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Updated: May 28, 2026

From a Natural Product to Its Biosynthetic Gene Cluster: A Demonstration Using Polyketomycin from Streptomyces diastatochromogenes Tü6028
Published on: January 13, 2017
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.
Abstract:
Control of polyene macrolide production in Streptomyces natalensis is mediated by the PAS-LuxR transcriptional activator PimM. Expression of target genes in this strain is positively regulated by binding of the regulator to 14-nucleotide sites showing dyad symmetry, and overlapping the -35 element of each promoter. These sequences have been found in the upstream regions of genes belonging to different polyene biosynthetic gene clusters. All the sequences in the amphotericin, nystatin, and filipin clusters were cloned and the binding of PimM to all of them has been shown by electrophoretic mobility shift assays. The precise binding regions were investigated by DNaseI protection studies. Results indicated that PAS-luxR regulators share the same regulatory pattern in different polyene-producing strains, these genes being responsible for polyketide chain construction, and when available, the genes for sugar dehydration and attachment, and the ABC transporters, the targets for regulation. Information content analysis of the 24 sequences protected in target promoters was used to refine the information-based model of the binding site. This site now spans 16 nucleotides and adjusts to the consensus CTVGGGAWWTCCCBAG. Gene complementation of S. natalensis ΔpimM with a single copy of heterologous regulators of the PAS/LuxR class integrated into the chromosome, such as amphRIV, nysRIV, or pteF, restored antifungal production, thus proving the functional conservation of these regulators. Introduction of a single copy of pimM into the amphotericin producing strain Streptomyces nodosus, or into the filipin producing strain S. avermitilis, boosted the production of both polyenes, thus indicating that the expression of the PAS-LuxR regulator constitutes a bottleneck in the biosynthesis of the antifungal, and also that these regulators are fully exchangeable. This work is the first report of a general mechanism regulating polyene production.
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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