Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link, Singapore 637371, Singapore.
Zernike Institute for Advanced Materials, University of Groningen, Nijenborgh 4, 9747 AG Groningen, Netherlands.
J Phys Chem Lett. 2022 May 19;13(19):4263-4271. doi: 10.1021/acs.jpclett.2c00194. Epub 2022 May 6.
We measure the two-dimensional electronic spectra of the LHCII(M)-CP29-CP24 complex in photosystem II (PSII) and provide the first study of the ultrafast excitation energy transfer (EET) processes of an asymmetric and native light-harvesting assembly of the antenna of PSII. With comparisons to LHCII, we observe faster energy equilibrations in the intermediate levels of the LHCII(M)-CP29-CP24 complex at 662 and 670 nm. Notably, the putative "bottleneck" states in LHCII exhibit faster effective dynamics in the LHCII(M)-CP24-CP29 complex, with the average lifetime shortening from 2.5 ps in LHCII to 1.2 ps in the bigger assembly. The observations are supported by high-level structure-based calculations, and the accelerated dynamics can be attributed to the structural change of LHCII(M) in the bigger complex. This study shows that the biological functioning structures of the complexes are important to understand the overall EET dynamics of the PSII supercomplex.
我们测量了光合系统 II (PSII) 中 LHCII(M)-CP29-CP24 复合物的二维电子光谱,并首次研究了 PSII 天线的不对称和天然光捕获组装体的超快激发能量转移 (EET) 过程。通过与 LHCII 的比较,我们在 LHCII(M)-CP29-CP24 复合物的 662nm 和 670nm 处观察到中间能级更快的能量平衡。值得注意的是,LHCII 中的假定“瓶颈”状态在 LHCII(M)-CP24-CP29 复合物中表现出更快的有效动力学,平均寿命从 LHCII 的 2.5ps 缩短到较大组装体的 1.2ps。这些观察结果得到了基于结构的高精度计算的支持,加速的动力学可归因于较大复合物中 LHCII(M)的结构变化。这项研究表明,复合物的生物功能结构对于理解 PSII 超复合物的整体 EET 动力学很重要。