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高激光功率密度对早期菌紫质光循环中间产物的结构影响。

Structural effects of high laser power densities on an early bacteriorhodopsin photocycle intermediate.

机构信息

Division of Biology and Chemistry, Paul Scherrer Institut, Villigen, Switzerland.

Institute of Molecular Biology and Biophysics, Department of Biology, ETH Zürich, Zürich, Switzerland.

出版信息

Nat Commun. 2024 Nov 27;15(1):10278. doi: 10.1038/s41467-024-54422-8.

Abstract

Time-resolved serial crystallography at X-ray Free Electron Lasers offers the opportunity to observe ultrafast photochemical reactions at the atomic level. The technique has yielded exciting molecular insights into various biological processes including light sensing and photochemical energy conversion. However, to achieve sufficient levels of activation within an optically dense crystal, high laser power densities are often used, which has led to an ongoing debate to which extent photodamage may compromise interpretation of the results. Here we compare time-resolved serial crystallographic data of the bacteriorhodopsin K-intermediate collected at laser power densities ranging from 0.04 to 2493 GW/cm and follow energy dissipation of the absorbed photons logarithmically from picoseconds to milliseconds. Although the effects of high laser power densities on the overall structure are small, in the upper excitation range we observe significant changes in retinal conformation and increased heating of the functionally critical counterion cluster. We compare light-activation within crystals to that in solution and discuss the impact of the observed changes on bacteriorhodopsin biology.

摘要

在 X 射线自由电子激光上进行时间分辨连续晶体学研究为在原子水平上观察超快光化学反应提供了机会。该技术为各种生物过程(包括光感应和光化学能量转换)提供了令人兴奋的分子见解。然而,为了在光学密度高的晶体中达到足够的激活水平,通常使用高激光功率密度,这引发了一场持续的争论,即光损伤在多大程度上可能影响对结果的解释。在这里,我们比较了在激光功率密度范围为 0.04 到 2493 GW/cm 的情况下收集的菌紫质 K 中间态的时间分辨连续晶体学数据,并对数秒到毫秒的吸收光子的能量耗散进行了跟踪。尽管高激光功率密度对整体结构的影响很小,但在较高的激发范围内,我们观察到视黄醛构象发生了显著变化,并导致功能关键的反离子簇的加热增加。我们将晶体中的光激活与溶液中的光激活进行了比较,并讨论了观察到的变化对菌紫质生物学的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a087/11603225/f6aa13510da9/41467_2024_54422_Fig1_HTML.jpg

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