生物学中的离子显微镜。

Scanning microscopy. Supplement Pub Date : 1994-01-01
G H Morrison, I Gay, S Chandra
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引用次数: 0

摘要

离子显微镜是一种基于质谱的同位素成像技术,特别适合于生物系统中与离子传输相关的问题。由于其高灵敏度,它可以在亚细胞分辨率上成像主要和次要元素(同位素)的运输和分布。仪器的微通道板-荧光屏探测器可直接查看并实时记录K、Na、CI等主要元素的图像。低浓度的生理重要元素,如钙,需要大约一分钟的整合才能获得高质量的成像。离子显微镜的同位素成像能力为使用稳定同位素作为示踪剂提供了一种独特的方法。通过这种方式,我们可以独立地对内源性和输运同位素进行成像。严格的低温样品制备是离子输运研究的必要条件。用激光扫描共聚焦显微镜和离子显微镜对同一细胞进行相关成像,可以在钙图像中确定较小的细胞质区室,如高尔基体。我们已经确定高尔基体是一种钙储存细胞器。离子显微镜的另一个独特应用是用于硼中子俘获治疗(BNCT)癌症的硼化药物的硼成像。离子显微镜能够快速筛选潜在的BNCT药物。这些关键信息对于基本理解BNCT是必不可少的。离子显微镜现在正处于这样一个阶段,它可以为重要的生物医学问题提供以前无法获得的答案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ion microscopy in biology.

Ion microscopy, a mass spectrometry based isotopic imaging technique, is uniquely suited for ion transport related problems in biological systems. Due to its high sensitivity, it can image the transport and distribution of both major and minor elements (isotopes) at subcellular resolutions. The images of major elements such as K, Na, CI, etc., can be viewed directly and recorded in real-time from the microchannel plate-fluorescent screen detector of the instrument. The low concentration physiologically important elements, such as Ca, need about one minute of integration for good quality imaging. The isotopic imaging capability of ion microscopy provides a unique approach for the use of stable isotopes as tracers. In this way, one can image both the endogenous and the transported isotopes independently. Strict cryogenic sample preparations are essential for ion transport studies. Correlative imaging of the same cell with laser scanning confocal microscopy and ion microscopy can positively identify smaller cytoplasmic compartments such as the Golgi apparatus in calcium images. We have identified the Golgi apparatus as a calcium storing organelle. Another unique application of ion microscopy is the imaging of boron from boronated drugs used in Boron Neutron Capture Therapy (BNCT) of cancer. Ion microscopy is capable of rapid screening of potential drugs for BNCT. This critical information is essential for the fundamental understanding of BNCT. Ion microscopy is now at the stage where it can provide previously unattainable answers to important biomedical questions.

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