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用于生物组织成像的高质量精度和高质量分辨率傅里叶变换离子回旋共振二次离子质谱法。

High mass accuracy and high mass resolving power FT-ICR secondary ion mass spectrometry for biological tissue imaging.

机构信息

FOM Institute AMOLF, Science Park 104, 1098 XG, Amsterdam, The Netherlands.

出版信息

Anal Bioanal Chem. 2013 Jul;405(18):6069-76. doi: 10.1007/s00216-013-7048-1. Epub 2013 May 19.

Abstract

Biological tissue imaging by secondary ion mass spectrometry has seen rapid development with the commercial availability of polyatomic primary ion sources. Endogenous lipids and other small bio-molecules can now be routinely mapped on the sub-micrometer scale. Such experiments are typically performed on time-of-flight mass spectrometers for high sensitivity and high repetition rate imaging. However, such mass analyzers lack the mass resolving power to ensure separation of isobaric ions and the mass accuracy for elemental formula assignment based on exact mass measurement. We have recently reported a secondary ion mass spectrometer with the combination of a C60 primary ion gun with a Fourier transform ion cyclotron resonance mass spectrometer (FT-ICR MS) for high mass resolving power, high mass measurement accuracy, and tandem mass spectrometry capabilities. In this work, high specificity and high sensitivity secondary ion FT-ICR MS was applied to chemical imaging of biological tissue. An entire rat brain tissue was measured with 150 μm spatial resolution (75 μm primary ion spot size) with mass resolving power (m/Δm(50%)) of 67,500 (at m/z 750) and root-mean-square measurement accuracy less than two parts-per-million for intact phospholipids, small molecules and fragments. For the first time, ultra-high mass resolving power SIMS has been demonstrated, with m/Δm(50%) > 3,000,000. Higher spatial resolution capabilities of the platform were tested at a spatial resolution of 20 μm. The results represent order of magnitude improvements in mass resolving power and mass measurement accuracy for SIMS imaging and the promise of the platform for ultra-high mass resolving power and high spatial resolution imaging.

摘要

利用多原子一次离子源,二次离子质谱技术在生物组织成像方面取得了快速发展。现在可以常规地在亚微米尺度上绘制内源性脂质和其他小分子生物分子。此类实验通常在飞行时间质谱仪上进行,以实现高灵敏度和高重复率成像。然而,这种质量分析仪缺乏质量分辨率来确保同量异位离子的分离,以及基于精确质量测量的元素式分配的质量精度。我们最近报道了一种将 C60 一次离子枪与傅立叶变换离子回旋共振质谱仪(FT-ICR MS)相结合的二次离子质谱仪,用于实现高质量分辨率、高质量测量精度和串联质谱能力。在这项工作中,高特异性和高灵敏度的二次离子 FT-ICR MS 被应用于生物组织的化学成像。利用 150μm 的空间分辨率(75μm 的一次离子光斑尺寸),对整个大鼠脑组织进行了测量,质量分辨率(m/Δm(50%))为 67500(在 m/z 750 处),完整磷脂、小分子和碎片的均方根测量精度小于两百万分之一。首次展示了超高质量分辨率 SIMS,m/Δm(50%)>3,000,000。在 20μm 的空间分辨率下测试了该平台的更高空间分辨率能力。这些结果代表了 SIMS 成像的质量分辨率和质量测量精度的数量级提高,以及该平台实现超高质量分辨率和高空间分辨率成像的前景。

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