Nociceptor-localized KCC2 suppresses brachial plexus avulsion-induced neuropathic pain and related central sensitization.

IF 6.1 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Hang Xian, Huan Guo, Yuan-Ying Liu, Sui-Bin Ma, Rui Zhao, Jian-Lei Zhang, Hang Zhang, Rou-Gang Xie, Xu-Cheng Guo, Jie Ren, Sheng-Xi Wu, Ceng Luo, Rui Cong
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引用次数: 0

Abstract

Lack in understanding of the mechanism on brachial plexus avulsion (BPA)-induced neuropathic pain (NP) is the key factor restricting its treatment. In the current investigation, we focused on the nociceptor-localized K+-Cl- cotransporter 2 (KCC2) to investigate its role in BPA-induced NP and related pain sensitization. A novel mice model of BPA on the middle trunk (C7) was established, and BPA mice showed a significant reduction in mechanical withdrawal threshold of the affected fore- and hind- paws without affecting the motor function through CatWalk Gait analysis. Decreased expression of KCC2 in dorsal root ganglion (DRG) was detected through Western blot and FISH technology after BPA. Overexpression of KCC2 in DRG could reverse the hyperexcitability of DRG neurons and alleviate the pain of BPA mice synchronously. Meanwhile, the calcium response signal of the affected SDH could be significantly reduced through above method using spinal cord fiber photometry. The synthesis and release of brain-derived neurotrophic factor (BDNF) was also proved reduction through overexpression of KCC2 in DRG, which indicates BDNF can also act as the downstream role in this pain state. As in human-derived tissues, we found decreased expression of KCC2 and increased expression of BDNF and TrκB in avulsed roots of BPA patients compared with normal human DRGs. Our results indicate that nociceptor-localized KCC2 can suppress BPA-induced NP, and peripheral sensitization can be regulated to reverse central sensitization by targeting KCC2 in DRG at the peripheral level through BDNF signaling. The consistent results in both humanity and rodents endow great potential to future transformation of clinical practice.

伤害感受器定位的KCC2抑制臂丛撕脱引起的神经性疼痛和相关的中枢致敏。
臂丛撕脱伤(BPA)致神经性疼痛(NP)的机制缺乏认识是制约其治疗的关键因素。在目前的研究中,我们重点研究了伤害感受器定位的K+- cl -共转运蛋白2 (KCC2),以研究其在bpa诱导的NP和相关的疼痛致敏中的作用。建立了一种新型的双酚A小鼠中躯干(C7)模型,通过CatWalk步态分析,双酚A小鼠在不影响运动功能的情况下,显著降低了受影响前肢和后肢的机械戒断阈值。通过Western blot和FISH技术检测BPA后大鼠背根神经节(DRG)中KCC2的表达降低。在DRG中过表达KCC2可逆转DRG神经元的高兴奋性,同时减轻BPA小鼠的疼痛。同时,利用脊髓纤维光度法,通过上述方法可以显著降低SDH的钙响应信号。脑源性神经营养因子(brain-derived neurotrophic factor, BDNF)的合成和释放也通过DRG中KCC2的过表达得到了减少,这表明BDNF在这种疼痛状态中也可能起到下游作用。与人源性组织一样,我们发现与正常人DRGs相比,BPA撕脱根患者的KCC2表达减少,BDNF和TrκB表达增加。我们的研究结果表明,伤害感受器定位的KCC2可以抑制bpa诱导的NP,并且通过BDNF信号传导在外周水平上靶向DRG中的KCC2,可以调节外周致敏以逆转中枢致敏。人类和啮齿动物的一致结果赋予了临床实践未来转变的巨大潜力。
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来源期刊
Cell and Bioscience
Cell and Bioscience BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
10.70
自引率
0.00%
发文量
187
审稿时长
>12 weeks
期刊介绍: Cell and Bioscience, the official journal of the Society of Chinese Bioscientists in America, is an open access, peer-reviewed journal that encompasses all areas of life science research.
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