Qneibi Mohammad, Hawash Mohammed, Bdir Sosana, Bdair Mohammad, Idais Tala, Sarhan Iyas, Touqan Joud
Department of Biomedical Sciences, Faculty of Medicine and Health Sciences, An-Najah National University, P400 Nablus, Palestine.
Pharmaceutical Chemistry and Technology Division, Faculty of Pharmacy, An-Najah National University, P400 Nablus, Palestine.
J Xenobiot. 2025 Mar 8;15(2):40. doi: 10.3390/jox15020040.
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 Ca-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.
异恶唑甲酰胺衍生物是离子型谷氨酸受体的有趣调节剂;更具体地说,它们基于非阿片类途径的潜在镇痛活性引发了广泛研究。α-氨基-3-羟基-5-甲基-4-异恶唑丙酸(AMPA)受体,尤其是在脊髓背角高度表达的钙通透亚型,在伤害性感受传递和炎性疼痛中起关键作用。在此,研究了这些衍生物对AMPA受体活性的神经调节作用,重点关注它们作为AMPA受体调节剂的潜力,AMPA受体是与疼痛和神经疾病相关的靶点。采用全细胞膜片钳技术进行电生理记录,以研究12种异恶唑-4-甲酰胺衍生物(CIC-1-12)对AMPA受体全细胞电流和动力学的影响,包括失活和脱敏。作为AMPA受体活性抑制剂测试的异恶唑-4-甲酰胺衍生物非常有效,CIC-1的抑制率为8倍,CIC-2的抑制率为7.8倍。此外,这些化合物深刻改变了同聚体和异聚体受体亚基的生物物理门控特性。这些发现强调了异恶唑-4-甲酰胺衍生物作为AMPA受体调节剂的潜力所带来的治疗前景。它们影响受体活性和门控特性的能力使它们成为未来控制疼痛治疗的有希望的候选药物。