化学
质量细胞仪
荧光
核酸
质谱法
细胞
计算生物学
DNA
细胞培养
生物物理学
电池类型
荧光蛋白
细胞生物学
生物系统
分子质量
生物化学
寡核苷酸
单元格排序
异源的
活体细胞成像
分子生物学
分子探针
流式细胞术
绿色荧光蛋白
蛋白质组学
色谱法
质谱成像
作者
Nicholas D. Schmitt,Catherine M. Rawlins,Elizabeth C. Randall,Xianzhe Wang,Antonius Koller,Jared R. Auclair,Jane‐Marie Kowalski,Paul J. Kowalski,Ed Luther,Alexander R. Ivanov,Nathalie Y.R. Agar,Jeffrey N. Agar
标识
DOI:10.1021/acs.analchem.8b03454
摘要
Matrix-assisted laser desorption/ionization (MALDI) mass spectrometry imaging (MSI) provides a unique in situ chemical profile that can include drugs, nucleic acids, metabolites, lipids, and proteins. MSI of individual cells (of a known cell type) affords a unique insight into normal and disease-related processes and is a prerequisite for combining the results of MSI and other single-cell modalities (e.g. mass cytometry and next-generation sequencing). Technological barriers have prevented the high-throughput assignment of MSI spectra from solid tissue preparations to their cell type. These barriers include obtaining a suitable cell-identifying image (e.g. immunohistochemistry) and obtaining sufficiently accurate registration of the cell-identifying and MALDI-MS images. This study introduces a technique that overcame these barriers by assigning cell type directly from mass spectra. We hypothesized that, in MSI from mice with a defined fluorescent protein expression pattern, the fluorescent protein's molecular ion could be used to identify cell cohorts. A method was developed for the purification of enhanced yellow fluorescent protein (EYFP) from mice. To determine EYFP's molecular mass for MSI studies, we performed intact mass analysis and characterized the protein's primary structure and post-translational modifications through various techniques. MALDI-MSI methods were developed to enhance the detection of EYFP in situ, and by extraction of EYFP's molecular ion from MALDI-MS images, automated, whole-image assignment of cell cohorts was achieved. This method was validated using a well-characterized mouse line that expresses EYFP in motor and sensory neurons and should be applicable to hundreds of commercially available mice (and other animal) strains comprising a multitude of cell-specific fluorescent labels.
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