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Gas-phase Forster resonance energy transfer in mass-selected ions with methylene or peptide linkers between two dyes: a concerted dance of charges

机译:气相福斯特在两种染料之间的亚甲基或肽接头的质量离子中的气相福尔斯特共振能量转移:一团收费舞蹈

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摘要

Forster Resonance Energy Transfer (FRET) between a photoexcited and a ground-state dye is dictated by how far apart the two dyes are compared to the Forster distance. While there is a significant number of studies on the process for biomacromolecules in solution, there are only a few reports on gas-phase FRET. Here we report on a simple gas-phase model system, synthesized with the rhodamine 575 (R575(+)) and rhodamine 640 (R640(+)) FRET pair and a covalent linker with four methylenes, R575(+)-(CH2)(4)-R640(+). Each dye carries a positive charge which allows for mass-spectroscopy experiments. We have recorded gas-phase dispersed fluorescence spectra of the mass-selected dications excited at different wavelengths using the homebuilt LUNA (LUminescence iNstrument in Aarhus) setup and find in all cases that emission is exclusively from the R640(+) acceptor dye. The linker does not interfere electronically with the dyes and simply acts as a spacer. We can therefore establish the direct effect of the interaction between the two dyes when it comes to emission band maximum. Indeed, we find that R640(+) experiences a significant shift in its maximum from 560 +/- 1 nm for the monomer cation to 577 +/- 2 nm in the presence of R575(+), independent of initial excitation of R575(+) or R640(+). This redshift is ascribed to the large polarizability along the long axis of the xanthene core structure, and that this polarizability is larger in the excited state than in the ground state. Experiments were also done on a triply charged 11-mer peptide labelled with the same two dyes, R575(+)-(Gly-Gln)(5)-Lys-R640(+) + H+ (Gly = glycine, Gln = glutamine, and Lys = lysine) where the extra positive charge is located on the peptide. Again a redshifted emission spectrum of the donor is observed with maximum at 582 +/- 2 nm. Our work clearly demonstrates strong sensitivity of the photophysics of one dye to the nearby environment, and that caution is needed when using the energy transfer efficiency to infer dye-dye separations in gas-phase experiments.
机译:一个光激发和接地状态的染料是由相距多远的两种染料相比,福斯特距离决定之间福斯特共振能量转移(FRET)。虽然是对在溶液中生物大分子的过程研究中显著数,只有在气相FRET少数报告。在这里,我们简单的气相模型系统上报告,与罗丹明合成575(R575(+))和若丹明640(R640(+))FRET对和具有四个亚甲基,R575(+)的共价连接基 - (CH 2) (4)-R640(+)。每种染料带有正电荷,其允许质谱法实验。我们已经记录的建立在使用自制LUNA(发光器械,奥尔胡斯)不同的波长激发的质量选择的双阳离子的气相分散荧光光谱和在所有情况下发现,发射是仅从R640(+)受体染料。链接器不与染料的电子干扰,只是充当一个间隔。因此,我们可以当它涉及到发射带最大树立两种染料之间的相互作用的直接影响。事实上,我们发现,R640(+)经历显著在其最大从560 +/- 1纳米的单体阳离子到577 +/- 2纳米的R575(+),独立R575的初始励磁的存在偏移( +)或R640(+)。此红移归因于沿呫吨核心结构的长轴的大的极化,并且这是极化处于兴奋状态下比在地面状态时大。实验还对三重完成充电标以相同的两种染料11-mer肽,R575(+) - (甘氨酸 - 谷氨酰胺)(5)-Lys-R640(+)+ H +(甘氨酸=甘氨酸,谷氨酰胺=谷氨酰胺,和Lys =赖氨酸),其中额外的正电荷位于肽。再次供体的红移发射光谱在582 +/- 2纳米,最大观察。我们的工作清楚地表明了一种染料的光物理到附近环境的强灵敏度,以及使用该能量传递效率以推断在气相实验染料 - 染料分离时,需要该警告。

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