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人骨髓间充质干细胞及其衍生的细胞外囊泡在减轻骨关节炎小鼠感觉神经元过度兴奋和疼痛行为中的作用。

Role of Human Mesenchymal Stem Cells and Derived Extracellular Vesicles in Reducing Sensory Neuron Hyperexcitability and Pain Behaviors in Murine Osteoarthritis.

机构信息

Department of Veterinary Medicine, University of Cambridge, UK.

Department of Surgery and Department of Medicine, University of Cambridge, UK.

出版信息

Arthritis Rheumatol. 2023 Mar;75(3):352-363. doi: 10.1002/art.42353. Epub 2022 Dec 28.

Abstract

OBJECTIVE

Mesenchymal stem/stromal cells (MSCs) and MSC-derived extracellular vesicles (MSC-EVs) have been reported to alleviate pain in patients with knee osteoarthritis (OA). We undertook this study to determine whether MSCs and/or MSC-EVs reduce OA pain through influencing sensory neuron excitability in OA joints.

METHODS

We induced knee OA in adult male C57BL/6J mice through destabilization of the medial meniscus (DMM) surgery. Mice were sorted into 4 experimental groups with 9 mice per group as follows: unoperated sham, untreated DMM, DMM plus MSC treatment, and DMM plus MSC-EV treatment. Treated mice received either MSCs at week 14 postsurgery or MSC-EVs at weeks 12 and 14 postsurgery. Mouse behavior was evaluated by digging and rotarod tests and the Digital Ventilated Cage system. At week 16, mouse knee joints were harvested for histology, and dorsal root ganglion (DRG) neurons were isolated for electrophysiology. Furthermore, we induced hyperexcitability in DRG neurons in vitro using nerve growth factor (NGF) then treated these neurons with or without MSC-EVs and evaluated neuron excitability.

RESULTS

MSC- and MSC-EV-treated DMM-operated mice did not display pain-related behavior changes (in locomotion, digging, and sleep) that occurred in untreated DMM-operated mice. The absence of pain-related behaviors in MSC- and MSC-EV-treated mice was not the result of reduced joint damage but rather a lack of knee-innervating sensory neuron hyperexcitability that was observed in untreated DMM-operated mice. Furthermore, we found that NGF-induced sensory neuron hyperexcitability is prevented by MSC-EV treatment (P < 0.05 versus untreated NGF-sensitized neurons when comparing action potential threshold).

CONCLUSION

MSCs and MSC-EVs may reduce pain in OA by direct action on peripheral sensory neurons.

摘要

目的

间充质干细胞(MSCs)和 MSC 衍生的细胞外囊泡(MSC-EVs)已被报道可缓解膝骨关节炎(OA)患者的疼痛。我们进行这项研究是为了确定 MSCs 和/或 MSC-EVs 是否通过影响 OA 关节中的感觉神经元兴奋性来减轻 OA 疼痛。

方法

我们通过内侧半月板(DMM)手术不稳定诱导成年雄性 C57BL/6J 小鼠发生膝 OA。将小鼠分为 4 个实验组,每组 9 只,如下所示:未手术的假手术组、未治疗的 DMM 组、DMM 加 MSC 治疗组和 DMM 加 MSC-EV 治疗组。治疗组在手术后第 14 周接受 MSC 治疗或第 12 和 14 周接受 MSC-EV 治疗。通过挖掘和旋转杆测试以及数字通风笼系统评估小鼠行为。在第 16 周,收获小鼠膝关节进行组织学检查,分离背根神经节(DRG)神经元进行电生理学研究。此外,我们使用神经生长因子(NGF)在体外诱导 DRG 神经元过度兴奋,然后用或不用 MSC-EV 处理这些神经元,并评估神经元兴奋性。

结果

接受 MSC 和 MSC-EV 治疗的 DMM 手术小鼠没有出现未治疗的 DMM 手术小鼠出现的与疼痛相关的行为改变(运动、挖掘和睡眠)。接受 MSC 和 MSC-EV 治疗的小鼠没有出现与疼痛相关的行为改变,这不是关节损伤减少的结果,而是观察到未治疗的 DMM 手术小鼠膝神经感觉神经元过度兴奋。此外,我们发现 MSC-EV 治疗可预防 NGF 诱导的感觉神经元过度兴奋(与未处理的 NGF 敏化神经元相比,当比较动作电位阈值时,P<0.05)。

结论

MSCs 和 MSC-EVs 可能通过直接作用于外周感觉神经元来减轻 OA 疼痛。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a90b/10952633/551dab8afe5f/ART-75-352-g004.jpg

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