地表达的CSAL_0990基因以编码不寻常的DMG脱氢酶(DMGDH)。酶作为79?KDA的单体,具有非共价结合的黄芩腺嘌呤二核苷酸,用DMG和Sarcosine作为底物,并表现出双辅酶特异性,优选NAD〜(+)至NADP〜(+)。将酶活性的最佳pH和温度分别测定为7.0和60℃。相应地测定酶朝向其基材的动力学参数。在高盐度条件下,DMG的存在抑制了野生型的生长,并诱导细胞内海藻糖和葡糖基甘油的生产和积累。此外,DMG的外源添加显着改善了在37℃的S-M63合成培养基中在S-M63合成培养基中孵育的四种DMG〜( - )突变体(ΔCsal_0990,ΔCsal_0991,ΔCsal_0992和ΔCsal_0993)的生长速率。 〜(13)C核磁共振(〜(13)C-NMR)实验表明,不仅是胞外,谷氨酸和N-乙酰基-2,4-二氨基丁酸盐还是甘氨酸甜菜碱(GB),DMG,Sarcosine,海藻糖,在四个突变体中,葡萄糖基甘油凝聚在四个突变体中。在微生物的细胞提取物中检测到N,N-二甲基甘氨酸(DMG)脱氢酶(DMGDH)活性,迄今未确定编码微生物DMGDH的基因。此外,对于我们的知识,DMG在中等嗜戟属中的生理作用从未被调查过。在这项研究中,我们鉴定了参与DMG降解对肌氨酸的基因,其特征在于一种不寻常的DMGDH,并研究了DMG在色度杆菌Salexigens DSM 3043及其突变体中的作用。我们的研究结果表明,DMG对肌氨酸的转化伴随着DMGDH和DMGDH和其他电子受体之间的分子间电子转移的子分子递送。此外,预计催化催化甘氨酸甜菜碱(GB)的未识别的甲基转移酶(GB)与报道的肌氨酸DMG甲基转移酶没有同源酶,以存在于细胞中。本研究的结果扩大了我们对DMG的生理作用及其分解代谢在C. salexigens的杀螨物的理解。

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