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1.
Bioorg Med Chem Lett ; 32: 127661, 2021 01 15.
Article in English | MEDLINE | ID: mdl-33160023

ABSTRACT

We previously reported medicinal chemistry efforts that identified MK-5204, an orally efficacious ß-1,3-glucan synthesis inhibitor derived from the natural product enfumafungin. Further extensive optimization of the C2 triazole substituent identified 4-pyridyl as the preferred replacement for the carboxamide of MK-5204, leading to improvements in antifungal activity in the presence of serum, and increased oral exposure. Reoptimizing the aminoether at C3 in the presence of this newly discovered C2 substituent, confirmed that the (R) t-butyl, methyl aminoether of MK-5204 provided the best balance of these two key parameters, culminating in the discovery of ibrexafungerp, which is currently in phase III clinical trials. Ibrexafungerp displayed significantly improved oral efficacy in murine infection models, making it a superior candidate for clinical development as an oral treatment for Candida and Aspergillus infections.


Subject(s)
Antifungal Agents/pharmacology , Aspergillus/drug effects , Candida albicans/drug effects , Glycosides/chemistry , Triterpenes/chemistry , beta-Glucans/metabolism , Administration, Oral , Animals , Antifungal Agents/chemical synthesis , Antifungal Agents/pharmacokinetics , Antifungal Agents/therapeutic use , Aspergillosis/drug therapy , Candidiasis/drug therapy , Disease Models, Animal , Glycosides/pharmacokinetics , Glycosides/pharmacology , Glycosides/therapeutic use , Half-Life , Mice , Structure-Activity Relationship , Triterpenes/pharmacokinetics , Triterpenes/pharmacology , Triterpenes/therapeutic use
2.
Bioorg Med Chem Lett ; 30(17): 127357, 2020 09 01.
Article in English | MEDLINE | ID: mdl-32738971

ABSTRACT

Our previously reported efforts to produce an orally active ß-1,3-glucan synthesis inhibitor through the semi-synthetic modification of enfumafungin focused on replacing the C2 acetoxy moiety with an aminotetrazole and the C3 glycoside with a N,N-dimethylaminoether moiety. This work details further optimization of the C2 heterocyclic substituent, which identified 3-carboxamide-1,2,4-triazole as a replacement for the aminotetrazole with comparable antifungal activity. Alkylation of either the carboxamidetriazole at C2 or the aminoether at C3 failed to significantly improve oral efficacy. However, replacement of the isopropyl alpha amino substituent with a t-butyl, improved oral exposure while maintaining antifungal activity. These two structural modifications produced MK-5204, which demonstrated broad spectrum activity against Candida species and robust oral efficacy in a murine model of disseminated Candidiasis without the N-dealkylation liability observed for the previous lead.


Subject(s)
Antifungal Agents/chemistry , Triazoles/chemistry , beta-Glucans/metabolism , Administration, Oral , Animals , Antifungal Agents/metabolism , Antifungal Agents/pharmacology , Antifungal Agents/therapeutic use , Candida/drug effects , Candidiasis/drug therapy , Disease Models, Animal , Glucosyltransferases/antagonists & inhibitors , Glucosyltransferases/metabolism , Glycosides/chemistry , Half-Life , Mice , Microbial Sensitivity Tests , Stereoisomerism , Structure-Activity Relationship , Triazoles/metabolism , Triazoles/pharmacology , Triazoles/therapeutic use , Triterpenes/chemistry , beta-Glucans/chemistry
3.
ACS Med Chem Lett ; 8(1): 96-101, 2017 Jan 12.
Article in English | MEDLINE | ID: mdl-28105282

ABSTRACT

GPR120 (FFAR4) is a fatty acid sensing G protein coupled receptor (GPCR) that has been identified as a target for possible treatment of type 2 diabetes. A selective activator of GPR120 containing a chromane scaffold has been designed, synthesized, and evaluated in vivo. Results of these efforts suggest that chromane propionic acid 18 is a suitable tool molecule for further animal studies. Compound 18 is selective over the closely related target GPR40 (FFAR1), has a clean off-target profile, demonstrates suitable pharmacokinetic properties, and has been evaluated in wild-type/knockout GPR120 mouse oGTT studies.

