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首页> 外文期刊>Journal of microbiology and biotechnology >In Vivo Characterization of Phosphotransferase-Encoding Genes istP and forP as Interchangeable Launchers of the C3 ',4 '-Dideoxygenation Biosynthetic Pathway of 1,4-Diaminocyclitol Antibiotics
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In Vivo Characterization of Phosphotransferase-Encoding Genes istP and forP as Interchangeable Launchers of the C3 ',4 '-Dideoxygenation Biosynthetic Pathway of 1,4-Diaminocyclitol Antibiotics

机译:在体内表征磷酸转移酶编码基因ISTP和FORP作为C3',4'-二烷氧基化生物合成途径的可互换发射器,1,4-二氨基氨基脲抗生素的生物合成途径

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摘要

Deactivation of aminoglycosides by their modifying enzymes, including a number of aminoglycoside O-phosphotransferases, is the most ubiquitous resistance mechanism in aminoglycoside-resistant pathogens. Nonetheless, in a couple of biosynthetic pathways for gentamicins, fortimicins, and istamycins, phosphorylation of aminoglycosides seems to be a unique and initial step for the creation of a natural defensive structural feature such as a 3 ', 4 '-dideoxy scaffold. Our aim was to elucidate the biochemical details on the beginning of these C3 ', 4 '-dideoxygenation biosynthetic steps for aminoglycosides. The biosynthesis of istamycins must surely involve these 3 ', 4 '-didehydroxylation steps, but much less has been reported in terms of characterization of istamycin biosynthetic genes, especially about the phosphotransferase-encoding gene. In the disruption and complementation experiments pointing to a putative gene, istP, in the genome of wild-type Streptomyces tenjimariensis, the function of the istP gene was proved here to be a phosphotransferase. Next, an in-frame deletion of a known phosphotransferase-encoding gene forP from the genome of wild-type Micromonospora olivasterospora resulted in the appearance of a hitherto unidentified fortimicin shunt product, namely 3-O-methyl-FOR-KK1, whereas complementation of forP restored the natural fortimicin metabolite profiles. The bilateral complementation of an istP gene (or forP) in the Delta forP mutant (or Delta istP mutant strain) successfully restored the biosynthesis of 3 ', 4 '-dideoxy fortimicins and istamycins, thus clearly indicating that they are interchangeable launchers of the biosynthesis of 3 ', 4 '-dideoxy types of 1,4-diaminocyclitol antibiotics.
机译:通过其改性酶去激活氨基糖苷,包括许多氨基糖苷类O-磷酸转移酶,是抗氨基糖苷类抗性病原体中最无处不在的抗性机制。尽管如此,在庆大霉素的几种生物合成途径中,Fortimicins和istamycins,氨基糖苷的磷酸化似乎是创造自然防御性结构特征的独特且初始步骤,例如3',4'-二氧化脚手架。我们的目的是阐明这些C3',4'-二烷氧化生物合成步骤的生物化学细节,用于氨基糖苷类。 istamycins的生物合成必须肯定涉及这些3',4'-偶氮化步骤,但在istamycin生物合成基因的表征方面报告了更少的报道,特别是关于磷酸转移酶编码基因的表征。在指向调用基因的破坏和互补实验中,ISTP在野生型链霉菌的基因组中,在此证明了ISTP基因的功能是磷酸转移酶。接下来,从野生型微孢子孢子孢子孢子基因组的型已知磷酸转移酶编码基因FORP的内型缺失导致迄今为止未识别的Fantimicin分流产物的出现,即3-O-甲基 - kk1,而互补FORP恢复了天然的FATTIMICIN代谢物配置文件。 Delta Forp突变体(或ΔISTP突变体菌株)中的ISTP基因(或FORP)的双侧互补成功地恢复了3',4'-二烷氧基Fortimicins和istamycins的生物合成,从而显然表明它们是生物合成的可互换发射器3',4'-二烷氧基类型的1,4-二氨基环菌抗生素。

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