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1.
Proc Natl Acad Sci U S A ; 120(48): e2310522120, 2023 Nov 28.
Article in English | MEDLINE | ID: mdl-37983497

ABSTRACT

With the significant increase in the availability of microbial genome sequences in recent years, resistance gene-guided genome mining has emerged as a powerful approach for identifying natural products with specific bioactivities. Here, we present the use of this approach to reveal the roseopurpurins as potent inhibitors of cyclin-dependent kinases (CDKs), a class of cell cycle regulators implicated in multiple cancers. We identified a biosynthetic gene cluster (BGC) with a putative resistance gene with homology to human CDK2. Using targeted gene disruption and transcription factor overexpression in Aspergillus uvarum, and heterologous expression of the BGC in Aspergillus nidulans, we demonstrated that roseopurpurin C (1) is produced by this cluster and characterized its biosynthesis. We determined the potency, specificity, and mechanism of action of 1 as well as multiple intermediates and shunt products produced from the BGC. We show that 1 inhibits human CDK2 with a Kiapp of 44 nM, demonstrates selectivity for clinically relevant members of the CDK family, and induces G1 cell cycle arrest in HCT116 cells. Structural analysis of 1 complexed with CDK2 revealed the molecular basis of ATP-competitive inhibition.


Subject(s)
Cyclin-Dependent Kinases , Neoplasms , Humans , Cyclin-Dependent Kinases/metabolism , Cyclin-Dependent Kinase 2/genetics , Cyclins/metabolism , Cell Cycle/genetics , Enzyme Inhibitors
2.
J Am Chem Soc ; 143(16): 6043-6047, 2021 04 28.
Article in English | MEDLINE | ID: mdl-33857369

ABSTRACT

Lanosterol 14α-demethylase (CYP51) is an important target in the development of antifungal drugs. The fungal-derived restricticin 1 and related molecules are the only examples of natural products that inhibit CYP51. Here, using colocalizations of genes encoding self-resistant CYP51 as the query, we identified and validated the biosynthetic gene cluster (BGC) of 1. Additional genome mining of related BGCs with CYP51 led to production of the related lanomycin 2. The pathways for both 1 and 2 were identified from fungi not known to produce these compounds, highlighting the promise of the self-resistance enzyme (SRE) guided approach to bioactive natural product discovery.


Subject(s)
14-alpha Demethylase Inhibitors/metabolism , Biological Products/metabolism , Cytochrome P450 Family 51/genetics , Antifungal Agents/chemistry , Antifungal Agents/metabolism , Biological Products/chemistry , Cytochrome P450 Family 51/metabolism , Fungal Proteins/genetics , Fungal Proteins/metabolism , Fungi/genetics , Multigene Family , Pyrans/chemistry , Pyrans/metabolism
3.
J Ind Microbiol Biotechnol ; 48(9-10)2021 Dec 23.
Article in English | MEDLINE | ID: mdl-33640980

ABSTRACT

Cryptococcus neoformans is a serious human pathogen with limited options for treatment. We have interrogated extracts from fungal fermentations to find Cryptococcus-inhibiting natural products using assays for growth inhibition and differential thermosensitivity. Extracts from fermentations of four fungal strains from wild and domestic animal dung from Arkansas and West Virginia, USA were identified as Preussia typharum. The extracts exhibited two antifungal regions. Purification of one region yielded new 24-carbon macrolides incorporating both a phosphoethanolamine unit and a bridging tetrahydrofuran ring. The structures of these metabolites were established mainly by analysis of high-resolution mass spectrometry and 2D NMR data. Relative configurations were assigned using NOESY data, and the structure assignments were supported by NMR comparison with similar compounds. These new metabolites are designated preussolides A and B. The second active region was caused by the cytotoxin, leptosin C. Genome sequencing of the four strains revealed biosynthetic gene clusters consistent with those known to encode phosphoethanolamine-bearing polyketide macrolides and the biosynthesis of dimeric epipolythiodioxopiperazines. All three compounds showed moderate to potent and selective antifungal activity toward the pathogenic yeast C. neoformans.


