Heat Shock Protein 22 Attenuates Nerve Injury-induced Neuropathic Pain Via Improving Mitochondrial Biogenesis and Reducing Oxidative Stress Mediated By Spinal AMPK/PGC-1α Pathway in Male Rats.

Longqing Zhang, Lin Liu, Danyang Li, Jiayi Wu, Shaojie Gao, Fanhe Song, Yaqun Zhou, Daiqiang Liu, Wei Mei
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Abstract

Heat shock protein 22 (hsp22) plays a significant role in mitochondrial biogenesis and redox balance. Moreover, it's well accepted that the impairment of mitochondrial biogenesis and redox imbalance contributes to the progress of neuropathic pain. However, there is no available evidence indicating that hsp22 can ameliorate mechanical allodynia and thermal hyperalgesia, sustain mitochondrial biogenesis and redox balance in rats with neuropathic pain. In this study, pain behavioral test, western blotting, immunofluorescence staining, quantitative polymerase chain reaction, enzyme-linked immunosorbent assay, and Dihydroethidium staining are applied to confirm the role of hsp22 in a male rat model of spared nerve injury (SNI). Our results indicate that hsp22 was significantly decreased in spinal neurons post SNI. Moreover, it was found that intrathecal injection (i.t.) with recombinant heat shock protein 22 protein (rhsp22) ameliorated mechanical allodynia and thermal hyperalgesia, facilitated nuclear respiratory factor 1 (NRF1)/ mitochondrial transcription factor A (TFAM)-dependent mitochondrial biogenesis, decreased the level of reactive oxygen species (ROS), and suppressed oxidative stress via activation of spinal adenosine 5'monophosphate-activated protein kinase (AMPK)/ peroxisome proliferative activated receptor γ coactivator 1α (PGC-1α) pathway in male rats with SNI. Furthermore, it was also demonstrated that AMPK antagonist (compound C, CC) or PGC-1α siRNA reversed the improved mechanical allodynia and thermal hyperalgesia, mitochondrial biogenesis, oxidative stress, and the decreased ROS induced by rhsp22 in male rats with SNI. These results revealed that hsp22 alleviated mechanical allodynia and thermal hyperalgesia, improved the impairment of NRF1/TFAM-dependent mitochondrial biogenesis, down-regulated the level of ROS, and mitigated oxidative stress through stimulating the spinal AMPK/PGC-1α pathway in male rats with SNI.

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热休克蛋白22在雄性大鼠脊髓AMPK/PGC-1α通路介导下通过改善线粒体生物生成和减少氧化应激减轻神经损伤引起的神经性疼痛
热休克蛋白 22(hsp22)在线粒体生物生成和氧化还原平衡中发挥着重要作用。此外,线粒体生物生成和氧化还原失衡的损害会导致神经病理性疼痛的进展,这一点已被广泛接受。然而,目前还没有证据表明 hsp22 可以改善神经性疼痛大鼠的机械异感和热痛,维持线粒体的生物生成和氧化还原平衡。本研究通过疼痛行为测试、Western 印迹、免疫荧光染色、定量聚合酶链式反应、酶联免疫吸附试验和二氢乙锭染色来证实 hsp22 在雄性大鼠裸神经损伤(SNI)模型中的作用。结果表明,SNI 后脊髓神经元中的 hsp22 明显减少。此外,我们还发现鞘内注射(i.t.重组热休克蛋白 22 蛋白(rhsp22)可改善机械异感和热痛,促进核呼吸因子 1(NRF1)/线粒体转录因子 A(TFAM)依赖的线粒体生物生成、通过激活脊髓腺苷酸-5'单磷酸激活蛋白激酶(AMPK)/过氧化物酶体增殖激活受体γ辅助激活剂 1α (PGC-1α)途径,降低活性氧(ROS)水平,并抑制氧化应激。此外,研究还表明,AMPK拮抗剂(化合物C,CC)或PGC-1α siRNA逆转了rhsp22诱导的SNI雄性大鼠机械异感和热痛的改善、线粒体生物生成、氧化应激和ROS的减少。这些结果表明,hsp22通过刺激脊髓AMPK/PGC-1α通路,缓解了SNI雄性大鼠的机械异感和热痛,改善了NRF1/TFAM依赖的线粒体生物生成障碍,下调了ROS水平,并减轻了氧化应激。
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