二次离子质谱法
化学
透射电子显微镜
化学成像
纳米尺度
分辨率(逻辑)
纳米技术
显微镜
离子
生物物理学
分析化学(期刊)
材料科学
环境化学
生物
病理
地质学
人工智能
高光谱成像
医学
有机化学
遥感
计算机科学
作者
Jelena Lovrić,Neda Najafinobar,Michael E. Kurczy,Olivier De Castro,Antje Biesemeier,Lena von Sydow,Magnus Klarqvist,Tom Wirtz,Per Malmberg
出处
期刊:Analytical Chemistry
[American Chemical Society]
日期:2022-09-07
卷期号:94 (37): 12798-12806
被引量:13
标识
DOI:10.1021/acs.analchem.2c02675
摘要
Detection of iron at the subcellular level in order to gain insights into its transport, storage, and therapeutic prospects to prevent cytotoxic effects of excessive iron accumulation is still a challenge. Nanoscale magnetic sector secondary ion mass spectrometry (SIMS) is an excellent candidate for subcellular mapping of elements in cells since it provides high secondary ion collection efficiency and transmission, coupled with high-lateral-resolution capabilities enabled by nanoscale primary ion beams. In this study, we developed correlative methodologies that implement SIMS high-resolution imaging technologies to study accumulation and determine subcellular localization of iron in alveolar macrophages. We employed transmission electron microscopy (TEM) and backscattered electron (BSE) microscopy to obtain structural information and high-resolution analytical tools, NanoSIMS and helium ion microscopy-SIMS (HIM-SIMS) to trace the chemical signature of iron. Chemical information from NanoSIMS was correlated with TEM data, while high-spatial-resolution ion maps from HIM-SIMS analysis were correlated with BSE structural information of the cell. NanoSIMS revealed that iron is accumulating within mitochondria, and both NanoSIMS and HIM-SIMS showed accumulation of iron in electrolucent compartments such as vacuoles, lysosomes, and lipid droplets. This study provides insights into iron metabolism at the subcellular level and has future potential in finding therapeutics to reduce the cytotoxic effects of excessive iron loading.
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