用模拟测量揭示光捕获蛋白的荧光动力学

Callum Gray, Lekshmi Kailas, Peter G. Adams, Christopher D. P. Duffy
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引用次数: 0

摘要

植物光收集色素蛋白复合物LHCII是PSII的主要天线单元,通常(尽管不是普遍)认为它在强光条件下的光保护能量耗散中起作用,这一过程被称为非光化学猝灭(NPQ)。LHCII中能量捕获和耗散的潜在机制仍然存在争议。各种提出的模型在分子和动力学细节上差异很大,但往往是基于对非常相似的孤立配合物的瞬态吸收测量的不同解释。在这里,我们提出了对淬灭LHCII聚集体荧光衰减动力学的模拟测量,以确定这种相对简单的测量是否可以区分不同的潜在NPQ机制。我们不仅模拟了基础物理(激发,能量迁移,猝灭和单线态-单线态湮灭),还模拟了信号检测和典型的实验数据分析。将其与已发表的荧光衰减动力学进行比较,我们发现:(1)即使在低(无湮灭)激发密度下,不同的提出的猝灭机制也会产生明显不同的荧光动力学,尽管差异程度取决于脉冲宽度。(2)测量的衰减动力学与大多数LHCII三聚体成为相对较慢的激发猝灭体一致。一小部分非常快的淬灭剂产生的动力学与任何观察到的测量结果都不相似。(3)为了准确再现实验动力学,有必要考虑至少两种不同的淬火机制,这支持了NPQ不是简单的二进制开关开关的观点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unravelling the fluorescence kinetics of light-harvesting proteins with simulated measurements
The plant light-harvesting pigment-protein complex LHCII is the major antenna sub-unit of PSII and is generally (though not universally) accepted to play a role in photoprotective energy dissipation under high light conditions, a process known Non-Photochemical Quenching (NPQ). The underlying mechanisms of energy trapping and dissipation within LHCII are still debated. Various proposed models differ considerably in their molecular and kinetic detail, but are often based on different interpretations of very similar transient absorption measurements of isolated complexes. Here we present a simulated measurement of the fluorescence decay kinetics of quenched LHCII aggregates to determine whether this relatively simple measurement can discriminate between different potential NPQ mechanisms. We simulate not just the underlying physics (excitation, energy migration, quenching and singlet-singlet annihilation) but also the signal detection and typical experimental data analysis. Comparing this to a selection of published fluorescence decay kinetics we find that: (1) Different proposed quenching mechanisms produce noticeably different fluorescence kinetics even at low (annihilation free) excitation density, though the degree of difference is dependent on pulse width. (2) Measured decay kinetics are consistent with most LHCII trimers becoming relatively slow excitation quenchers. A small sub-population of very fast quenchers produces kinetics which do not resemble any observed measurement. (3) It is necessary to consider at least two distinct quenching mechanisms in order to accurately reproduce experimental kinetics, supporting the idea that NPQ is not a simple binary switch switch.
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