Subject(s)
Cryptococcus neoformans , Macrolides , Animals , Antifungal Agents/pharmacology , Ascomycota , Ethanolamines , Humans , Indole Alkaloids , Macrolides/pharmacology
4.
J Biol Chem ; 294(4): 1257-1266, 2019 01 25.
Article in English | MEDLINE | ID: mdl-30514758

ABSTRACT

Multidrug resistance is highly conserved in mammalian, fungal, and bacterial cells, is characterized by resistance to several unrelated xenobiotics, and poses significant challenges to managing infections and many cancers. Eukaryotes use a highly conserved set of drug efflux transporters that confer pleiotropic drug resistance (PDR). To interrogate the regulation of this critical process, here we developed a small molecule-responsive biosensor that couples transcriptional induction of PDR genes to growth rate in the yeast Saccharomyces cerevisiae Using diverse PDR inducers and the homozygous diploid deletion collection, we applied this biosensor system to genome-wide screens for potential PDR regulators. In addition to recapitulating the activity of previously known factors, these screens identified a series of genes involved in a variety of cellular processes with significant but previously uncharacterized roles in the modulation of yeast PDR. Genes identified as down-regulators of the PDR included those encoding the MAD family of proteins involved in the mitotic spindle assembly checkpoint (SAC) complex. Of note, we demonstrated that genetic disruptions of the mitotic spindle assembly checkpoint elevate expression of PDR-mediating efflux pumps in response to exposure to a variety of compounds that themselves have no known influence on the cell cycle. These results not only establish our biosensor system as a viable tool for investigating PDR in a high-throughput fashion, but also uncover critical control mechanisms governing the PDR response and a previously uncharacterized link between PDR and cell cycle regulation in yeast.


Subject(s)
ATP-Binding Cassette Transporters/metabolism , Biosensing Techniques , Cell Cycle Checkpoints/genetics , Drug Resistance, Multiple/genetics , Gene Expression Regulation, Fungal/drug effects , Saccharomyces cerevisiae Proteins/metabolism , Saccharomyces cerevisiae/metabolism , ATP-Binding Cassette Transporters/genetics , Genome, Fungal , Saccharomyces cerevisiae/drug effects , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/growth & development , Saccharomyces cerevisiae Proteins/genetics
5.
Environ Microbiol ; 22(6): 2292-2311, 2020 06.
Article in English | MEDLINE | ID: mdl-32239586

ABSTRACT

The antifungal echinocandin lipopeptide, acrophiarin, was circumscribed in a patent in 1979. We confirmed that the producing strain NRRL 8095 is Penicillium arenicola and other strains of P. arenicola produced acrophiarin and acrophiarin analogues. Genome sequencing of NRRL 8095 identified the acrophiarin gene cluster. Penicillium arenicola and echinocandin-producing Aspergillus species belong to the family Aspergillaceae of the Eurotiomycetes, but several features of acrophiarin and its gene cluster suggest a closer relationship with echinocandins from Leotiomycete fungi. These features include hydroxy-glutamine in the peptide core instead of a serine or threonine residue, the inclusion of a non-heme iron, α-ketoglutarate-dependent oxygenase for hydroxylation of the C3 of the glutamine, and a thioesterase. In addition, P. arenicola bears similarity to Leotiomycete echinocandin-producing species because it exhibits self-resistance to exogenous echinocandins. Phylogenetic analysis of the genes of the echinocandin biosynthetic family indicated that most of the predicted proteins of acrophiarin gene cluster exhibited higher similarity to the predicted proteins of the pneumocandin gene cluster of the Leotiomycete Glarea lozoyensis than to those of the echinocandin B gene cluster from A. pachycristatus. The fellutamide gene cluster and related gene clusters are recognized as relatives of the echinocandins. Inclusion of the acrophiarin gene cluster into a comprehensive phylogenetic analysis of echinocandin gene clusters indicated the divergent evolutionary lineages of echinocandin gene clusters are descendants from a common ancestral progenitor. The minimal 10-gene cluster may have undergone multiple gene acquisitions or losses and possibly horizontal gene transfer after the ancestral separation of the two lineages.


Subject(s)
Anti-Infective Agents/metabolism , Ascomycota , Aspergillus , Echinocandins , Lipopeptides , Penicillium , Ascomycota/genetics , Aspergillus/genetics , Echinocandins/biosynthesis , Echinocandins/genetics , Lipopeptides/biosynthesis , Lipopeptides/genetics , Multigene Family , Penicillium/genetics
6.
Angew Chem Int Ed Engl ; 56(32): 9556-9560, 2017 08 01.
Article in English | MEDLINE | ID: mdl-28679030

ABSTRACT

Fungal polyketides have significant biological activities, yet the biosynthesis by highly reducing polyketide synthases (HRPKSs) remains enigmatic. An uncharacterized group of HRPKSs was found to contain a C-terminal domain with significant homology to carnitine O-acyltransferase (cAT). Characterization of one such HRPKS (Tv6-931) from Trichoderma virens showed that the cAT domain is capable of esterifying the polyketide product with polyalcohol nucleophiles. This process is readily reversible, as confirmed through the holo ACP-dependent transesterification of the released product. The methyltransferase (MT) domain of Tv6-931 can perform two consecutive α-methylation steps on the last ß-keto intermediate to yield an α,α-gem-dimethyl product, a new programing feature among HRPKSs. Recapturing of the released product by cAT domain is suggested to facilitate complete gem-dimethylation by the MT.


