瑞芬太尼诱导的小胶质细胞炎症:PAK4介导的NF-κB/NLRP3通路激活与痛觉过敏的发生

Remifentanil-induced inflammation in microglial cells: Activation of the PAK4-mediated NF-κB/NLRP3 pathway and onset of hyperalgesia

作者信息Chang Cui, Xiaochu Wu, Shuhua Dong, Benzhen Chen, Tianyao Zhang
PMID39322089
发布时间2025-01
DOI10.1016/j.bbi.2024.09.018

实验完整度

研究包含体内动物模型(大鼠足底切口+瑞芬太尼输注)和体外细胞模型(LPS诱导HMC3细胞炎症),并进行了蛋白组学、Western blot、IHC、ELISA、免疫荧光及基因沉默等验证,功能与机制研究完整。

主要模型

SD大鼠瑞芬太尼诱导术后痛觉过敏模型 HMC3人小胶质细胞LPS炎症模型

重点核对

SD大鼠(9-11周龄,280-300g) 瑞芬太尼静脉输注剂量1.2 μg/(kg·min),持续90分钟 鞘内注射PF-3758309(38 mM,10 μL)或MCC950(18 mM,10 μL) 术后2小时和2天检测脊髓组织蛋白和炎症因子 HMC3细胞处理:LPS 20 μg/ml,MCC950(5、15、25 μM)或PF-3758309(1、5、10 μM)处理24小时

摘要

Background: The perioperative use of remifentanil is associated with postoperative hyperalgesia, which can impair recovery and extend hospitalization. Recent studies have revealed that microglia-mediated activation of the NLRP3 inflammasome plays a critical role in opioid-induced hyperalgesia, with NF-κB acting as a pivotal activation point for NLRP3. Despite these findings, the specific molecular mechanisms underlying remifentanil-induced postoperative hyperalgesia remain unclear. This study aims to develop a model of remifentanil-induced hyperalgesia and investigate the molecular mechanisms, focusing on the NF-κB/NLRP3 pathway, using both in vitro and in vivo approaches. Method: We established a remifentanil-induced hyperalgesia model and performed proteomic analysis to identify differential protein expression in the spinal cord tissue of rats. NLRP3 or PAK4 antagonists were administered intrathecally in vivo, and mechanical pain thresholds in the hind paws were measured using Von Frey testing. In vitro, we applied NLRP3 or PAK4 inhibitors or used lentivirus infection to silence PAK4, NF-κB, and NLRP3 genes. Protein expression was assessed through immunohistochemistry, immunofluorescence, and Western blotting. Additionally, ELISA was performed to measure IL-1β and IL-18 levels, and RT-qPCR was conducted to evaluate the transcription of target genes. Results: Proteomic analysis revealed that remifentanil upregulates PAK4 protein in spinal cord tissue two hours after the surgery. In addition, remifentanil induces morphological changes in the spinal cord dorsal horn, characterized by increased expression of PAK4, p-p65, NLRP3 and Iba-1 proteins, which in turn leads to elevated IL-1β and IL-18 levels and an inflammatory response. Intrathecal injection of NLRP3 or PAK4 inhibitors mitigates remifentanil-induced hyperalgesia and associated changes. In vitro, downregulation of PAK4 inhibits the increase in PAK4, p-p65, NLRP3 and Caspase-1 induced by LPS. Conversely, the downregulation of NLRP3 does not impact the levels of PAK4 and p-p65 proteins, aligning with the in vivo results and suggesting that PAK4 acts as an upstream signaling molecule of NLRP3. Conclusion: Remifentanil can increase PAK4 expression in spinal cord dorsal horn cells by activating the NF-κB/NLRP3 pathway and mediating microglial activation, thereby contributing to postoperative hyperalgesia.

实验结论

提炼研究问题、关键发现与证据,快速把握文章的核心贡献。

研究问题
瑞芬太尼诱导的术后痛觉过敏是否由脊髓小胶质细胞中PAK4介导的NF-κB/NLRP3通路激活所引起?
核心机制
瑞芬太尼激活脊髓中PAK4,PAK4作为上游信号分子通过NF-κB/NLRP3通路促进小胶质细胞激活,释放炎症因子IL-1β和IL-18,导致术后痛觉过敏。
主要证据
蛋白组学发现瑞芬太尼输注后脊髓PAK4上调;Western blot、IHC和ELISA显示PAK4、p-p65、NLRP3、Iba-1及IL-1β/IL-18水平升高;鞘内注射PAK4抑制剂PF-3758309或NLRP3抑制剂MCC950减轻机械性痛觉过敏并抑制相关蛋白和炎症因子表达;HMC3细胞中PAK4基因沉默抑制NF-κB和NLRP3表达,而NLRP3沉默不影响PAK4,证实PAK4位于上游。
研究意义
该研究揭示了瑞芬太尼诱发术后痛觉过敏的新分子机制,为临床干预提供了新靶点,可能有助于减轻患者疼痛并缩短恢复时间。

