#Isoxazole-based
#Medsky🧪 #IDsky #immunosky #Neurosky #publichealth Based on recent studies , a systemic increase of AMPAR (Glutamate α-amino-3-hydroxy-5-methyl-4-isoxazole propionic acid receptor is a principal mediator of glutamatergic synaptic functions and is crucial for learning and memory,
October 5, 2025 at 5:48 AM
A study from Seoul examined the role of TM4SF5 in liver cancer.

Researchers found that isoxazole-based drugs can block TM4SF5’s suppression of NK cells, restoring immune defenses and inhibiting tumor growth in mice.

www.nature.com/articles/s41...
www.nature.com
January 21, 2025 at 3:32 PM
RRIDs were included in this European Journal of Medicinal Chemistry paper. We value the author's support of reproducibility. #accelerateopenscience #OpenScience #accelerateopenscience
Identification of Isoxazole-based TRPA1 Inhibitors with Analgesic Effects in Vivo
doi.org
May 24, 2025 at 7:00 AM
RRID:Addgene_62988, was just reported to be used in "Isoxazole-based molecules restore NK cell immune surveillance in hepatocarcinogenesis by targeting TM4SF5 and SLAMF7 linkage". Thank you for making your methods matter! #reproducibility #methodsmatter
doi.org
February 21, 2025 at 8:01 AM
🚀 Our latest paper is out in J Med Chem @acsmedi.bsky.social! 🔥 Huge kudos to first authors Troy & Valerij and the amazing teams of @gwolber.bsky.social & Matej Sova for this fantastic collaboration! 🙌 #DrugDiscovery #InnateImmunity #Autoimmune 🔗 pubs.acs.org/doi/full/10.1021/acs.jmedchem.4c03148
Discovery of Novel Isoxazole-Based Small-Molecule Toll-Like Receptor 8 Antagonists
Toll-like receptor 8 (TLR8) recognizes viral and bacterial RNA, initiating inflammatory responses that are crucial for innate immunity. Dysregulated TLR8 signaling contributes to autoimmune diseases, including systemic lupus erythematosus and rheumatoid arthritis, driving chronic inflammation and tissue damage. Therefore, targeting TLR8 has gained attention as a promising therapeutic strategy. We report a novel selective TLR8 antagonist scaffold identified through computational modeling and simulation. In silico-guided rational drug design and synthesis led to potent isoxazole-based compounds that were characterized by structure–activity relationships. The most active compounds inhibited TLR8-mediated signaling in cell lines and primary cells, reduced MyD88 recruitment, suppressed NF-κB- and IRF-dependent signaling, and decreased inflammatory responses. In silico and pharmacological analyses demonstrated competitive binding to the pocket of chemical ligands within the TLR8 dimerization interface. These highly selective and potent TLR8 antagonists possess favorable physicochemical properties, representing potential clinical candidates for TLR8-targeted therapy.
pubs.acs.org
February 14, 2025 at 3:40 PM
Congratulations to Dr. Damian Krysan on his new publication in Nature Communications "Discovery and mechanism of a highly selective, antifungal acetyl-CoA synthetase inhibitor."

doi.org/10.1038/s414...

Read about his work here: pediatrics.medicine.uiowa.edu/news-archive...
Discovery and mechanism of a highly selective, antifungal acetyl-CoA synthetase inhibitor - Nature Communications
Acetyl-CoA synthetases have been proposed as targets for development of new antimicrobial drugs. Here, Jezewski et al. identify isoxazole-based compounds with activity against the pathogenic fungus Cr...
doi.org
November 18, 2025 at 2:43 PM
JoX, Vol. 15, Pages 40: Regulating AMPA Receptors with Isoxazole-4-Carboxamide Derivatives: An Electrophysiological Study
Isoxazole carboxamide derivatives are intriguing modulators of ionotropic glutamate receptors; more specifically, their prospective analgesic activities based on non-opioid pathways have sparked widespread research. α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) receptors, especially Ca2+-permeable subtypes that are highly expressed in the spinal dorsal horn, play a critical role in nociceptive transmission and inflammatory pain. Herein, the neuromodulatory effects of these derivatives on AMPA receptor activity have been studied, focusing on their potential as modulators of AMPA receptors, a target implicated in pain and neurological disorders. The whole-cell patch clamp technique for electrophysiological recordings was used to investigate the effect of twelve isoxazole-4-carboxamide derivatives (CIC-1-12) on AMPA receptors’ whole-cell currents and kinetics, including deactivation and desensitization. The isoxazole-4-carboxamide derivatives tested as inhibitors of AMPA receptor activity were very potent, with an 8-fold inhibition by CIC-1 and a 7.8-fold reduction by CIC-2. Additionally, these compounds profoundly altered the biophysical gating properties of both homomeric and heteromeric receptor subunits. These findings emphasize the therapeutic promise of isoxazole-4-carboxamide derivatives due to their potential as AMPA receptor modulators. Their ability to affect receptor activity and gating properties makes them promising candidates for future treatments for controlling pain.
www.mdpi.com
March 8, 2025 at 8:02 AM
#Isoxazole-based molecules enhance NK cell function by blocking TM4SF5–SLAMF7 interactions, restoring immune surveillance and suppressing HCC progression, thus offering a novel immunotherapy approach against #LiverCancer.
#STTT #OpenAccess: doi.org/10.1038/s413...
April 21, 2026 at 5:35 AM
Hepatocyte TM4SF5 mediates HCC progression by reducing natural killer (NK) cell cytotoxicity, while TM4SF5-specific isoxazole-based small molecules (TSIs) enhance NK cell-mediated #immunosurveillance to mitigate #HCC.

#STTT #OpenAccess: doi.org/10.1038/s413...
October 25, 2025 at 12:35 PM
Hepatocyte TM4SF5 reduces natural killer (NK) cell cytotoxicity to promote #LiverCarcinogenesis and TM4SF5-specific isoxazole-based small molecules mitigate #HCC by increasing NK cell-mediated #immunosurveillance. #medsky

#STTT #OpenAccess: doi.org/10.1038/s413...
August 18, 2025 at 2:32 PM
Isoxazole-based molecules restore NK cell immune surveillance in hepatocarcinogenesis by targeting TM4SF5 and SLAMF7 linkage
www.nature.com/articles/s41...
Isoxazole-based molecules restore NK cell immune surveillance in hepatocarcinogenesis by targeting TM4SF5 and SLAMF7 linkage - Signal Transduction and Targeted Therapy
Signal Transduction and Targeted Therapy - Isoxazole-based molecules restore NK cell immune surveillance in hepatocarcinogenesis by targeting TM4SF5 and SLAMF7 linkage
www.nature.com
January 21, 2025 at 3:16 PM