A novel preparation for histological analyses of intraventricular macrophages in the embryonic brain

IF 1.7 4区 生物学 Q4 CELL BIOLOGY
Futoshi Murayama, Hisa Asai, Arya Kirone Patra, Hiroaki Wake, Takaki Miyata, Yuki Hattori
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Abstract

Microglia colonize the brain starting on embryonic day (E) 9.5 in mice, and their population increases with development. We have previously demonstrated that some microglia are derived from intraventricular macrophages, which frequently infiltrate the pallium at E12.5. To address how the infiltration of intraventricular macrophages is spatiotemporally regulated, histological analyses detecting how these cells associate with the surrounding cells at the site of infiltration into the pallial surface are essential. Using two-photon microscopy-based in vivo imaging, we demonstrated that most intraventricular macrophages adhere to the ventricular surface. This is a useful tool for imaging intraventricular macrophages maintaining their original position, but this method cannot be used for observing deeper brain regions. Meanwhile, we found that conventional cryosection-based and naked pallial slice-based observation resulted in unexpected detachment from the ventricular surface of intraventricular macrophages and their mislocation, suggesting that previous histological analyses might have failed to determine their physiological number and location in the ventricular space. To address this, we sought to establish a methodological preparation that enables us to delineate the structure and cellular interactions when intraventricular macrophages infiltrate the pallium. Here, we report that brain slices pretreated with agarose-embedding maintained adequate density and proper positioning of intraventricular macrophages on the ventricular surface. This method also enabled us to perform the immunostaining. We believe that this is helpful for conducting histological analyses to elucidate the mechanisms underlying intraventricular macrophage infiltration into the pallium and their cellular properties, leading to further understanding of the process of microglial colonization into the developing brain.

Abstract Image

用于胚胎脑室内巨噬细胞组织学分析的新型制备方法。
小胶质细胞从小鼠胚胎 9.5 天开始定植于大脑,其数量随着发育而增加。我们之前已经证实,一些小胶质细胞来源于脑室内巨噬细胞,这些巨噬细胞在胚胎 12.5 天时经常浸润胼胝体。要解决室管膜内巨噬细胞的浸润如何受时空调控的问题,必须进行组织学分析,检测这些细胞在浸润到胼胝体表面时如何与周围细胞结合。利用基于双光子显微镜的活体成像技术,我们证明了大多数脑室内巨噬细胞粘附在脑室表面。这是对保持其原始位置的脑室内巨噬细胞进行成像的有用工具,但这种方法不能用于观察更深的脑区。同时,我们发现传统的基于冷冻切片和裸苍白切片的观察方法会导致脑室内巨噬细胞意外脱离脑室表面并错位,这表明以往的组织学分析可能无法确定其在脑室内的生理数量和位置。为了解决这个问题,我们试图建立一种方法学准备,使我们能够描绘出脑室内巨噬细胞浸润苍白球时的结构和细胞相互作用。在这里,我们报告了用琼脂糖包埋法预处理的脑片能保持足够的密度,并使脑室内巨噬细胞在脑室表面正确定位。这种方法还使我们能够进行免疫染色。我们认为这有助于进行组织学分析,以阐明脑室内巨噬细胞浸润到脑膜的机制及其细胞特性,从而进一步了解小胶质细胞定植到发育中大脑的过程。
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来源期刊
Development Growth & Differentiation
Development Growth & Differentiation 生物-发育生物学
CiteScore
4.60
自引率
4.00%
发文量
62
审稿时长
6 months
期刊介绍: Development Growth & Differentiation (DGD) publishes three types of articles: original, resource, and review papers. Original papers are on any subjects having a context in development, growth, and differentiation processes in animals, plants, and microorganisms, dealing with molecular, genetic, cellular and organismal phenomena including metamorphosis and regeneration, while using experimental, theoretical, and bioinformatic approaches. Papers on other related fields are also welcome, such as stem cell biology, genomics, neuroscience, Evodevo, Ecodevo, and medical science as well as related methodology (new or revised techniques) and bioresources. Resource papers describe a dataset, such as whole genome sequences and expressed sequence tags (ESTs), with some biological insights, which should be valuable for studying the subjects as mentioned above. Submission of review papers is also encouraged, especially those providing a new scope based on the authors’ own study, or a summarization of their study series.
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