研究路径

按研究推进顺序梳理实验设计、验证步骤与关键观察。

1

建立瑞芬太尼诱导的术后痛觉过敏大鼠模型

模拟临床瑞芬太尼麻醉后痛觉过敏,验证模型有效性

SD大鼠麻醉后经尾静脉持续输注瑞芬太尼(1.2 μg/(kg·min),2.7 ml,90 min),并实施右后足切口手术;对照组输注生理盐水。

2

检测模型大鼠脊髓中PAK4和NLRP3通路蛋白表达

验证瑞芬太尼是否影响PAK4及NF-κB/NLRP3通路相关蛋白表达

术后2小时和2天取材,通过蛋白组学、Western blot、免疫组化和ELISA检测脊髓组织中PAK4、p-p65、NLRP3、Iba-1及炎症因子IL-1β和IL-18的表达。

3

在HMC3细胞中验证LPS诱导的炎症模型及抑制剂效果

确定PAK4抑制剂PF-3758309和NLRP3抑制剂MCC950的适宜浓度及对通路蛋白的影响

用CCK-8检测抑制剂毒性,用Western blot检测不同浓度抑制剂对LPS诱导的HMC3细胞中PAK4、p-p65、NLRP3和Caspase-1表达的影响。

4

通过基因沉默验证信号通路上下游关系

阐明PAK4、NF-κB和NLRP3之间的上下游调控关系

使用慢病毒介导的shRNA分别沉默HMC3细胞中的PAK4、NF-κB和NLRP3基因,用RT-qPCR和Western blot检测沉默效率及下游蛋白表达变化。

5

在动物模型中给予抑制剂评估对痛觉过敏的影响

验证PAK4和NLRP3在瑞芬太尼诱导痛觉过敏中的功能作用

大鼠鞘内注射PF-3758309或MCC950,通过Von Frey纤维丝测量机械性痛阈(PMWT)评估痛觉过敏程度。

6

评估抑制剂对脊髓蛋白和炎症因子的影响

验证抑制剂是否阻断PAK4/NF-κB/NLRP3通路及小胶质细胞激活

术后2小时和2天取材,通过Western blot、IHC和免疫荧光检测脊髓组织中PAK4、p-p65、NLRP3、Iba-1表达及小胶质细胞形态,ELISA检测IL-1β和IL-18释放。

研究方法

按研究目的归类文中使用的方法,便于定位所需技术。

产品清单

实验环节名称品牌货号
PF-3758309SelleckS7094
MCC950MedChemExpressHY-12815
最低必需培养基----
胎牛血清Biological Industries--
青霉素-链霉素溶液PuNuosai--
二甲基亚砜SolarbioD8371
胰蛋白酶----
CCK-8试剂盒SolarbioCA1210
SDT裂解液----
C18柱----
TMT标记试剂盒Thermo--
高pH反相肽分离试剂盒----
AKTA Purifier 100----
Easy nLC----
Q-Exactive质谱仪Thermo Scientific--
RIPA裂解液----
PVDF膜----
抗PAK4抗体Proteintech14685-1-AP
抗PAK4抗体Santa Cruz Biotechnologysc-393367
抗NF-κB p65磷酸化抗体Abcamab194726
抗Iba1抗体Abcamab283319
抗Iba1抗体Proteintech10904-1-AP
抗Caspase-1抗体Proteintech22915-1-AP
抗NLRP3抗体InvitrogenPA5-79740
抗NLRP3抗体Abcamab263899
抗β肌动蛋白抗体ZSGB-BIOTA-09
HRP标记山羊抗兔IgGWuhan Fine Biotech Co., Ltd.--
HRP标记兔抗小鼠IgGWuhan Fine Biotech Co., Ltd.--
Alexa Fluor 555标记驴抗兔IgGBiyuntianA0453
Alexa Fluor 488标记山羊抗小鼠IgGBiyuntianA0428
DAB显色液Zhongshan Golden BridgePV-9000
脂多糖Solarbio--
聚凝胺----
嘌呤霉素----
TRIZOL试剂TIANGEN--
ExonScript反转录预混液Rongwei Gene--
Fast SYBR Green qPCR预混液Rongwei Gene--
BIO-RAD CFX96实时荧光定量PCR仪Bio-Rad--
24G留置针----
TG175-8针和6-0尼龙缝线----
IL-18 ELISA试剂盒--RAB1147
IL-1β ELISA试剂盒--RAB0278
荧光显微镜Olympus--
显微镜Olympus--
Von Frey纤维丝----

关键环节

汇总复现实验时建议重点确认的条件及原文阅读提示。

环节核对要点
动物模型建立
大鼠品系、性别、年龄、体重;麻醉方法;瑞芬太尼输注剂量和时长;手术切口位置和大小
阅读提示:Materials and methods 4.1 Animals, 4.2 Drugs, 4.13 Preparation of the right hind paw incision pain model
鞘内注射
给药剂量、体积、时间点;药物配制
阅读提示:Materials and methods 4.6 Experiment 2
行为学测试
测试时间点;Von Frey filament使用方法;阈值判定标准
阅读提示:Materials and methods 4.19 PMWT; Figure 6 legend
分子检测
组织取材时间;蛋白提取方法;抗体稀释比例;ELISA试剂盒
阅读提示:Materials and methods 4.15-4.18; Figure legends 2 and 7
细胞实验
HMC3细胞培养条件;LPS浓度和处理时间;抑制剂浓度和处理方案;基因沉默方法
阅读提示:Materials and methods 4.7-4.11; Figures 3-5 legends