Dysfunctional astrocyte glutamate uptake in the hypothalamic paraventricular nucleus contributes to visceral pain and anxiety-like behavior in mice with chronic pancreatitis

IF 5.4 2区 医学 Q1 NEUROSCIENCES Glia Pub Date : 2024-07-24 DOI:10.1002/glia.24595
Rong Luo, Xiaojun Hu, Xin Li, Fan Lei, Ping Liao, Limei Yi, Xia Zhang, Bin Zhou, Ruotian Jiang
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Abstract

Abdominal visceral pain is a predominant symptom in patients with chronic pancreatitis (CP); however, the underlying mechanism of pain in CP remains elusive. We hypothesized that astrocytes in the hypothalamic paraventricular nucleus (PVH) contribute to CP pain pathogenesis. A mouse model of CP was established by repeated intraperitoneal administration of caerulein to induce abdominal visceral pain. Abdominal mechanical stimulation, open field and elevated plus maze tests were performed to assess visceral pain and anxiety-like behavior. Fiber photometry, brain slice Ca2+ imaging, electrophysiology, and immunohistochemistry were used to investigate the underlying mechanisms. Mice with CP displayed long-term abdominal mechanical allodynia and comorbid anxiety, which was accompanied by astrocyte glial fibrillary acidic protein reactivity, elevated Ca2+ signaling, and astroglial glutamate transporter-1 (GLT-1) deficits in the PVH. Specifically, reducing astrocyte Ca2+ signaling in the PVH via chemogenetics significantly rescued GLT-1 deficits and alleviated mechanical allodynia and anxiety in mice with CP. Furthermore, we found that GLT-1 deficits directly contributed to the hyperexcitability of VGLUT2PVH neurons in mice with CP, and that pharmacological activation of GLT-1 alleviated the hyperexcitability of VGLUT2PVH neurons, abdominal visceral pain, and anxiety in these mice. Taken together, our data suggest that dysfunctional astrocyte glutamate uptake in the PVH contributes to visceral pain and anxiety in mice with CP, highlighting GLT-1 as a potential therapeutic target for chronic pain in patients experiencing CP.

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下丘脑室旁核星形胶质细胞谷氨酸摄取功能障碍导致慢性胰腺炎小鼠内脏疼痛和焦虑样行为
腹部内脏疼痛是慢性胰腺炎(CP)患者的主要症状;然而,慢性胰腺炎疼痛的潜在机制仍然难以捉摸。我们假设,下丘脑室旁核(PVH)中的星形胶质细胞有助于慢性胰腺炎疼痛的发病机制。我们通过反复腹腔注射钙调素诱导腹部内脏疼痛,建立了小鼠 CP 模型。通过腹部机械刺激、开阔地和高架迷宫试验来评估内脏疼痛和焦虑样行为。纤维光度测定、脑片Ca2+成像、电生理学和免疫组织化学被用来研究其潜在机制。CP小鼠表现出长期腹部机械异感症和合并焦虑症,同时伴有星形胶质细胞胶质纤维酸性蛋白反应性、Ca2+信号传导升高以及PVH中星形胶质细胞谷氨酸转运体-1(GLT-1)缺陷。具体而言,通过化学遗传学减少 PVH 中星形胶质细胞的 Ca2+ 信号传导可显著缓解 GLT-1 缺陷,并减轻 CP 小鼠的机械异感和焦虑。此外,我们还发现 GLT-1 缺陷直接导致了 CP 小鼠 VGLUT2PVH 神经元的过度兴奋,而药物激活 GLT-1 可缓解这些小鼠 VGLUT2PVH 神经元的过度兴奋、腹部内脏疼痛和焦虑。总之,我们的数据表明,PVH 中星形胶质细胞谷氨酸摄取功能障碍导致了 CP 小鼠的内脏疼痛和焦虑,突出表明 GLT-1 是 CP 患者慢性疼痛的潜在治疗靶点。
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来源期刊
Glia
Glia 医学-神经科学
CiteScore
13.10
自引率
4.80%
发文量
162
审稿时长
3-8 weeks
期刊介绍: GLIA is a peer-reviewed journal, which publishes articles dealing with all aspects of glial structure and function. This includes all aspects of glial cell biology in health and disease.
期刊最新文献
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