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1.
J Med Chem ; 67(5): 4100-4119, 2024 Mar 14.
Article in English | MEDLINE | ID: mdl-38482828

ABSTRACT

C5a is an anaphylatoxin protein produced by the cleavage of the complement system's component C5 protein. It signals through the G-protein-coupled receptor C5a receptor 1 (C5aR1) to induce the chemotaxis of primarily neutrophils and monocytes and the release of inflammatory molecules. A large body of evidence linking C5aR1 signaling to acute and chronic inflammatory disorders has triggered interest in developing potent C5aR antagonists. Herein we report the discovery of new C5aR1 antagonistic chemical classes. Many representatives showed low nanomolar IC50 values in a C5aR1 ß-arrestin-2 recruitment assay, inhibiting the migration of human neutrophils toward C5a and the internalization of the receptor in human whole blood. Two leading compounds were characterized further in vivo. Target engagement of the receptor by these two C5aR1 antagonists was demonstrated in vivo. In particular, the inhibition of migration in vitro with the two compounds further translated in a dose-dependent efficacy in a rat model of C5a-induced neutrophilia.


Subject(s)
Complement C5a , Receptor, Anaphylatoxin C5a , Humans , Rats , Animals , Complement C5a/metabolism , Chemotaxis , Monocytes/metabolism , Neutrophils/metabolism
2.
J Med Chem ; 60(23): 9769-9789, 2017 12 14.
Article in English | MEDLINE | ID: mdl-29116786

ABSTRACT

We report here the discovery and pharmacological characterization of N-(1-benzyl-1H-pyrazol-3-yl)-2-phenylacetamide derivatives as potent, selective, brain-penetrating T-type calcium channel blockers. Optimization focused mainly on solubility, brain penetration, and the search for an aminopyrazole metabolite that would be negative in an Ames test. This resulted in the preparation and complete characterization of compound 66b (ACT-709478), which has been selected as a clinical candidate.


Subject(s)
Benzeneacetamides/chemistry , Benzeneacetamides/pharmacology , Calcium Channel Blockers/chemistry , Calcium Channel Blockers/pharmacology , Calcium Channels, T-Type/metabolism , Epilepsy, Generalized/drug therapy , Animals , Benzeneacetamides/metabolism , Benzeneacetamides/pharmacokinetics , Brain/drug effects , Brain/metabolism , Calcium Channel Blockers/metabolism , Calcium Channel Blockers/pharmacokinetics , Dogs , Drug Discovery , Epilepsy, Generalized/metabolism , Guinea Pigs , Humans , Macaca fascicularis , Pyrazoles/chemistry , Pyrazoles/pharmacology , Rats, Wistar , Structure-Activity Relationship
3.
Chimia (Aarau) ; 71(10): 722-729, 2017 Oct 25.
Article in English | MEDLINE | ID: mdl-29070417

ABSTRACT

We describe the discovery and optimization of new, brain-penetrant T-type calcium channel blockers. We present optimized compounds with excellent efficacy in a rodent model of generalized absence-like epilepsy. Along the fine optimization of a chemical series with a pharmacological target located in the CNS (target potency, brain penetration, and solubility), we successfully identified an Ames negative aminopyrazole as putative metabolite of this compound series. Our efforts culminated in the selection of compound 20, which was elected as a preclinical candidate.


Subject(s)
Calcium Channel Blockers/therapeutic use , Calcium Channels, T-Type/drug effects , Drug Discovery , Epilepsy, Generalized/drug therapy , Animals , Calcium Channels, T-Type/physiology , Disease Models, Animal , Humans , Mice , Rats
4.
J Am Chem Soc ; 134(2): 1284-97, 2012 Jan 18.
Article in English | MEDLINE | ID: mdl-22188323

ABSTRACT

The total synthesis of [Ψ[C(═S)NH]Tpg(4)]vancomycin aglycon (8) and its unique AgOAc-promoted single-step conversion to [Ψ[C(═NH)NH]Tpg(4)]vancomycin aglycon (7), conducted on a fully deprotected substrate, are disclosed. The synthetic approach not only permits access to 7, but it also allows late-stage access to related residue 4 derivatives, alternative access to [Ψ[CH(2)NH]Tpg(4)]vancomycin aglycon (6) from a common late-stage intermediate, and provides authentic residue 4 thioamide and amidine derivatives of the vancomycin aglycon that will facilitate ongoing efforts on their semisynthetic preparation. In addition to early stage residue 4 thioamide introduction, allowing differentiation of one of seven amide bonds central to the vancomycin core structure, the approach relied on two aromatic nucleophilic substitution reactions for formation of the 16-membered diaryl ethers in the CD/DE ring systems, an effective macrolactamization for closure of the 12-membered biaryl AB ring system, and the defined order of CD, AB, and DE ring closures. This order of ring closures follows their increasing ease of thermal atropisomer equilibration, permitting the recycling of any newly generated unnatural atropisomer under progressively milder thermal conditions where the atropoisomer stereochemistry already set is not impacted. Full details of the evaluation of 7 and 8 along with several related key synthetic compounds containing the core residue 4 amidine and thioamide modifications are reported. The binding affinity of compounds containing the residue 4 amidine with the model D-Ala-D-Ala ligand 2 was found to be only 2-3 times less than the vancomycin aglycon (5), and this binding affinity is maintained with the model d-Ala-d-Lac ligand 4, representing a nearly 600-fold increase in affinity relative to the vancomycin aglycon. Importantly, the amidines display effective dual, balanced binding affinity for both ligands (K(a)2/4 = 0.9-1.05), and they exhibit potent antimicrobial activity against VanA resistant bacteria ( E. faecalis , VanA VRE) at a level accurately reflecting these binding characteristics (MIC = 0.3-0.6 µg/mL), charting a rational approach forward in the development of antibiotics for the treatment of vancomycin-resistant bacterial infections. In sharp contrast, 8 and related residue 4 thioamides failed to bind either 2 or 4 to any appreciable extent, do not exhibit antimicrobial activity, and serve to further underscore the remarkable behavior of the residue 4 amidines.


Subject(s)
Anti-Bacterial Agents/chemical synthesis , Vancomycin/analogs & derivatives , Vancomycin/chemical synthesis , Amino Acid Sequence , Drug Resistance, Bacterial , Models, Molecular , Molecular Structure , Peptidoglycan/chemistry , Protein Binding
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