Phenyl(thio)phosphon(amid)ate Benzenesulfonamides as Potent and Selective Inhibitors of Human Carbonic Anhydrases II and VII Counteract Allodynia in a Mouse Model of Oxaliplatin-Induced Neuropathy.
Alessio NocentiniVincenzo AlterioSilvia BuaLaura MicheliDavide EspositoMartina BuonannoGianluca BartolucciSameh M OsmanZeid Abdullah ALOthmanRoberto CirilliMarco PieriniSimona Maria MontiLorenzo Di Cesare MannelliPaola GratteriCarla GhelardiniGiuseppina De SimoneClaudiu T SupuranPublished in: Journal of medicinal chemistry (2020)
Human carbonic anhydrase (CA; EC 4.2.1.1) isoforms II and VII are implicated in neuronal excitation, seizures, and neuropathic pain (NP). Their selective inhibition over off-target CAs is expected to produce an anti-NP action devoid of side effects due to promiscuous CA modulation. Here, a drug design strategy based on the observation of (dis)similarities between the target CA active sites was planned with benzenesulfonamide derivatives and, for the first time, a phosphorus-based linker. Potent and selective CA II/VII inhibitors were identified among the synthesized phenyl(thio)phosphon(amid)ates 3-22. X-ray crystallography depicted the binding mode of phosphonic acid 3 to both CAs II and VII. The most promising derivatives, after evaluation of their stability in acidic media, were tested in a mouse model of oxaliplatin-induced neuropathy. The most potent compound racemic mixture was subjected to HPLC enantioseparation, and the identification of the eutomer, the (S)-enantiomer, allowed to halve the dose totally relieving allodynia in mice.
Keyphrases
- neuropathic pain
- mouse model
- endothelial cells
- high glucose
- spinal cord
- spinal cord injury
- crispr cas
- diabetic rats
- induced pluripotent stem cells
- genome editing
- protein kinase
- drug induced
- ms ms
- high resolution
- mass spectrometry
- emergency department
- pluripotent stem cells
- magnetic resonance imaging
- ionic liquid
- risk assessment
- simultaneous determination
- magnetic resonance
- high fat diet induced
- type diabetes
- high performance liquid chromatography
- adipose tissue
- dual energy
- tandem mass spectrometry
- bioinformatics analysis
- energy transfer