Li Yujie, Song Yuanyuan, Yang Xin, Zhu Haiwei, Yu Hao, Kong Yuan
Department of Endocrinology, General Hospital of Northern Theater Command, No. 83 Wenhua Road, Shenyang, 110000, Liaoning Province, China.
Department of Endocrinology, The Second Affiliated Hospital of Baotou Medical College, Baotou, 014030, China.
J Physiol Biochem. 2025 Sep 13. doi: 10.1007/s13105-025-01120-8.
Cold injury presents a significant health challenge, causing tissue damage due to prolonged exposure to low temperatures. This study examines menthol's protective effects against cold injury, focusing on its activation of transient receptor potential cation channel subfamily M member 8 (TRPM8), a "cold-sensing" receptor, to stimulate thermogenesis in brown adipose tissue (BAT). Male C57BL/6J mice were treated with menthol for 21 days and exposed to -20 °C. Core body temperature, activity levels, and cold injury severity were measured. Network pharmacology methods identified TRPM8 as a potential target, confirmed through molecular docking and pathway analysis. Further experiments inhibited TRPM8 to evaluate its role in menthol-induced thermogenesis and cold tolerance. Menthol significantly raised core body temperature, improved cold tolerance, and reduced cold injury severity in treated mice. Network pharmacology analysis highlighted TRPM8 as a key regulator of BAT thermogenesis through the PKA/UCP1 pathway. TRPM8 inhibition diminished menthol's effect, underscoring its essential role in menthol-mediated thermogenesis. This study demonstrates that menthol activates TRPM8 in BAT, enhancing thermogenesis to prevent cold injury. These findings suggest menthol as a promising natural agent for cold injury prevention, with TRPM8 as a potential therapeutic target.
冷损伤带来了重大的健康挑战,长时间暴露于低温会导致组织损伤。本研究考察了薄荷醇对冷损伤的保护作用,重点关注其对瞬时受体电位阳离子通道M亚家族成员8(TRPM8)的激活,TRPM8是一种“冷敏”受体,可刺激棕色脂肪组织(BAT)产热。将雄性C57BL/6J小鼠用薄荷醇处理21天,然后暴露于-20°C环境。测量核心体温、活动水平和冷损伤严重程度。网络药理学方法确定TRPM8为潜在靶点,并通过分子对接和通路分析得到证实。进一步的实验抑制TRPM8以评估其在薄荷醇诱导的产热和耐寒性中的作用。薄荷醇显著提高了处理后小鼠的核心体温,改善了耐寒性,并降低了冷损伤严重程度。网络药理学分析强调TRPM8是通过PKA/UCP1途径调节BAT产热的关键因子。抑制TRPM8减弱了薄荷醇的作用,突出了其在薄荷醇介导的产热中的重要作用。本研究表明,薄荷醇激活BAT中的TRPM8,增强产热以预防冷损伤。这些发现表明,薄荷醇有望成为预防冷损伤的天然药物,TRPM8是一个潜在的治疗靶点。