小鼠海马和皮层中星形胶质细胞和血管连接的结构和分子特征。

IF 5.4 2区 医学 Q1 NEUROSCIENCES
Glia Pub Date : 2024-07-15 DOI:10.1002/glia.24594
Charlotte Lorin, Romain Guiet, Nicolas Chiaruttini, Giovanna Ambrosini, Elvis Boci, Marwan Abdellah, Henry Markram, Daniel Keller
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引用次数: 0

摘要

星形胶质细胞末梢与血管的关系在神经-胶质细胞-血管单元中起着关键的功能作用。我们研究了星形胶质细胞的空间组织特征以及促进其参与分子交换的结构方面。我们利用双转基因小鼠,通过共免疫染色、共聚焦显微镜和三维数字分割技术,研究了等皮层和海马中星形胶质细胞的生物物理和分子组织及其微米级错综复杂的内足网络。结果显示,与等皮层的星形胶质细胞相比,海马星形胶质细胞的区域更小、内足尺寸更小、与血管的接触更少。此外,我们还发现,连接蛋白 43 和 30 在内侧足中的密度都较高,而且前者相对于后者过度表达。然而,由于该方法的局限性,要确定内足的确切定位还需要进一步的研究。本研究获得的定量信息将有助于建立星形胶质细胞与血管相互作用的模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Structural and molecular characterization of astrocyte and vasculature connectivity in the mouse hippocampus and cortex

Structural and molecular characterization of astrocyte and vasculature connectivity in the mouse hippocampus and cortex

The relation of astrocytic endfeet to the vasculature plays a key functional role in the neuro-glia-vasculature unit. We characterize the spatial organization of astrocytes and the structural aspects that facilitate their involvement in molecular exchanges. Using double transgenic mice, we performed co-immunostaining, confocal microscopy, and three-dimensional digital segmentation to investigate the biophysical and molecular organization of astrocytes and their intricate endfoot network at the micrometer level in the isocortex and hippocampus. The results showed that hippocampal astrocytes had smaller territories, reduced endfoot dimensions, and fewer contacts with blood vessels compared with those in the isocortex. Additionally, we found that both connexins 43 and 30 have a higher density in the endfoot and the former is overexpressed relative to the latter. However, due to the limitations of the method, further studies are needed to determine the exact localization on the endfoot. The quantitative information obtained in this study will be useful for modeling the interactions of astrocytes with the vasculature.

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来源期刊
Glia
Glia 医学-神经科学
CiteScore
13.10
自引率
4.80%
发文量
162
审稿时长
3-8 weeks
期刊介绍: GLIA is a peer-reviewed journal, which publishes articles dealing with all aspects of glial structure and function. This includes all aspects of glial cell biology in health and disease.
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