Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, GA, USA.
Interdisciplinary Bioengineering Graduate Program, Georgia Institute of Technology, Atlanta, GA, USA.
Sci Rep. 2023 Apr 1;13(1):5374. doi: 10.1038/s41598-023-32474-y.
Organelles play important roles in human health and disease, such as maintaining homeostasis, regulating growth and aging, and generating energy. Organelle diversity in cells not only exists between cell types but also between individual cells. Therefore, studying the distribution of organelles at the single-cell level is important to understand cellular function. Mesenchymal stem cells are multipotent cells that have been explored as a therapeutic method for treating a variety of diseases. Studying how organelles are structured in these cells can answer questions about their characteristics and potential. Herein, rapid multiplexed immunofluorescence (RapMIF) was performed to understand the spatial organization of 10 organelle proteins and the interactions between them in the bone marrow (BM) and umbilical cord (UC) mesenchymal stem cells (MSCs). Spatial correlations, colocalization, clustering, statistical tests, texture, and morphological analyses were conducted at the single cell level, shedding light onto the interrelations between the organelles and comparisons of the two MSC subtypes. Such analytics toolsets indicated that UC MSCs exhibited higher organelle expression and spatially spread distribution of mitochondria accompanied by several other organelles compared to BM MSCs. This data-driven single-cell approach provided by rapid subcellular proteomic imaging enables personalized stem cell therapeutics.
细胞器在人类健康和疾病中发挥着重要作用,例如维持内稳态、调节生长和衰老以及产生能量。细胞内细胞器的多样性不仅存在于细胞类型之间,也存在于单个细胞之间。因此,研究细胞器在单细胞水平上的分布对于了解细胞功能非常重要。间充质干细胞是一种多能细胞,已被探索作为治疗多种疾病的一种治疗方法。研究这些细胞中细胞器的结构可以回答关于它们特征和潜力的问题。在此,通过快速多重免疫荧光(RapMIF)来了解骨髓(BM)和脐带(UC)间充质干细胞(MSCs)中 10 种细胞器蛋白的空间组织及其相互作用。在单细胞水平上进行了空间相关性、共定位、聚类、统计检验、纹理和形态分析,揭示了细胞器之间的相互关系以及两种 MSC 亚型的比较。这些分析工具集表明,与 BM MSCs 相比,UC MSCs 表现出更高的细胞器表达水平和线粒体的空间弥散分布,同时还伴有其他几种细胞器。这种由快速亚细胞蛋白质组学成像提供的数据驱动的单细胞方法为个性化干细胞治疗提供了可能。