髓鞘胶质细胞:它们在蛛形动物和人脑废物清除和神经变性中的作用

IF 2.3 4区 医学 Q3 NEUROSCIENCES
Ruth Fabian-Fine, Adam L. Weaver, Abigail G. Roman, Melanie J. Winters, John C. DeWitt
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引用次数: 0

摘要

生物医学科学最重要的目标之一是了解神经变性的因果机制。一种普遍的假设与大脑废物清除机制受损有关,这是由于报道的阿尔茨海默病患者大脑中的废物聚集,包括淀粉样蛋白-β斑块和神经原纤维tau缠结。目前,我们对废物从大脑中清除的机制的理解只是零碎的。在这里,我们提供了令人信服的证据,证明在蛛形动物和人类中,脑组织中的废物清除是高度保守的。利用RNAscope原位杂交、免疫组织化学、超微结构和组织学方法,我们证明了蜘蛛神经元中的细胞碎片被形成髓磷脂的室管膜胶质细胞吞没,这些胶质细胞横断面进入神经元体细胞并形成髓磷脂来源的废物内化容器。这些管道系统可能以水通道蛋白-4 (AQP4)水通道依赖的方式将这些碎片输送到淋巴系统。我们提供了强有力的证据表明,在人类海马中也可能存在类似的过程,在那里,大量有髓鞘的aqp4免疫反应性室管膜胶质细胞将细胞投射到神经元和胶质细胞的体中,在那里它们分化成废弃的内化受体。在阿尔茨海默病患者的大脑中,这些髓鞘胶质细胞的肥厚性损伤导致神经元细胞质进入室管膜胶质细胞的灾难性阻塞和耗竭。在细胞水平上,大胶质细胞的结构损伤导致髓磷脂突起肿胀,表现为电子发光的圆形轮廓,这解释了与本文描述的神经退行性疾病相关的海绵状异常。我们建议将这种新型的大胶质细胞介导的细胞死亡称为“胶质细胞凋亡”。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Myelinated Glial Cells: Their Proposed Role in Waste Clearance and Neurodegeneration in Arachnid and Human Brain

Myelinated Glial Cells: Their Proposed Role in Waste Clearance and Neurodegeneration in Arachnid and Human Brain

One of the most important goals in biomedical sciences is understanding the causal mechanisms of neurodegeneration. A prevalent hypothesis relates to impaired waste clearance mechanisms from the brain due to reported waste aggregation in the brains of Alzheimer patients, including amyloid-β plaques and neurofibrillary tau tangles. Currently, our understanding of the mechanisms by which waste is removed from the brain is only fragmentary. Here we provide compelling evidence that waste clearance from brain tissue is highly conserved in arachnids and humans. Utilizing RNAscope in situ hybridization, immunohistochemical, ultrastructural, and histological approaches, we demonstrate that cellular debris in spider neurons is engulfed by myelin-forming ependymal glial cells that transect into neuronal somata and form myelin-derived waste-internalizing receptacles. These canal systems channel this debris into the lymphatic system likely in an aquaporin-4 (AQP4) water channel-dependent manner. We provide robust evidence that a similar process may be true in human hippocampus where vast numbers of myelinated AQP4-immunoreactive ependymal glial cells send cellular projections into the somata of neurons and glial cells where they differentiate into waste internalizing receptacles. In the brains of Alzheimer decedents, hypertrophic impairment of these myelinated glial cells leads to the catastrophic obstruction and depletion of neuronal cytoplasm into the ependymal glial cells. At the cellular level, the structural impairment of macroglia leads to swelling myelin protrusions that appear as electron-lucent circular profiles, explaining spongiform abnormalities associated with the neurodegenerative diseases described here. We propose to term this novel type of macroglia-mediated cell death “gliaptosis.”

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来源期刊
CiteScore
5.80
自引率
8.00%
发文量
158
审稿时长
3-6 weeks
期刊介绍: Established in 1891, JCN is the oldest continually published basic neuroscience journal. Historically, as the name suggests, the journal focused on a comparison among species to uncover the intricacies of how the brain functions. In modern times, this research is called systems neuroscience where animal models are used to mimic core cognitive processes with the ultimate goal of understanding neural circuits and connections that give rise to behavioral patterns and different neural states. Research published in JCN covers all species from invertebrates to humans, and the reports inform the readers about the function and organization of nervous systems in species with an emphasis on the way that species adaptations inform about the function or organization of the nervous systems, rather than on their evolution per se. JCN publishes primary research articles and critical commentaries and review-type articles offering expert insight in to cutting edge research in the field of systems neuroscience; a complete list of contribution types is given in the Author Guidelines. For primary research contributions, only full-length investigative reports are desired; the journal does not accept short communications.
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