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激光烧蚀电感耦合等离子体质谱和二次离子质谱法在小鼠心脏中对金属和生物分子的生物成像。

Bioimaging of metals and biomolecules in mouse heart by laser ablation inductively coupled plasma mass spectrometry and secondary ion mass spectrometry.

机构信息

Central Division of Analytical Chemistry, Forschungszentrum Jülich, D-52425 Jülich, Germany.

出版信息

Anal Chem. 2010 Nov 15;82(22):9528-33. doi: 10.1021/ac102256q. Epub 2010 Oct 26.

Abstract

Bioimaging mass spectrometric techniques allow direct mapping of metal and biomolecule distributions with high spatial resolution in biological tissue. In this study laser ablation inductively coupled plasma mass spectrometry (LA-ICPMS) was used for imaging of transition metals (Fe, Cu, Zn, Mn, and Ti), alkali and alkaline-earth metals (Na, K, Mg, and Ca, respectively), and selected nonmetals (such as C, P, and S) in native cryosections of mouse heart. The metal and nonmetal images clearly illustrated the shape and the anatomy of the samples. Zinc and copper were inhomogeneously distributed with average concentrations of 26 and 11 μg g(-1), respectively. Titanium and manganese were detected at concentrations reaching 1 and 2 μg g(-1), respectively. The highest regional metal concentration of 360 μg g(-1)was observed for iron in blood present in the lumen of the aorta. Secondary ion mass spectrometry (SIMS) as an elemental and biomolecular mass spectrometric technique was employed for imaging of Na, K, and selected biomolecules (e.g., phosphocholine, choline, cholesterol) in adjacent sections. Here, two different bioimaging techniques, LA-ICPMS and SIMS, were combined for the first time, yielding novel information on both elemental and biomolecular distributions.

摘要

生物成像质谱技术允许直接映射金属和生物分子在生物组织中的高空间分辨率分布。在这项研究中,激光烧蚀电感耦合等离子体质谱(LA-ICPMS)用于成像过渡金属(Fe、Cu、Zn、Mn 和 Ti)、碱金属和碱土金属(分别为 Na、K、Mg 和 Ca)以及天然冷冻切片中选定的非金属(如 C、P 和 S)。金属和非金属图像清楚地说明了样品的形状和解剖结构。锌和铜分布不均匀,平均浓度分别为 26 和 11μg g(-1)。钛和锰的浓度分别达到 1 和 2μg g(-1)。在主动脉管腔中存在的血液中铁的区域金属浓度最高,达到 360μg g(-1)。二次离子质谱(SIMS)作为一种元素和生物分子质谱技术,用于成像相邻切片中的 Na、K 和选定的生物分子(如磷胆堿、胆堿、胆固醇)。在这里,首次将两种不同的生物成像技术,LA-ICPMS 和 SIMS 结合在一起,获得了关于元素和生物分子分布的新信息。

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