中性粒细胞胞外陷阱通过erk介导的MMP9和AQP4调控诱导脑血肿周围脑水肿。

IF 3.8 2区 医学 Q1 CLINICAL NEUROLOGY Translational Stroke Research Pub Date : 2024-12-28 DOI:10.1007/s12975-024-01318-w
Jun Tang, Jianhe Yue, Yihao Tao, Guanjian Zhao, Xiaoyao Yi, Maoxin Zhang, Ning Huang, Yuan Cheng
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引用次数: 0

摘要

血肿周围水肿(PHE)显著加重脑出血(ICH)患者的继发性脑损伤,但其具体机制尚不清楚。已知中性粒细胞胞外陷阱(NETs)会加剧脑卒中后的神经功能缺损和预后恶化。本研究探讨了NETs在脑出血后脑水肿发病机制中的潜在作用。建立大鼠脑出血模型,采用免疫荧光和Western blot检测血肿周围脑组织中中性粒细胞积累、神经网络标志物瓜氨酸组蛋白H3 (CitH3)和髓过氧化物酶(MPO)、紧密连接蛋白(ZO-1和Occludin)、水通道蛋白-4 (AQP4)、基质金属蛋白酶-9 (MMP-9)和ERK磷酸化(p-ERK)。TUNEL染色和行为学试验检测大鼠神经细胞凋亡和神经功能障碍,Evans蓝法和脑含水量测定大鼠血脑屏障(BBB)通透性和脑水肿。此外,我们还分别利用NETs、ERK、MMP-9和AQP4调节因子研究了NETs诱导PHE的相关分子机制。血肿周围的Ly6G+中性粒细胞在ich后3天内形成NETs。NETs降低紧密连接蛋白,破坏血脑屏障完整性,促进脑水肿,增加神经元凋亡,加重神经功能缺损。相反,抑制NETs可减轻PHE,减少神经元凋亡,改善神经功能。从机制上讲,net诱导的PHE源于ERK/MMP9通路血脑屏障紧密连接受损,并伴有ERK介导的血周区域AQP4下调。这些发现阐明了NETs对PHE的影响,为靶向NETs缓解脑出血后脑水肿和继发性脑损伤提供了有希望的见解。
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Neutrophil Extracellular Traps Induce Brain Edema Around Intracerebral Hematoma via ERK-Mediated Regulation of MMP9 and AQP4.

Perihematomal edema (PHE) significantly aggravates secondary brain injury in patients with intracerebral hemorrhage (ICH), yet its detailed mechanisms remain elusive. Neutrophil extracellular traps (NETs) are known to exacerbate neurological deficits and worsen outcomes after stroke. This study explores the potential role of NETs in the pathogenesis of brain edema following ICH. The rat ICH model was created, immunofluorescence and Western blot were used to examine neutrophil accumulation, NET markers citrullinated histone H3 (CitH3) and myeloperoxidase (MPO), tight junction proteins (ZO-1 and Occludin), Aquaporin-4 (AQP4), matrix metalloproteinase-9 (MMP-9), and ERK phosphorylation (p-ERK) in brain tissues surrounding the hematoma. TUNEL staining and behavioral tests were employed to evaluate neuronal apoptosis and neurological dysfunction, while blood-brain barrier (BBB) permeability and brain edema were also measured by Evans blue and brain water content. Furthermore, the molecular mechanisms related to NETs-induced PHE were investigated using NETs, ERK, MMP-9 and AQP4 regulators, respectively. Ly6G+ neutrophils surrounding the hematoma developed NETs within 3 days post-ICH. NETs decreased tight junction proteins, destroyed BBB integrity, promoted brain edema, increased neuronal apoptosis, and exacerbated neurological deficits. Conversely, inhibition of NETs mitigated PHE, reduced neuronal apoptosis, and improved neurological functions. Mechanistically, NET-induced PHE was originated from impairment of BBB tight junction via ERK/MMP9 pathway, coupled with ERK-mediated AQP4 downregulation in perihematomal regions. These findings elucidated the effects of NETs on PHE, which offered promising insights for targeting NETs to relieve brain edema and secondary brain injury post-ICH.

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来源期刊
Translational Stroke Research
Translational Stroke Research CLINICAL NEUROLOGY-NEUROSCIENCES
CiteScore
13.80
自引率
4.30%
发文量
130
审稿时长
6-12 weeks
期刊介绍: Translational Stroke Research covers basic, translational, and clinical studies. The Journal emphasizes novel approaches to help both to understand clinical phenomenon through basic science tools, and to translate basic science discoveries into the development of new strategies for the prevention, assessment, treatment, and enhancement of central nervous system repair after stroke and other forms of neurotrauma. Translational Stroke Research focuses on translational research and is relevant to both basic scientists and physicians, including but not restricted to neuroscientists, vascular biologists, neurologists, neuroimagers, and neurosurgeons.
期刊最新文献
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