首页> 外文期刊>Applied and Environmental Microbiology >Identification of a Cyclosporine-Specific P450 Hydroxylase Gene through Targeted Cytochrome P450 Complement (CYPome) Disruption in Sebekia benihana
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Identification of a Cyclosporine-Specific P450 Hydroxylase Gene through Targeted Cytochrome P450 Complement (CYPome) Disruption in Sebekia benihana

机译:通过靶向细胞色素P450补体(CYPome)干扰,在伯氏酵母中鉴定出环孢菌素特异性P450羟化酶基因。

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It was previously proposed that regio-specific hydroxylation of an immunosuppressive cyclosporine (CsA) at the 4th N-methyl leucine is mediated by cytochrome P450 hydroxylase (CYP) in the rare actinomycete Sebekia benihana. This modification is thought to be the reason for the hair growth-promoting side effect without the immunosuppressive activity of CsA. Through S. benihana genome sequencing and in silico analysis, we identified the complete cytochrome P450 complement (CYPome) of S. benihana, including 21 CYPs and their electron transfer partners, consisting of 7 ferredoxins (FDs) and 4 ferredoxin reductases (FDRs). Using Escherichia coli conjugation-based S. benihana CYPome-targeted disruption, all of the identified CYP, FD, and FDR genes in S. benihana were individually inactivated. Among the 32 S. benihana exconjugant mutants tested, only a single S. benihana CYP mutant, ΔCYP-sb21, failed to exhibit CsA hydroxylation activity. The hydroxylation was restored by CYP-sb21 gene complementation. Since all S. benihana FD and FDR disruption mutants maintained CsA hydroxylation activity, it can be concluded that CYP-sb21, a new member of the bacterial CYP107 family, is the only essential component of the in vivo regio-specific CsA hydroxylation process in S. benihana. Moreover, expression of an extra copy of the CYP-sb21 gene increased CsA hydroxylation in wild-type S. benihana and an NADPH-enriched Streptomyces coelicolor mutant, by 2-fold and 1.5-fold, respectively. These results show for the first time that regio-specific hydroxylation of CsA is carried out by a specific P450 hydroxylase present in S. benihana, and they set the stage for the biotechnological application of regio-specific CsA hydroxylation through heterologous CYP-sb21 expression.
机译:以前曾有人提出,在稀有放线菌斑节菌中,细胞色素P450羟化酶(CYP)介导了第4个N-甲基亮氨酸的免疫抑制环孢菌素(CsA)的区域特异性羟基化。该修饰被认为是没有CsA的免疫抑制活性而促进毛发生长的副作用的原因。通过对benihana的基因组测序和计算机分析,我们确定了benihana的完整细胞色素P450补体(CYPome),包括21种CYP及其电子转移伙伴,包括7种铁氧还蛋白(FD)和4种铁氧还蛋白还原酶(FDR)。使用大肠埃希氏菌结合的基于S.benihana的CYPome靶向破坏,可将B.behanhana中所有已鉴定的CYP,FD和FDR基因单独失活。在测试的32个benihana突变型突变体中,只有一个s。benihana CYP突变型ΔCYP-sb21不能表现出CsA羟基化活性。通过CYP-sb21基因互补恢复羟基化。由于所有的S. benihana FD和FDR破坏突变体均保持CsA羟化活性,因此可以得出结论,CYP-sb21是细菌CYP107家族的新成员,是S体内体内区域特异性CsA羟化过程的唯一必需成分。贝尼哈纳此外,CYP-sb21基因的额外副本的表达分别增加野生型贝尼希亚链霉菌和富含NADPH的链霉菌腔色变种中的CsA羟基化2倍和1.5倍。这些结果首次表明,CsA的区域特异性羟化是通过存在于伯氏链球菌中的特异性P450羟化酶来进行的,并且它们为通过异源CYP-sb21表达的区域特异性CsA羟化的生物技术应用奠定了基础。

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