作用于内皮细胞的 TRPV4 功能增益突变导致小鼠血液-中枢神经系统屏障破坏和运动神经元变性。

IF 15.8 1区 医学 Q1 CELL BIOLOGY Science Translational Medicine Pub Date : 2024-05-22 DOI:10.1126/scitranslmed.adk1358
Jeremy M. Sullivan, Anna M. Bagnell, Jonathan Alevy, Elvia Mena Avila, Ljubica Mihaljević, Pamela C. Saavedra-Rivera, Lingling Kong, Jennifer S. Huh, Brett A. McCray, William H. Aisenberg, Aamir R. Zuberi, Laurent Bogdanik, Cathleen M. Lutz, Zhaozhu Qiu, Katharina A. Quinlan, Peter C. Searson, Charlotte J. Sumner
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引用次数: 0

摘要

血液-中枢神经系统屏障破坏是许多神经系统疾病的标志,但屏障破坏是否足以引发神经退行性疾病仍是一个悬而未决的问题。缓解屏障高渗透性的治疗策略也很有限。阳离子通道瞬时受体电位香草素 4(TRPV4)的显性错义突变会导致遗传性运动神经元疾病。为了深入了解这些疾病的细胞基础,我们在内源性小鼠 Trpv4 基因中引入了两个致病突变(R269C 和 R232C),从而产生了 TRPV4 通道病的基因敲入小鼠模型。TRPV4 突变小鼠表现出虚弱、早期致死和区域性运动神经元缺失。从内皮细胞(而非神经元、神经胶质细胞或肌肉)基因中删除突变的 Trpv4 等位基因可修复这些表型。有症状的突变小鼠表现出血脊髓屏障(BSCB)完整性的局灶性破坏,这与神经血管内皮细胞(NVECs)中突变 TRPV4 通道活性的功能增益和 NVEC 紧密连接结构的改变有关。全身给药 TRPV4 特异性拮抗剂可消除通道介导的 BSCB 损伤,并对有症状的突变小鼠进行明显的表型拯救。总之,我们的研究结果表明,突变的 TRPV4 通道可通过促使 BSCB 局灶性破坏,以非细胞自主的方式驱动运动神经元变性。此外,这些数据还强调了 TRPV4 介导的 BSCB 损伤的可逆性,并为 TRPV4 突变患者确定了一种潜在的治疗策略。
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Gain-of-function mutations of TRPV4 acting in endothelial cells drive blood-CNS barrier breakdown and motor neuron degeneration in mice
Blood-CNS barrier disruption is a hallmark of numerous neurological disorders, yet whether barrier breakdown is sufficient to trigger neurodegenerative disease remains unresolved. Therapeutic strategies to mitigate barrier hyperpermeability are also limited. Dominant missense mutations of the cation channel transient receptor potential vanilloid 4 (TRPV4) cause forms of hereditary motor neuron disease. To gain insights into the cellular basis of these disorders, we generated knock-in mouse models of TRPV4 channelopathy by introducing two disease-causing mutations (R269C and R232C) into the endogenous mouse Trpv4 gene. TRPV4 mutant mice exhibited weakness, early lethality, and regional motor neuron loss. Genetic deletion of the mutant Trpv4 allele from endothelial cells (but not neurons, glia, or muscle) rescued these phenotypes. Symptomatic mutant mice exhibited focal disruptions of blood–spinal cord barrier (BSCB) integrity, associated with a gain of function of mutant TRPV4 channel activity in neural vascular endothelial cells (NVECs) and alterations of NVEC tight junction structure. Systemic administration of a TRPV4-specific antagonist abrogated channel-mediated BSCB impairments and provided a marked phenotypic rescue of symptomatic mutant mice. Together, our findings show that mutant TRPV4 channels can drive motor neuron degeneration in a non–cell autonomous manner by precipitating focal breakdown of the BSCB. Further, these data highlight the reversibility of TRPV4-mediated BSCB impairments and identify a potential therapeutic strategy for patients with TRPV4 mutations.
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来源期刊
Science Translational Medicine
Science Translational Medicine CELL BIOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
26.70
自引率
1.20%
发文量
309
审稿时长
1.7 months
期刊介绍: Science Translational Medicine is an online journal that focuses on publishing research at the intersection of science, engineering, and medicine. The goal of the journal is to promote human health by providing a platform for researchers from various disciplines to communicate their latest advancements in biomedical, translational, and clinical research. The journal aims to address the slow translation of scientific knowledge into effective treatments and health measures. It publishes articles that fill the knowledge gaps between preclinical research and medical applications, with a focus on accelerating the translation of knowledge into new ways of preventing, diagnosing, and treating human diseases. The scope of Science Translational Medicine includes various areas such as cardiovascular disease, immunology/vaccines, metabolism/diabetes/obesity, neuroscience/neurology/psychiatry, cancer, infectious diseases, policy, behavior, bioengineering, chemical genomics/drug discovery, imaging, applied physical sciences, medical nanotechnology, drug delivery, biomarkers, gene therapy/regenerative medicine, toxicology and pharmacokinetics, data mining, cell culture, animal and human studies, medical informatics, and other interdisciplinary approaches to medicine. The target audience of the journal includes researchers and management in academia, government, and the biotechnology and pharmaceutical industries. It is also relevant to physician scientists, regulators, policy makers, investors, business developers, and funding agencies.
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