BDNF/TrkB信号抑制抑制部分挤压损伤模型中的星形胶质细胞增生和减轻机械性异常疼痛。

IF 1.8 4区 医学 Q3 MEDICINE, RESEARCH & EXPERIMENTAL Experimental Neurobiology Pub Date : 2023-10-31 DOI:10.5607/en23031
Tien Thuy Phan, Nishani Jayanika Jayathilake, Kyu Pil Lee, Joo Min Park
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引用次数: 0

摘要

神经性疼痛由于其持久性和对传统镇痛治疗的有限反应性,给临床带来了巨大挑战。虽然在理解脊髓星形胶质细胞在神经性疼痛中的作用方面取得了重大进展,但它们的作用和部分挤压伤(PCI)后的功能变化仍有待探索。在这项研究中,我们采用部分挤压损伤模型研究了慢性神经病理性疼痛期间脊髓星形胶质细胞的结构和功能变化。该模型使我们能够复制从最初的伤害性反应到持续疼痛的转变,强调星形胶质细胞在疼痛维持和致敏中的相关性。通过检查机械性异常性疼痛,一种对无害刺激的疼痛感,以及与脑源性神经营养因子(BDNF)和反应性星形胶质细胞水平升高的相关性,我们确定了星形胶质细胞活性和BDNF信号传导之间的潜在机制联系。最终,我们的研究提供了证据,证明通过BDNF/TrkB抑制剂抑制星形胶质细胞活化可以减轻机械性异常性疼痛,强调了靶向神经胶质BDNF相关通路用于疼痛管理的治疗潜力。这些发现为神经性疼痛的细胞和分子动力学提供了重要的见解,为这种具有挑战性的疾病的创新和靶向治疗策略铺平了道路。
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BDNF/TrkB Signaling Inhibition Suppresses Astrogliosis and Alleviates Mechanical Allodynia in a Partial Crush Injury Model.

Neuropathic pain presents a formidable clinical challenge due to its persistent nature and limited responsiveness to conventional analgesic treatments. While significant progress has been made in understanding the role of spinal astrocytes in neuropathic pain, their contribution and functional changes following a partial crush injury (PCI) remain unexplored. In this study, we investigated structural and functional changes in spinal astrocytes during chronic neuropathic pain, employing a partial crush injury model. This model allowes us to replicate the transition from initial nociceptive responses to persistent pain, highlighting the relevance of astrocytes in pain maintenance and sensitization. Through the examination of mechanical allodynia, a painful sensation in response to innocuous stimuli, and the correlation with increased levels of brain-derived neurotrophic factor (BDNF) along with reactive astrocytes, we identified a potential mechanistic link between astrocytic activity and BDNF signaling. Ultimately, our research provides evidence that inhibiting astrocyte activation through a BDNF/TrkB inhibitor alleviates mechanical allodynia, underscoring the therapeutic potential of targeting glial BDNF-related pathways for pain management. These findings offer critical insights into the cellular and molecular dynamics of neuropathic pain, paving the way for innovative and targeted treatment strategies for this challenging condition.

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来源期刊
Experimental Neurobiology
Experimental Neurobiology Neuroscience-Cellular and Molecular Neuroscience
CiteScore
4.30
自引率
4.20%
发文量
29
期刊介绍: Experimental Neurobiology is an international forum for interdisciplinary investigations of the nervous system. The journal aims to publish papers that present novel observations in all fields of neuroscience, encompassing cellular & molecular neuroscience, development/differentiation/plasticity, neurobiology of disease, systems/cognitive/behavioral neuroscience, drug development & industrial application, brain-machine interface, methodologies/tools, and clinical neuroscience. It should be of interest to a broad scientific audience working on the biochemical, molecular biological, cell biological, pharmacological, physiological, psychophysical, clinical, anatomical, cognitive, and biotechnological aspects of neuroscience. The journal publishes both original research articles and review articles. Experimental Neurobiology is an open access, peer-reviewed online journal. The journal is published jointly by The Korean Society for Brain and Neural Sciences & The Korean Society for Neurodegenerative Disease.
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