Sodium butyrate restored TRESK current controlling neuronal hyperexcitability in a mouse model of oxaliplatin-induced peripheral neuropathic pain.

IF 5.6 2区 医学 Q1 CLINICAL NEUROLOGY
Idy H T Ho, Yidan Zou, Kele Luo, Fenfen Qin, Yanjun Jiang, Qian Li, Tingting Jin, Xinyi Zhang, Huarong Chen, Likai Tan, Lin Zhang, Tony Gin, William K K Wu, Matthew T V Chan, Changyu Jiang, Xiaodong Liu
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引用次数: 0

Abstract

Chemotherapy-induced peripheral neuropathy (CIPN) and its related pain are common challenges for patients receiving oxaliplatin chemotherapy. Oxaliplatin accumulation in dorsal root ganglion (DRGs) is known to impair gene transcription by epigenetic dysregulation. We hypothesized that sodium butyrate, a pro-resolution short-chain fatty acid, inhibited histone acetylation in DRGs and abolished K+ channel dysregulation-induced neuronal hyperexcitability after oxaliplatin treatment. Mechanical allodynia and cold hyperalgesia of mice receiving an accumulation of 15 ​mg/kg oxaliplatin, with or without intraperitoneal sodium butyrate supplementation, were assessed using von Frey test and acetone evaporation test. Differential expressions of histone deacetylases (HDACs) and pain-related K+ channels were quantified with rt-qPCR and protein assays. Immunofluorescence assays of histone acetylation at H3K9/14 were performed in primary DRG cultures treated with sodium butyrate. Current clamp recording of action potentials and persistent outward current of Twik-related-spinal cord K+ (TRESK) channel were recorded in DRG neurons with small diameters extract. Accompanied by mechanical allodynia and cold hyperalgesia, HDAC1 was upregulated in mice receiving oxaliplatin treatment. Sodium butyrate enhanced global histone acetylation at H3K9/14 in DRG neurons. In vivo sodium butyrate supplementation restored oxaliplatin-induced Kcnj9 and Kcnk18 expression and pain-related behaviors in mice for at least 14 days. Oxaliplatin-induced increase in action potentials frequencies and decrease in magnitudes of KCNK18-related current were reversed in mice receiving sodium butyrate supplementation. This study suggests that sodium butyrate was a useful agent to relieve oxaliplatin-mediated neuropathic pain.

丁酸钠可恢复奥沙利铂诱发周围神经痛小鼠模型中控制神经元过度兴奋性的TRESK电流。
化疗诱发的周围神经病变(CIPN)及其相关疼痛是接受奥沙利铂化疗的患者面临的共同挑战。众所周知,奥沙利铂在背根神经节(DRGs)中的蓄积会通过表观遗传失调损害基因转录。我们假设丁酸钠(一种促进溶解的短链脂肪酸)可抑制DRGs中的组蛋白乙酰化,并消除奥沙利铂治疗后K+通道失调引起的神经元过度兴奋。用von Frey试验和丙酮蒸发试验评估了小鼠在腹腔补充或不补充15毫克/千克奥沙利铂后的机械异感和冷过痛。组蛋白去乙酰化酶(HDACs)和疼痛相关 K+ 通道的差异表达通过 rt-qPCR 和蛋白质检测进行量化。在经丁酸钠处理的原代DRG培养物中进行了组蛋白乙酰化H3K9/14的免疫荧光检测。在提取小直径的DRG神经元中记录了动作电位的钳夹记录和Twik相关脊髓K+(TRESK)通道的持续外向电流。在接受奥沙利铂治疗的小鼠中,伴随着机械异感和冷超痛症,HDAC1被上调。丁酸钠增强了DRG神经元H3K9/14处的全局组蛋白乙酰化。在体内补充丁酸钠可恢复奥沙利铂诱导的小鼠 Kcnj9 和 Kcnk18 表达以及疼痛相关行为至少 14 天。补充丁酸钠的小鼠可逆转奥沙利铂诱导的动作电位频率增加和 KCNK18 相关电流幅度的降低。这项研究表明,丁酸钠是缓解奥沙利铂介导的神经病理性疼痛的有效药物。
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来源期刊
Neurotherapeutics
Neurotherapeutics 医学-神经科学
CiteScore
11.00
自引率
3.50%
发文量
154
审稿时长
6-12 weeks
期刊介绍: Neurotherapeutics® is the journal of the American Society for Experimental Neurotherapeutics (ASENT). Each issue provides critical reviews of an important topic relating to the treatment of neurological disorders written by international authorities. The Journal also publishes original research articles in translational neuroscience including descriptions of cutting edge therapies that cross disciplinary lines and represent important contributions to neurotherapeutics for medical practitioners and other researchers in the field. Neurotherapeutics ® delivers a multidisciplinary perspective on the frontiers of translational neuroscience, provides perspectives on current research and practice, and covers social and ethical as well as scientific issues.
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