GDPD3 Deficiency Alleviates Neuropathic Pain and Reprograms Macrophagic Polarization Through PGE2 and PPARγ Pathway.

IF 3.7 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Neurochemical Research Pub Date : 2024-08-01 Epub Date: 2024-05-20 DOI:10.1007/s11064-024-04148-2
Wenqian Li, Youjia Fan, Haizhen Lan, Xiaoxiao Li, Qichao Wu, Rong Dong
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Abstract

The complex mechanism of neuropathic pain involves various aspects of both central and peripheral pain conduction pathways. An effective cure for neuropathic pain therefore remains elusive. We found that deficiency of the gene Gdpd3, encoding a lysophospholipase D enzyme, alleviates the inflammatory responses in dorsal root ganglia (DRG) of mice under neuropathic pain and reduces PE (20:4) and PGE2 in DRG. Gdpd3 deficiency had a stronger analgesic effect on neuropathic pain than Celecoxib, a nonsteroidal anti-inflammatory drug. Gdpd3 deficiency also interferes with the polarization of macrophages, switching from M1 towards M2 phenotype. The PPARγ/ FABP4 pathway was screened by RNA sequencing as functional related with Gdpd3 deficient BMDMs stimulated with LPS. Both protein and mRNA levels of PPARγ in GDPD3 deficient BMDMs were higher than those of the litter control mice. However, GW9962 (inhibitor of PPARγ) could reverse the reprogramming polarization of macrophages caused by GDPD3 deficiency. Therefore, our study suggests that GDPD3 deficiency exerts a relieving effect on neuropathic pain and alleviates neuroinflammation in DRG by switching the phenotype of macrophages from M1 to M2, which was mediated through PGE2 and PPARγ/ FABP4 pathway.

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GDPD3 缺乏可缓解神经性疼痛,并通过 PGE2 和 PPARγ 通路重编程巨噬细胞极化。
神经病理性疼痛的复杂机制涉及中枢和外周疼痛传导途径的各个方面。因此,有效治疗神经病理性疼痛的方法仍然遥遥无期。我们发现,编码溶血磷脂酶 D 的基因 Gdpd3 的缺失可减轻神经病理性疼痛小鼠背根神经节(DRG)的炎症反应,并减少 DRG 中的 PE (20:4) 和 PGE2。与非类固醇抗炎药塞来昔布相比,Gdpd3 缺乏症对神经病理性疼痛的镇痛效果更强。缺乏 Gdpd3 还会干扰巨噬细胞的极化,使其从 M1 转为 M2 表型。通过 RNA 测序筛选了 PPARγ/ FABP4 通路与用 LPS 刺激的 Gdpd3 缺乏症 BMDMs 的功能相关性。在 GDPD3 缺乏的 BMDMs 中,PPARγ 的蛋白和 mRNA 水平均高于同窝对照小鼠。然而,GW9962(PPARγ抑制剂)可以逆转 GDPD3 缺乏导致的巨噬细胞极化重编程。因此,我们的研究表明,GDPD3缺乏通过PGE2和PPARγ/ FABP4通路介导巨噬细胞表型从M1向M2转换,从而对神经病理性疼痛产生缓解作用,并减轻DRG的神经炎症。
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来源期刊
Neurochemical Research
Neurochemical Research 医学-神经科学
CiteScore
7.70
自引率
2.30%
发文量
320
审稿时长
6 months
期刊介绍: Neurochemical Research is devoted to the rapid publication of studies that use neurochemical methodology in research on nervous system structure and function. The journal publishes original reports of experimental and clinical research results, perceptive reviews of significant problem areas in the neurosciences, brief comments of a methodological or interpretive nature, and research summaries conducted by leading scientists whose works are not readily available in English.
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