首页> 外文OA文献 >Targeted Inactivation of the mecB Gene, Encoding Cystathionine-γ-Lyase, Shows that the Reverse Transsulfuration Pathway Is Required for High-Level Cephalosporin Biosynthesis in Acremonium chrysogenum C10 but Not for Methionine Induction of the Cephalosporin Genes
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Targeted Inactivation of the mecB Gene, Encoding Cystathionine-γ-Lyase, Shows that the Reverse Transsulfuration Pathway Is Required for High-Level Cephalosporin Biosynthesis in Acremonium chrysogenum C10 but Not for Methionine Induction of the Cephalosporin Genes

机译:mecB基因的靶向失活,编码胱硫醚-γ-裂合酶,表明逆转录途径是产黄曲霉C10中高水平头孢菌素生物合成所必需的,而不是对头孢菌素基因的蛋氨酸诱导所必需的

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摘要

Targeted gene disruption efficiency in Acremonium chrysogenum was increased 10-fold by applying the double-marker enrichment technique to this filamentous fungus. Disruption of the mecB gene by the double-marker technique was achieved in 5% of the transformants screened. Mutants T6 and T24, obtained by gene replacement, showed an inactive mecB gene by Southern blot analysis and no cystathionine-γ-lyase activity. These mutants exhibited lower cephalosporin production than that of the control strain, A. chrysogenum C10, in MDFA medium supplemented with methionine. However, there was no difference in cephalosporin production between parental strain A. chrysogenum C10 and the mutants T6 and T24 in Shen's defined fermentation medium (MDFA) without methionine. These results indicate that the supply of cysteine through the transsulfuration pathway is required for high-level cephalosporin biosynthesis but not for low-level production of this antibiotic in methionine-unsupplemented medium. Therefore, cysteine for cephalosporin biosynthesis in A. chrysogenum derives from the autotrophic (SH2) and the reverse transsulfuration pathways. Levels of methionine induction of the cephalosporin biosynthesis gene pcbC were identical in the parental strain and the mecB mutants, indicating that the induction effect is not mediated by cystathionine-γ-lyase.
机译:通过在这种丝状真菌上应用双标记富集技术,可将产黄顶孢属中的靶向基因破坏效率提高10倍。通过双标记技术破坏了mecB基因,筛选出的转化子占5%。通过基因置换获得的突变体T6和T24通过Southern印迹分析显示无活性的mecB基因,且无胱硫醚-γ-裂合酶活性。在添加了蛋氨酸的MDFA培养基中,这些突变体的头孢菌素产生量低于对照菌株chsssgenumum C10。然而,在没有甲硫氨酸的沉氏定型发酵培养基(MDFA)中,亲本菌株产黄曲霉C10与突变体T6和T24之间的头孢菌素产量没有差异。这些结果表明通过转硫途径供应半胱氨酸对于高水平头孢菌素的生物合成是必需的,而不是在蛋氨酸补充不足的培养基中低水平生产这种抗生素所必需的。因此,用于黄曲霉头孢菌素生物合成的半胱氨酸来自自养(SH2)和反向转硫途径。头孢菌素生物合成基因pcbC的蛋氨酸诱导水平在亲本菌株和mecB突变体中相同,表明诱导作用不是由胱硫醚-γ-裂合酶介导的。

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