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使用质谱法对人脑类器官进行分子成像。

Molecular Imaging of Human Brain Organoids Using Mass Spectrometry.

机构信息

Department of Pediatrics -Neurology, Baylor College of Medicine; Jan and Dan Duncan Neurological Research Institute, Texas Children's Hospital.

Department of Pathology & Immunology, Baylor College of Medicine; Center for Drug Discovery, Baylor College of Medicine.

出版信息

J Vis Exp. 2024 Sep 27(211). doi: 10.3791/66997.

Abstract

Brain organoid models serve as a powerful tool for studying human brain development and function. Mass spectrometry imaging (MSI), a cutting-edge technology, allows us to map the spatial distribution of diverse molecules such as lipids, sugars, amino acids, drugs, and their metabolites within these organoids, all without the need for specific molecular probes. High-quality MSI data hinge on meticulous sample preparation. Fixatives play a pivotal role, but conventional options such as glutaraldehyde, paraformaldehyde, and cryopreserving such as sucrose may inadvertently impact tissue metabolites. Optimal fixation entails flash freezing in liquid nitrogen. However, for small organoids, a more suitable approach involves transitioning the organoids directly from the incubator into a warmed embedding solution, followed by freezing in dry ice-cooled ethanol. Another critical step is the embedding prior to cryosectioning, which also requires materials compatible with MSI, as traditional options can interfere with matrix deposition and ionization. Here, an optimized protocol for high resolution-MALDI-MSI of human brain organoids is presented, encompassing sample preparation, sectioning, and imaging using mass spectrometry. This method showcases the molecular distribution of small metabolites, such as amino acids, with high mass accuracy and sensitivity. As such, coupled with complementary studies of brain organoids, it can assist in illuminating complex processes governing early brain development, metabolic cell fate trajectories, and distinctive metabolite signatures. Furthermore, it provides insights into the precise locations of molecules within the organoid, enriching our understanding of the spatial organization of 3D brain organoid models. As the field continues to advance, a growing number of studies leveraging MSI to delve into brain organoids and complex biological systems is anticipated, thereby deepening the understanding of the metabolic aspects of human brain function and development.

摘要

脑类器官模型是研究人类大脑发育和功能的有力工具。质谱成像(MSI)是一种前沿技术,它可以在这些类器官中绘制各种分子(如脂质、糖、氨基酸、药物及其代谢物)的空间分布图谱,而无需特定的分子探针。高质量的 MSI 数据取决于细致的样本制备。固定剂起着至关重要的作用,但传统的选择,如戊二醛、多聚甲醛和冷冻保存剂(如蔗糖),可能会无意中影响组织代谢物。最佳固定需要在液氮中进行快速冷冻。然而,对于小类器官,更合适的方法是直接将类器官从培养箱转移到温暖的包埋溶液中,然后在干冰冷却的乙醇中冷冻。另一个关键步骤是在冷冻切片之前进行包埋,这也需要与 MSI 兼容的材料,因为传统的选择会干扰基质沉积和离子化。这里提出了一种用于人脑类器官高分辨率-MALDI-MSI 的优化方案,包括样本制备、切片和使用质谱成像。该方法展示了小分子代谢物(如氨基酸)的高分辨率、高灵敏度的分子分布。因此,结合对脑类器官的互补研究,可以帮助阐明控制早期大脑发育、代谢细胞命运轨迹和独特代谢物特征的复杂过程。此外,它还提供了分子在类器官内的精确位置的信息,丰富了我们对 3D 脑类器官模型的空间组织的理解。随着该领域的不断发展,预计将有越来越多的研究利用 MSI 深入研究脑类器官和复杂的生物系统,从而加深对人类大脑功能和发育的代谢方面的理解。

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