质量选择离子和捕获离子中的气相福斯特共振能量转移。

IF 6.9 2区 化学 Q1 SPECTROSCOPY
Jeppe Langeland, Thomas T. Lindkvist, Christina Kjær, Steen Brøndsted Nielsen
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引用次数: 0

摘要

佛斯特共振能量转移(FRET)是一种非辐射过程,当电子激发的供体的发射光谱与受体的吸收光谱重叠时,就会发生供体与受体之间的能量转移。FRET 实验是基于专门设计的质谱装置在气相中进行的,目的是获得用 FRET 对(即供体和受体染料)标记的生物分子离子的结构信息,并揭示能量转移过程本身。离子在射频离子阱或潘宁离子阱中积聚,对感兴趣的离子进行质量选择,然后进行光激发。气相 FRET 可通过检测供体、受体或两者发出的光,或电子激发时受体特有的碎片通道发出的光来识别。第一种方法面临的挑战是如何收集和检测不易接触到的稀薄离子云发出的光子,而第二种方法则依赖于受体的光物理和化学行为。在这篇综述中,我们将介绍气相 FRET 所使用的不同仪器,包括优缺点讨论,以及该技术如何提供其他方法难以获得的重要结构信息的实例。此外,我们还介绍了染料的光谱特性如何受到附近电场的影响,这一点很容易从具有烷基或π共轭桥的简单模型系统的实验中看出来。这种光谱变化会对 FRET 效率产生重大影响。文章最后提出了新的研究方向,并特别关注冷离子光谱学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Gas-phase Förster resonance energy transfer in mass-selected and trapped ions

Gas-phase Förster resonance energy transfer in mass-selected and trapped ions

Förster Resonance Energy transfer (FRET) is a nonradiative process that may occur from an electronically excited donor to an acceptor when the emission spectrum of the donor overlaps with the absorption spectrum of the acceptor. FRET experiments have been done in the gas phase based on specially designed mass-spectroscopy setups with the goal to obtain structural information on biomolecular ions labeled with a FRET pair (i.e., donor and acceptor dyes) and to shed light on the energy-transfer process itself. Ions are accumulated in a radio-frequency ion trap or a Penning trap where mass selection of those of interest takes place, followed by photoexcitation. Gas-phase FRET is identified from detection of emitted light either from the donor, the acceptor, or both, or from a fragmentation channel that is specific to the acceptor when electronically excited. The challenge associated with the first approach is the collection and detection of photons emitted from a thin ion cloud that is not easily accessible while the second approach relies both on the photophysical and chemical behavior of the acceptor. In this review, we present the different instrumentation used for gas-phase FRET, including a discussion of advantages and disadvantages, and examples on how the technique has provided important structural information that is not easily obtainable otherwise. Furthermore, we describe how the spectroscopic properties of the dyes are affected by nearby electric fields, which is readily discernable from experiments on simple model systems with alkyl or π-conjugated bridges. Such spectral changes can have a significant effect on the FRET efficiency. Ideas for new directions are presented at the end with special focus on cold-ion spectroscopy.

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来源期刊
Mass Spectrometry Reviews
Mass Spectrometry Reviews 物理-光谱学
CiteScore
16.30
自引率
3.00%
发文量
56
期刊介绍: The aim of the journal Mass Spectrometry Reviews is to publish well-written reviews in selected topics in the various sub-fields of mass spectrometry as a means to summarize the research that has been performed in that area, to focus attention of other researchers, to critically review the published material, and to stimulate further research in that area. The scope of the published reviews include, but are not limited to topics, such as theoretical treatments, instrumental design, ionization methods, analyzers, detectors, application to the qualitative and quantitative analysis of various compounds or elements, basic ion chemistry and structure studies, ion energetic studies, and studies on biomolecules, polymers, etc.
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