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Toll样受体2-4、NLRP3和白细胞介素-17在新型实验性自身免疫性脑脊髓炎Sprague-Dawley大鼠模型诱导的疼痛中的作用

Involvement of TLR2-TLR4, NLRP3, and IL-17 in pain induced by a novel Sprague-Dawley rat model of experimental autoimmune encephalomyelitis.

作者信息

Kwilasz Andrew J, Clements Madison A, Larson Tracey A, Harris Kevin M, Litwiler Scott T, Woodall Brodie J, Todd Laurel S, Schrama Anouk E W, Mitten Eric H, Maier Steven F, Van Dam Anne-Marie, Rice Kenner C, Watkins Linda R

机构信息

Department of Psychology and Neuroscience, University of Colorado, Boulder, CO, United States.

The Center for Neuroscience, University of Colorado, Boulder, CO, United States.

出版信息

Front Pain Res (Lausanne). 2022 Sep 13;3:932530. doi: 10.3389/fpain.2022.932530. eCollection 2022.

Abstract

Up to 92% of patients suffering from multiple sclerosis (MS) experience pain, most without adequate treatment, and many report pain long before motor symptoms associated with MS diagnosis. In the most commonly studied rodent model of MS, experimental autoimmune encephalomyelitis (EAE), motor impairments/disabilities caused by EAE can interfere with pain testing. In this study, we characterize a novel low-dose myelin-oligodendrocyte-glycoprotein (MOG)-induced Sprague-Dawley (SD) model of EAE-related pain in male rats, optimized to minimize motor impairments/disabilities. Adult male SD rats were treated with increasing doses of intradermal myelin-oligodendrocyte-glycoprotein (MOG) (0, 4, 8, and 16 μg) in incomplete Freund's adjuvant (IFA) vehicle to induce mild EAE. Von Frey testing and motor assessments were conducted prior to EAE induction and then weekly thereafter to assess EAE-induced pain and motor impairment. Results from these studies demonstrated that doses of 8 and 16 μg MOG were sufficient to produce stable mechanical allodynia for up to 1 month in the absence of hindpaw motor impairments/disabilities. In the follow-up studies, these doses of MOG, were administered to create allodynia in the absence of confounded motor impairments. Then, 2 weeks later, rats began daily subcutaneous injections of the Toll-like receptor 2 and 4 (TLR2-TLR4) antagonist (+)-naltrexone [(+)-NTX] or saline for an additional 13 days. We found that (+)-NTX also reverses EAE-induced mechanical allodynia in the MOG-induced SD rat model of EAE, supporting parallels between models, but now allowing a protracted timecourse to be examined completely free of motor confounds. Exploring further mechanisms, we demonstrated that both spinal NOD-like receptor protein 3 (NLRP3) and interleukin-17 (IL-17) are necessary for EAE-induced pain, as intrathecal injections of NLRP3 antagonist MCC950 and IL-17 neutralizing antibody both acutely reversed EAE-induced pain. Finally, we show that spinal glial immunoreactivity induced by EAE is reversed by (+)-NTX, and that spinal demyelination correlates with the severity of motor impairments/disabilities. These findings characterize an optimized MOG-induced SD rat model of EAE for the study of pain with minimal motor impairments/disabilities. Finally, these studies support the role of TLR2-TLR4 antagonists as a potential treatment for MS-related pain and other pain and inflammatory-related disorders.

摘要

高达92%的多发性硬化症(MS)患者会经历疼痛,大多数患者未得到充分治疗,而且许多患者在与MS诊断相关的运动症状出现之前很久就报告有疼痛。在最常研究的MS啮齿动物模型——实验性自身免疫性脑脊髓炎(EAE)中,EAE引起的运动障碍/残疾会干扰疼痛测试。在本研究中,我们描述了一种新型的低剂量髓鞘少突胶质细胞糖蛋白(MOG)诱导的雄性大鼠EAE相关疼痛的Sprague-Dawley(SD)模型,该模型经过优化以尽量减少运动障碍/残疾。成年雄性SD大鼠用递增剂量的皮内髓鞘少突胶质细胞糖蛋白(MOG)(0、4、8和16微克)在不完全弗氏佐剂(IFA)载体中处理以诱导轻度EAE。在诱导EAE之前进行von Frey测试和运动评估,此后每周进行一次,以评估EAE诱导的疼痛和运动障碍。这些研究结果表明,8和16微克剂量的MOG足以在没有后爪运动障碍/残疾的情况下产生长达1个月的稳定机械性异常性疼痛。在后续研究中,给予这些剂量的MOG以在没有混淆的运动障碍的情况下产生异常性疼痛。然后,2周后,大鼠开始每日皮下注射Toll样受体2和4(TLR2-TLR4)拮抗剂(+)-纳曲酮[(+)-NTX]或生理盐水,持续13天。我们发现(+)-NTX也能逆转MOG诱导的EAE的SD大鼠模型中EAE诱导的机械性异常性疼痛,支持了模型之间的相似性,但现在允许在完全没有运动混淆的情况下检查一个延长的时间进程。进一步探索机制,我们证明脊髓核苷酸结合寡聚化结构域样受体蛋白3(NLRP3)和白细胞介素-17(IL-17)对于EAE诱导的疼痛都是必需的,因为鞘内注射NLRP3拮抗剂MCC950和IL-17中和抗体都能急性逆转EAE诱导的疼痛。最后,我们表明(+)-NTX可逆转EAE诱导的脊髓胶质细胞免疫反应性,并且脊髓脱髓鞘与运动障碍/残疾的严重程度相关。这些发现描述了一种优化后的用于研究疼痛且运动障碍/残疾最小的MOG诱导的EAE的SD大鼠模型。最后,这些研究支持了TLR2-TLR4拮抗剂作为MS相关疼痛及其他疼痛和炎症相关疾病潜在治疗方法的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6792/9513159/5354ca868d4e/fpain-03-932530-g0001.jpg

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