Subject(s)
Carnitine Acyltransferases/metabolism , Polyketide Synthases/metabolism , Trichoderma/enzymology , Biocatalysis , Biological Products/chemistry , Biological Products/metabolism , Catalytic Domain , Metabolomics , Molecular Structure
7.
Fungal Genet Biol ; 89: 18-28, 2016 Apr.
Article in English | MEDLINE | ID: mdl-26808821

ABSTRACT

Microorganisms produce a wide range of natural products (NPs) with clinically and agriculturally relevant biological activities. In bacteria and fungi, genes encoding successive steps in a biosynthetic pathway tend to be clustered on the chromosome as biosynthetic gene clusters (BGCs). Historically, "activity-guided" approaches to NP discovery have focused on bioactivity screening of NPs produced by culturable microbes. In contrast, recent "genome mining" approaches first identify candidate BGCs, express these biosynthetic genes using synthetic biology methods, and finally test for the production of NPs. Fungal genome mining efforts and the exploration of novel sequence and NP space are limited, however, by the lack of a comprehensive catalog of BGCs encoding experimentally-validated products. In this study, we generated a comprehensive reference set of fungal NPs whose biosynthetic gene clusters are described in the published literature. To generate this dataset, we first identified NCBI records that included both a peer-reviewed article and an associated nucleotide record. We filtered these records by text and homology criteria to identify putative NP-related articles and BGCs. Next, we manually curated the resulting articles, chemical structures, and protein sequences. The resulting catalog contains 197 unique NP compounds covering several major classes of fungal NPs, including polyketides, non-ribosomal peptides, terpenoids, and alkaloids. The distribution of articles published per compound shows a bias toward the study of certain popular compounds, such as the aflatoxins. Phylogenetic analysis of biosynthetic genes suggests that much chemical and enzymatic diversity remains to be discovered in fungi. Our catalog was incorporated into the recently launched Minimum Information about Biosynthetic Gene cluster (MIBiG) repository to create the largest known set of fungal BGCs and associated NPs, a resource that we anticipate will guide future genome mining and synthetic biology efforts toward discovering novel fungal enzymes and metabolites.


Subject(s)
Biological Products , Biosynthetic Pathways/genetics , Genes, Fungal , Genome, Fungal , Multigene Family , Alkaloids , Amino Acid Sequence , Computational Biology , Data Curation , Fungi/genetics , Phylogeny , Polyketides , Terpenes
8.
Cell Chem Biol ; 30(11): 1453-1467.e8, 2023 11 16.
Article in English | MEDLINE | ID: mdl-37607550

ABSTRACT

Orphan cytotoxins are small molecules for which the mechanism of action (MoA) is either unknown or ambiguous. Unveiling the mechanism of these compounds may lead to useful tools for biological investigation and new therapeutic leads. In selected cases, the DNA mismatch repair-deficient colorectal cancer cell line, HCT116, has been used as a tool in forward genetic screens to identify compound-resistant mutations, which have ultimately led to target identification. To expand the utility of this approach, we engineered cancer cell lines with inducible mismatch repair deficits, thus providing temporal control over mutagenesis. By screening for compound resistance phenotypes in cells with low or high rates of mutagenesis, we increased both the specificity and sensitivity of identifying resistance mutations. Using this inducible mutagenesis system, we implicate targets for multiple orphan cytotoxins, including a natural product and compounds emerging from a high-throughput screen, thus providing a robust tool for future MoA studies.


Subject(s)
Antineoplastic Agents , Colonic Neoplasms , Humans , DNA Mismatch Repair , Antineoplastic Agents/pharmacology , Mutagenesis , Cytotoxins
9.
J Am Chem Soc ; 134(29): 12259-65, 2012 Jul 25.
Article in English | MEDLINE | ID: mdl-22741553

ABSTRACT

The macrolide antibiotic erythromycin A and its semisynthetic analogues have been among the most useful antibacterial agents for the treatment of infectious diseases. Using a recently developed chemical genetic strategy for precursor-directed biosynthesis and colony bioassay of 6-deoxyerythromycin D analogues, we identified a new class of alkynyl- and alkenyl-substituted macrolides with activities comparable to that of the natural product. Further analysis revealed a marked and unexpected dependence of antibiotic activity on the size and degree of unsaturation of the precursor. Based on these leads, we also report the precursor-directed biosynthesis of 15-propargyl erythromycin A, a novel antibiotic that not only is as potent as erythromycin A with respect to its ability to inhibit bacterial growth and cell-free ribosomal protein biosynthesis but also harbors an orthogonal functional group that is capable of facile chemical modification.