4.
Bioorg Med Chem Lett ; 25(24): 5813-8, 2015 Dec 15.
Article in English | MEDLINE | ID: mdl-26542966

ABSTRACT

The clinical success of the echinocandins, which can only be administered parentally, has validated ß-1,3-glucan synthase (GS) as an antifungal target. Semi-synthetic modification of enfumafungin, a triterpene glycoside natural product, was performed with the aim of producing a new class of orally active GS inhibitors. Replacement of the C2 acetoxy moiety with various heterocycles did not improve GS or antifungal potency. However, replacement of the C3 glycoside with an aminoether moiety dramatically improved oral pharmacokinetic (PK) properties while maintaining GS and antifungal potency. Installing an aminotetrazole at C2 in conjunction with an N-alkylated aminoether at C3 produced derivatives with significantly improved GS and antifungal potency that exhibited robust oral efficacy in a murine model of disseminated candidiasis.


Subject(s)
Antifungal Agents/chemistry , Glycosides/chemistry , Triterpenes/chemistry , beta-Glucans/chemistry , Administration, Oral , Animals , Antifungal Agents/pharmacokinetics , Antifungal Agents/therapeutic use , Aspergillus fumigatus/drug effects , Candida albicans/drug effects , Candidiasis/drug therapy , Candidiasis/veterinary , Glucosyltransferases/antagonists & inhibitors , Glucosyltransferases/metabolism , Half-Life , Mice , Microbial Sensitivity Tests , Structure-Activity Relationship , Terpenes/chemistry , beta-Glucans/pharmacokinetics , beta-Glucans/therapeutic use
5.
Chem Biol ; 22(10): 1362-73, 2015 Oct 22.
Article in English | MEDLINE | ID: mdl-26456734

ABSTRACT

Resistance to existing classes of antibiotics drives the need for discovery of novel compounds with unique mechanisms of action. Nargenicin A1, a natural product with limited antibacterial spectrum, was rediscovered in a whole-cell antisense assay. Macromolecular labeling in both Staphylococcus aureus and an Escherichia coli tolC efflux mutant revealed selective inhibition of DNA replication not due to gyrase or topoisomerase IV inhibition. S. aureus nargenicin-resistant mutants were selected at a frequency of ∼1 × 10(-9), and whole-genome resequencing found a single base-pair change in the dnaE gene, a homolog of the E. coli holoenzyme α subunit. A DnaE single-enzyme assay was exquisitely sensitive to inhibition by nargenicin, and other in vitro characterization studies corroborated DnaE as the target. Medicinal chemistry efforts may expand the spectrum of this novel mechanism antibiotic.


Subject(s)
DNA Polymerase III/genetics , Drug Discovery , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/metabolism , Anti-Bacterial Agents/pharmacology , DNA Replication/drug effects , DNA-Directed DNA Polymerase/metabolism , Drug Resistance, Bacterial/genetics , Escherichia coli/drug effects , Inhibitory Concentration 50 , Lactones/chemistry , Lactones/metabolism , Lactones/pharmacology , Mutation , Nucleic Acid Synthesis Inhibitors/chemistry , Nucleic Acid Synthesis Inhibitors/pharmacology , Staphylococcus aureus/drug effects
6.
Proc Natl Acad Sci U S A ; 108(13): 5378-83, 2011 Mar 29.
Article in English | MEDLINE | ID: mdl-21389266

ABSTRACT

Platensimycin (PTM) is a recently discovered broad-spectrum antibiotic produced by Streptomyces platensis. It acts by selectively inhibiting the elongation-condensing enzyme FabF of the fatty acid biosynthesis pathway in bacteria. We report here that PTM is also a potent and highly selective inhibitor of mammalian fatty acid synthase. In contrast to two agents, C75 and cerulenin, that are widely used as inhibitors of mammalian fatty acid synthase, platensimycin specifically inhibits fatty acid synthesis but not sterol synthesis in rat primary hepatocytes. PTM preferentially concentrates in liver when administered orally to mice and potently inhibits hepatic de novo lipogenesis, reduces fatty acid oxidation, and increases glucose oxidation. Chronic administration of platensimycin led to a net reduction in liver triglyceride levels and improved insulin sensitivity in db/+ mice fed a high-fructose diet. PTM also reduced ambient glucose levels in db/db mice. These results provide pharmacological proof of concept of inhibiting fatty acid synthase for the treatment of diabetes and related metabolic disorders in animal models.


Subject(s)
Adamantane/therapeutic use , Aminobenzoates/therapeutic use , Anilides/therapeutic use , Diabetes Mellitus/drug therapy , Fatty Acid Synthases/antagonists & inhibitors , Fatty Liver/drug therapy , Hypoglycemic Agents/therapeutic use , Animals , Anti-Infective Agents/therapeutic use , Disease Models, Animal , Fatty Acids/biosynthesis , Glucose/metabolism , Humans , Liver/metabolism , Mice , Mice, Mutant Strains , Oxidation-Reduction , Sterols/biosynthesis
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