Functional conservation of PAS-LuxR transcriptional regulators in polyene macrolide biosynthesis

Javier Santos-Aberturas1, Tamara D Payero, Cláudia M Vicente

  • 1Area of Microbiology, Faculty of Biology, University of León, 24071 León, Spain.

Metabolic Engineering
|October 18, 2011
PubMed

Insights

The PAS-LuxR transcriptional activator PimM controls antifungal polyene macrolide production in Streptomyces. This regulator binds to specific DNA sequences, demonstrating a conserved mechanism for controlling antifungal biosynthesis across different strains.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Biochemistry

Background:

  • Polyene macrolide antifungals are crucial for treating fungal infections.
  • Their biosynthesis in Streptomyces is complex and tightly regulated.
  • The PAS-LuxR family of transcriptional activators is implicated in this regulation.

Purpose of the Study:

  • To elucidate the regulatory mechanism of polyene macrolide production by PimM in Streptomyces natalensis.
  • To identify and characterize the DNA binding sites of PimM.
  • To investigate the conservation and exchangeability of PAS-LuxR regulators across different polyene-producing strains.

Main Methods:

  • Electrophoretic mobility shift assays (EMSAs) to confirm PimM binding to gene promoter regions.
  • DNaseI protection studies to precisely map PimM binding sites.
  • Information content analysis to refine the DNA binding site model.
  • Gene complementation experiments in Streptomyces to assess functional conservation and exchangeability of regulators.

Main Results:

  • PimM binds to conserved 14-nucleotide dyad-symmetric sequences overlapping the -35 promoter element in amphotericin, nystatin, and filipin biosynthetic gene clusters.
  • A refined 16-nucleotide binding site consensus sequence (CTVGGGAWWTCCCBAG) was determined.
  • Heterologous PAS-LuxR regulators restored antifungal production in S. natalensis, and PimM boosted polyene production in other strains, confirming functional conservation and exchangeability.
  • PAS-LuxR regulator expression is a bottleneck in antifungal biosynthesis.

Conclusions:

  • A general regulatory mechanism for polyene macrolide production mediated by PAS-LuxR activators has been identified.
  • These regulators are functionally conserved and exchangeable across different polyene-producing Streptomyces species.
  • The expression level of PAS-LuxR regulators is critical for the overall biosynthesis of polyene antifungals.

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