Subject(s)
Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/metabolism , Erythromycin/chemistry , Erythromycin/metabolism , Escherichia coli/metabolism , Ribosomes/metabolism , Anti-Bacterial Agents/pharmacology , Bacillus subtilis/drug effects , Binding Sites , Erythromycin/pharmacology , Escherichia coli/genetics , Industrial Microbiology/methods , Models, Molecular , Ribosomes/chemistry
10.
Front Microbiol ; 11: 1766, 2020.
Article in English | MEDLINE | ID: mdl-32849391

ABSTRACT

Cryptococcus neoformans is an important human pathogen with limited options for treatments. We have interrogated extracts from fungal fermentations to find Cryptococcus-inhibiting natural products using assays for growth inhibition, differential thermosensitivity, and synergy with existing antifungal drugs. Extracts from fermentations of strains of Discosia rubi from eastern Texas showed anticryptococcal bioactivity with preferential activity in agar zone of inhibition assays against C. neoformans at 37°C versus 25°C. Assay-guided fractionation led to the purification and identification of chaetoglobosin P as the active component of these extracts. Genome sequencing of these strains revealed a biosynthetic gene cluster consistent with chaetoglobosin biosynthesis and ß-methylation of the tryptophan residue. Proximity of genes of the actin-binding protein twinfilin-1 to the chaetoglobosin P and K gene clusters suggested a possible self-resistance mechanism involving twinfilin-1 which is consistent with the predicted mechanism of action involving interference with the polymerization of the capping process of filamentous actin. A C. neoformans mutant lacking twinfilin-1 was hypersensitive to chaetoglobosin P. Chaetoglobosins also potentiated the effects of amphotericin B and caspofungin on C. neoformans.

11.
Sci Adv ; 4(4): eaar5459, 2018 04.
Article in English | MEDLINE | ID: mdl-29651464

ABSTRACT

For decades, fungi have been a source of U.S. Food and Drug Administration-approved natural products such as penicillin, cyclosporine, and the statins. Recent breakthroughs in DNA sequencing suggest that millions of fungal species exist on Earth, with each genome encoding pathways capable of generating as many as dozens of natural products. However, the majority of encoded molecules are difficult or impossible to access because the organisms are uncultivable or the genes are transcriptionally silent. To overcome this bottleneck in natural product discovery, we developed the HEx (Heterologous EXpression) synthetic biology platform for rapid, scalable expression of fungal biosynthetic genes and their encoded metabolites in Saccharomyces cerevisiae. We applied this platform to 41 fungal biosynthetic gene clusters from diverse fungal species from around the world, 22 of which produced detectable compounds. These included novel compounds with unexpected biosynthetic origins, particularly from poorly studied species. This result establishes the HEx platform for rapid discovery of natural products from any fungal species, even those that are uncultivable, and opens the door to discovery of the next generation of natural products.


Subject(s)
Biological Products/metabolism , Fungi/genetics , Fungi/metabolism , Gene Expression , Genetic Engineering , Biosynthetic Pathways , Fermentation , Genetic Engineering/methods , High-Throughput Screening Assays , Promoter Regions, Genetic , Workflow
13.
J Antibiot (Tokyo) ; 64(1): 59-64, 2011 Jan.
Article in English | MEDLINE | ID: mdl-21081955

ABSTRACT

Erythromycin and related macrolide antibiotics are widely used polyketide natural products. We have evolved an engineered biosynthetic pathway in Escherichia coli that yields erythromycin analogs from simple synthetic precursors. Multiple rounds of mutagenesis and screening led to the identification of new mutant strains with improved efficiency for precursor-directed biosynthesis. Genetic and biochemical analysis suggested that the phenotypically relevant alterations in these mutant strains were localized exclusively to the host-vector system, and not to the polyketide synthase. We also demonstrate the utility of this improved system through engineered biosynthesis of a novel alkynyl erythromycin derivative with comparable antibacterial activity to its natural counterpart. In addition to reinforcing the power of directed evolution for engineering macrolide biosynthesis, our studies have identified a new lead substance for investigating structure-function relationships in the bacterial ribosome.


Subject(s)
Anti-Bacterial Agents/biosynthesis , Erythromycin/analogs & derivatives , Escherichia coli/metabolism , Anti-Bacterial Agents/pharmacology , Biosynthetic Pathways/genetics , Directed Molecular Evolution , Erythromycin/biosynthesis , Erythromycin/chemistry , Erythromycin/pharmacology , Escherichia coli/genetics , Mass Spectrometry , Microbial Sensitivity Tests , Plasmids/genetics , Plasmids/metabolism
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