背根神经节卫星胶质细胞NR2A-Wnt-TLR2信号轴的激活参与糖尿病小鼠神经损伤引起的神经性疼痛

IF 4.6 2区 医学 Q1 NEUROSCIENCES
Molecular Neurobiology Pub Date : 2025-06-01 Epub Date: 2025-02-18 DOI:10.1007/s12035-025-04754-3
Yan-Yan Zhang, De-Xin Zhu, Mu-Yun Wang, Ya-Ting Yi, Yu-Heng Feng, Cheng Zhou, Chun-Jie Li, Fei Liu, Jie-Fei Shen
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引用次数: 0

摘要

糖尿病周围神经性疼痛(DPNP)是一种常见的糖尿病(DM)并发症,可能是由于背根神经节(DRG)的卫星胶质细胞(SGCs)激活,潜在地增强了外周致敏性。n -甲基- d -天冬氨酸受体(NMDAR)亚型NR2A和toll样受体(TLR)2在神经免疫相互作用中起关键作用。然而,它们在DRG的SGCs中的作用以及介导DPNP外周致敏的确切机制尚不清楚。本研究发现,在体外葡萄糖和NMDA刺激增加的情况下,DRG的SGCs中胶质纤维酸性蛋白(GFAP)、NR2A和TLR2的表达显著增加。此外,观察到白细胞介素(IL)-6和神经生长因子(NGF)的上调。值得注意的是,慢病毒诱导的NR2A敲低(KD)和C29 (TLR2抑制剂)明显阻断了NMDA和葡萄糖升高引起的上述SGCs变化。行为学实验显示,与非DM背景小鼠相比,注射链脲佐菌素(STZ)相关的DM背景小鼠坐骨神经结扎(SNL)引起的机械和热敏感性更为明显,而在SGCs和TLR2 KO中,NR2A条件敲除(CKO)可显著减轻这种敏感性。此外,免疫荧光(IF)结果显示NR2A和TLR2在DRG的神经元和SGCs中共表达。DM小鼠SNL后NR2A、TLR2、GFAP、β-catenin、p-GSK-3β、p-核因子κ (NF-κ)-B、IL-6、NGF、Bcl-2相关X蛋白(Bax)、Caspase 3的上调和Bcl-2的显著下调与葡萄糖和NMDA处理后的变化一致。NR2A CKO和Wnt信号通路抑制可阻断TLR2的上调。此外,TLR2 - KO和NF-κB通路抑制改变了DM背景下与神经损伤相关的SGCs激活、IL-6上调、NGF分泌和凋亡增加。综上所述,NR2A-Wnt-TLR2信号轴的激活通过影响SGCs的激活、促炎细胞因子和NGF的合成和分泌,促进SGCs的凋亡,从而加剧DM背景下周围神经损伤相关np,介导DRG外周致敏。我们的研究揭示了SGCs的NR2A-Wnt-TLR2信号轴在介导DPNP的产生和维持中的作用,并提示靶向该信号轴可能是一种很有前景的DPNP治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Activation of NR2A-Wnt-TLR2 Signaling Axis in Satellite Glial Cells of the Dorsal Root Ganglion Contributes to Neuropathic Pain Induced by Nerve Injury in Diabetic Mice.

Diabetic peripheral neuropathic pain (DPNP), a common diabetic mellitus (DM) complication, may result from the activation of satellite glial cells (SGCs) in the dorsal root ganglion (DRG), potentially enhancing peripheral sensitization. The N-methyl-D-aspartate receptor (NMDAR) subtype NR2A and Toll-like receptor (TLR)2 play key roles in neuroimmune interactions. However, their roles in SGCs of DRG and the precise mechanisms mediating peripheral sensitization in DPNP remain unclear. Here, we found that the expression of glial fibrillary acidic protein (GFAP), NR2A, and TLR2 in SGCs from DRG significantly increased under increased glucose and NMDA stimulation in vitro. Additionally, upregulation of interleukin (IL)-6 and nerve growth factor (NGF) was observed. Notably, lentivirus-induced NR2A knockdown (KD) and C29 (TLR2 inhibitor) significantly blocked the above SGCs changes induced by NMDA and increased glucose. Behavior tests showed mechanical and thermal sensitivities induced by sciatic nerve ligation (SNL) were more obvious in DM background related to streptozotocin (STZ) injection than non-DM background mice, which were significantly alleviated by NR2A conditional knockout (CKO) in SGCs and TLR2 KO. Moreover, immunofluorescence (IF) results revealed the co-expression of NR2A and TLR2 in neurons and SGCs in the DRG. Following SNL in DM mice, the upregulation of NR2A, TLR2, GFAP, β-catenin, p-GSK-3β, p-nuclear factor kappa (NF-κ)-B, IL-6, NGF, Bcl-2-associated X protein (Bax), and Caspase 3, and the significant downregulation of Bcl-2 were consistent with the changes observed after increased glucose and NMDA treatment. The upregulation of TLR2 was blocked by NR2A CKO and Wnt signal pathway inhibition. Additionally, the activation of SGCs, upregulated IL-6 as well as NGF secretion and increased apoptosis, associated with nerve injury in DM background were altered by TLR2 KO and NF-κB pathway inhibition. In conclusion, the activation of the NR2A-Wnt-TLR2 signaling axis mediated peripheral sensitization in the DRG by influencing SGCs' activation, and the synthesis and secretion of pro-inflammatory cytokines and NGF, promoting SGCs' apoptosis, thus exacerbating a peripheral nerve injury related-NP in DM background. Our study provided insights into the role of NR2A-Wnt-TLR2 signaling axis of SGCs in mediating the generation and maintenance of DPNP and suggested targeting this signaling axis may be a promising therapeutic approach for DPNP.

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来源期刊
Molecular Neurobiology
Molecular Neurobiology 医学-神经科学
CiteScore
9.00
自引率
2.00%
发文量
480
审稿时长
1 months
期刊介绍: Molecular Neurobiology is an exciting journal for neuroscientists needing to stay in close touch with progress at the forefront of molecular brain research today. It is an especially important periodical for graduate students and "postdocs," specifically designed to synthesize and critically assess research trends for all neuroscientists hoping to stay active at the cutting edge of this dramatically developing area. This journal has proven to be crucial in departmental libraries, serving as essential reading for every committed neuroscientist who is striving to keep abreast of all rapid developments in a forefront field. Most recent significant advances in experimental and clinical neuroscience have been occurring at the molecular level. Until now, there has been no journal devoted to looking closely at this fragmented literature in a critical, coherent fashion. Each submission is thoroughly analyzed by scientists and clinicians internationally renowned for their special competence in the areas treated.
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