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Involvement of the TetR-Type regulator PaaR in the regulation of pristinamycin I biosynthesis through an effect on precursor supply in Streptomyces pristinaespiralis

  • Yawei Zhao
  • , Rongrong Feng
  • , Guosong Zheng
  • , Jinzhong Tian
  • , Lijun Ruan
  • , Mei Ge
  • , Weihong Jiang
  • , Yinhua Lu*
  • *此作品的通讯作者
  • CAS - Center for Excellence in Molecular Plant Sciences
  • Shanghai Laiyi Center for Biopharmaceuticals R&D
  • Shanghai Collaborative Innovation Center for Biomanufacturing (SCICB)

科研成果: 期刊稿件文章同行评审

摘要

Pristinamycin I (PI), produced by Streptomyces pristinaespiralis, is a streptogramin type B antibiotic, which contains two proteinogenic and five aproteinogenic amino acid precursors. PI is coproduced with pristinamycin II (PII), a member of streptogramin type A antibiotics. The PI biosynthetic gene cluster has been cloned and characterized. However, thus far little is understood about the regulation of PI biosynthesis. In this study, a TetR family regulator (encoded by SSDG_03033) was identified as playing a positive role in PI biosynthesis. Its homologue, PaaR, from Corynebacterium glutamicum serves as a transcriptional repressor of the paa genes involved in phenylacetic acid (PAA) catabolism. Herein, we also designated the identified regulator as PaaR. Deletion of paaR led to an approximately 70% decrease in PI production but had little effect on PII biosynthesis. Identical to the function of its homologue from C. glutamicum, PaaR is also involved in the suppression of paa expression. Given that phenylacetyl coenzyme A (PA-CoA) is the common intermediate of the PAA catabolic pathway and the biosynthetic pathway of L-phenylglycine (L-Phg), the last amino acid precursor for PI biosynthesis, we proposed that derepression of the transcription of paa genes in a ΔpaaR mutant possibly diverts more PA-CoA to the PAA catabolic pathway, thereby with less PA-CoA metabolic flux toward L-Phg formation, thus resulting in lower PI titers. This hypothesis was verified by the observations that PI production of a ΔpaaR mutant was restored by L-Phg supplementation as well as by deletion of the paaABCDE operon in the ΔpaaR mutant. Altogether, this study provides new insights into the regulation of PI biosynthesis by S. pristinaespiralis.

源语言英语
页(从-至)2062-2071
页数10
期刊Journal of Bacteriology
197
12
DOI
出版状态已出版 - 2015
已对外发布

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