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镰状细胞病动物模型疼痛评估后食欲素神经元激活的显著定量差异

Significant Quantitative Differences in Orexin Neuronal Activation After Pain Assessments in an Animal Model of Sickle Cell Disease.

作者信息

Richardson Kimberlei, Sweatt Nia, Tran Huy, Apprey Victor, Uthayathas Subramaniam, Taylor Robert, Gupta Kalpna

机构信息

Department of Pharmacology, Howard University College of Medicine, Washington, DC, United States.

Division of Hematology, Oncology and Transplantation, Department of Medicine, University of Minnesota Medical School, Minneapolis, MN, United States.

出版信息

Front Mol Biosci. 2020 Jan 31;7:5. doi: 10.3389/fmolb.2020.00005. eCollection 2020.

Abstract

Sickle cell disease is a hemoglobinopathy that causes sickling of red blood cells, resulting in vessel blockage, stroke, anemia, inflammation, and extreme pain. The development and treatment of pain, in particular, neuropathic pain in sickle cell disease patients is poorly understood and impedes our progress toward the development of novel therapies to treat pain associated with sickle cell disease. The orexin/hypocretin system offers a novel approach to treat chronic pain and hyperalgesia. These neuropeptides are synthesized in three regions: perifornical area (PFA), lateral hypothalamus (LH), and dorsomedial hypothalamus (DMH). Data suggest that orexin-A neuropeptide has an analgesic effect on inflammatory pain and may affect mechanisms underlying the maintenance of neuropathic pain. The purpose of this study was to determine whether there are neuronal activation differences in the orexin system as a result of neuropathic pain testing in a mouse model of sickle cell disease. Female transgenic sickle mice that express exclusively (99%) human sickle hemoglobin (HbSS-BERK) and age-/gender-matched controls (HbAA-BERK mice; = 10/group, 20-30 g) expressing normal human hemoglobin A were habituated to each test protocol and environment before collecting baseline measurements and testing. Four measures were used to assess pain-related behaviors: thermal/heat hyperalgesia, cold hyperalgesia, mechanical hyperalgesia, and deep-tissue hyperalgesia. Hypothalamic brain sections from HbAA-BERK and HbSS-BERK mice were processed to visualize orexin and c-Fos immunoreactivity and quantified. The percentage of double labeled neurons in the PFA was significantly higher than the percentage of double labeled neurons in the LH orexin field of HbAA-BERK mice ( < 0.05). The percentages of double labeled neurons in PFA and DMH orexin fields are significantly higher than those neurons in the LH of HbSS-BERK mice ( < 0.05). These data suggest that DMH orexin neurons were preferentially recruited during neuropathic pain testing and a more diverse distribution of orexin neurons may be required to produce analgesia in response to pain in the HbSS-BERK mice. Identifying specific orexin neuronal populations that are integral in neuropathic pain processing will allow us to elucidate mechanisms that provide a more selective, targeted approach in treating of neuropathic pain in sickle cell disease.

摘要

镰状细胞病是一种血红蛋白病,会导致红细胞镰变,从而引起血管阻塞、中风、贫血、炎症和剧痛。尤其是镰状细胞病患者疼痛(特别是神经性疼痛)的发生发展及治疗情况仍知之甚少,这阻碍了我们开发治疗镰状细胞病相关疼痛的新疗法的进程。食欲素/下丘脑泌素系统为治疗慢性疼痛和痛觉过敏提供了一种新方法。这些神经肽在三个区域合成:穹窿周区(PFA)、下丘脑外侧区(LH)和下丘脑背内侧核(DMH)。数据表明,食欲素A神经肽对炎性疼痛有镇痛作用,可能会影响神经性疼痛维持的潜在机制。本研究的目的是确定在镰状细胞病小鼠模型中进行神经性疼痛测试后,食欲素系统中是否存在神经元激活差异。在收集基线测量数据和进行测试之前,将仅表达(99%)人镰状血红蛋白(HbSS - BERK)的雌性转基因镰状小鼠以及表达正常人血红蛋白A的年龄/性别匹配的对照小鼠(HbAA - BERK小鼠;每组 = 10只,体重20 - 30克)适应每种测试方案和环境。使用四种测量方法来评估与疼痛相关的行为:热/热痛觉过敏、冷痛觉过敏、机械性痛觉过敏和深部组织痛觉过敏。对来自HbAA - BERK和HbSS - BERK小鼠的下丘脑脑切片进行处理,以观察食欲素和c - Fos免疫反应性并进行定量分析。HbAA - BERK小鼠PFA中双标神经元的百分比显著高于LH食欲素区域中双标神经元的百分比(P < 0.05)。HbSS - BERK小鼠PFA和DMH食欲素区域中双标神经元的百分比显著高于LH中的神经元(P < 0.05)。这些数据表明,在神经性疼痛测试期间,DMH食欲素神经元被优先募集,并且可能需要更广泛分布的食欲素神经元才能在HbSS - BERK小鼠中产生对疼痛的镇痛反应。确定在神经性疼痛处理中起重要作用的特定食欲素神经元群体,将使我们能够阐明机制,从而为治疗镰状细胞病的神经性疼痛提供更具选择性、针对性的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d98/7025496/3a32e3ab9f71/fmolb-07-00005-g0001.jpg

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