Hippocampal Extracellular Matrix Protein Laminin β1 Regulates Neuropathic Pain and Pain-Related Cognitive Impairment.

IF 5.9 2区 医学 Q1 NEUROSCIENCES
Ying-Chun Li, Pei-Yang Liu, Hai-Tao Li, Shuai Wang, Yun-Xin Shi, Zhen-Zhen Li, Wen-Guang Chu, Xia Li, Wan-Neng Liu, Xing-Xing Zheng, Fei Wang, Wen-Juan Han, Jie Zhang, Sheng-Xi Wu, Rou-Gang Xie, Ceng Luo
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Abstract

Patients suffering from nerve injury often experience exacerbated pain responses and complain of memory deficits. The dorsal hippocampus (dHPC), a well-defined region responsible for learning and memory, displays maladaptive plasticity upon injury, which is assumed to underlie pain hypersensitivity and cognitive deficits. However, much attention has thus far been paid to intracellular mechanisms of plasticity rather than extracellular alterations that might trigger and facilitate intracellular changes. Emerging evidence has shown that nerve injury alters the microarchitecture of the extracellular matrix (ECM) and decreases ECM rigidity in the dHPC. Despite this, it remains elusive which element of the ECM in the dHPC is affected and how it contributes to neuropathic pain and comorbid cognitive deficits. Laminin, a key element of the ECM, consists of α-, β-, and γ-chains and has been implicated in several pathophysiological processes. Here, we showed that peripheral nerve injury downregulates laminin β1 (LAMB1) in the dHPC. Silencing of hippocampal LAMB1 exacerbates pain sensitivity and induces cognitive dysfunction. Further mechanistic analysis revealed that loss of hippocampal LAMB1 causes dysregulated Src/NR2A signaling cascades via interaction with integrin β1, leading to decreased Ca2+ levels in pyramidal neurons, which in turn orchestrates structural and functional plasticity and eventually results in exaggerated pain responses and cognitive deficits. In this study, we shed new light on the functional capability of hippocampal ECM LAMB1 in the modulation of neuropathic pain and comorbid cognitive deficits, and reveal a mechanism that conveys extracellular alterations to intracellular plasticity. Moreover, we identified hippocampal LAMB1/integrin β1 signaling as a potential therapeutic target for the treatment of neuropathic pain and related memory loss.

海马细胞外基质蛋白层粘连蛋白β1调节神经性疼痛和疼痛相关认知障碍。
患有神经损伤的患者通常会经历加剧的疼痛反应,并抱怨记忆缺陷。海马背侧(dHPC)是一个定义明确的负责学习和记忆的区域,在损伤后表现出不适应的可塑性,这被认为是疼痛超敏反应和认知缺陷的基础。然而,迄今为止,人们更多地关注可塑性的细胞内机制,而不是可能触发和促进细胞内变化的细胞外改变。新出现的证据表明,神经损伤改变了dHPC中细胞外基质(ECM)的微结构并降低了ECM的刚性。尽管如此,dHPC中ECM的哪个元素受到影响以及它如何导致神经性疼痛和共病认知缺陷仍然是难以捉摸的。层粘连蛋白是ECM的关键元件,由α-、β-和γ-链组成,并与多种病理生理过程有关。在这里,我们发现周围神经损伤下调了dHPC中的层粘连蛋白β1 (LAMB1)。海马LAMB1的沉默会加剧疼痛敏感性并诱发认知功能障碍。进一步的机制分析表明,海马LAMB1的缺失通过与整合素β1的相互作用导致Src/NR2A信号级联失调,导致锥体神经元Ca2+水平下降,进而协调结构和功能可塑性,最终导致疼痛反应和认知缺陷。在这项研究中,我们揭示了海马ECM LAMB1在神经性疼痛和共病认知缺陷调节中的功能能力,并揭示了将细胞外改变传递到细胞内可塑性的机制。此外,我们发现海马LAMB1/整合素β1信号是治疗神经性疼痛和相关记忆丧失的潜在治疗靶点。
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来源期刊
Neuroscience bulletin
Neuroscience bulletin NEUROSCIENCES-
CiteScore
7.20
自引率
16.10%
发文量
163
审稿时长
6-12 weeks
期刊介绍: Neuroscience Bulletin (NB), the official journal of the Chinese Neuroscience Society, is published monthly by Shanghai Institutes for Biological Sciences (SIBS), Chinese Academy of Sciences (CAS) and Springer. NB aims to publish research advances in the field of neuroscience and promote exchange of scientific ideas within the community. The journal publishes original papers on various topics in neuroscience and focuses on potential disease implications on the nervous system. NB welcomes research contributions on molecular, cellular, or developmental neuroscience using multidisciplinary approaches and functional strategies. We feature full-length original articles, reviews, methods, letters to the editor, insights, and research highlights. As the official journal of the Chinese Neuroscience Society, which currently has more than 12,000 members in China, NB is devoted to facilitating communications between Chinese neuroscientists and their international colleagues. The journal is recognized as the most influential publication in neuroscience research in China.
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