Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II

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...

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Main Authors: Do, Thanh Nhut, Nguyen, Hoang Long, Akhtar, Parveen, Zhong, Kai, Jansen, Thomas L. C., Knoester, Jasper, Caffarri, Stefano, Lambrev, Petar H., Tan, Howe-Siang
Other Authors: School of Physical and Mathematical Sciences
Format: Article
Language:English
Published: 2022
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Online Access:https://hdl.handle.net/10356/162349
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1623492022-10-17T00:45:35Z Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II Do, Thanh Nhut Nguyen, Hoang Long Akhtar, Parveen Zhong, Kai Jansen, Thomas L. C. Knoester, Jasper Caffarri, Stefano Lambrev, Petar H. Tan, Howe-Siang School of Physical and Mathematical Sciences Science::Chemistry Electronic Spectrum Plant Photosystem 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. Ministry of Education (MOE) This work was supported by grants from the Singapore Ministry of Education Academic Research Fund (Tier 1 RG2/19 and Tier 1 RG14/20 to Howe-Siang Tan), the National Research, Development and Innovations Office, Hungary (NKFIH 2018- 1.2.1-NKP-2018-000009 to Petar H. Lambrev), and the Eötvös Loránd Research Network (KÖ -36/2021 to Petar H. Lambrev). 2022-10-17T00:45:35Z 2022-10-17T00:45:35Z 2022 Journal Article Do, T. N., Nguyen, H. L., Akhtar, P., Zhong, K., Jansen, T. L. C., Knoester, J., Caffarri, S., Lambrev, P. H. & Tan, H. (2022). Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II. Journal of Physical Chemistry Letters, 13(19), 4263-4271. https://dx.doi.org/10.1021/acs.jpclett.2c00194 1948-7185 https://hdl.handle.net/10356/162349 10.1021/acs.jpclett.2c00194 35522529 2-s2.0-85130766630 19 13 4263 4271 en Tier 1 RG2/19 Tier 1 RG14/20 Journal of Physical Chemistry Letters © 2022 American Chemical Society. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Chemistry
Electronic Spectrum
Plant Photosystem
spellingShingle Science::Chemistry
Electronic Spectrum
Plant Photosystem
Do, Thanh Nhut
Nguyen, Hoang Long
Akhtar, Parveen
Zhong, Kai
Jansen, Thomas L. C.
Knoester, Jasper
Caffarri, Stefano
Lambrev, Petar H.
Tan, Howe-Siang
Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II
description 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.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
Do, Thanh Nhut
Nguyen, Hoang Long
Akhtar, Parveen
Zhong, Kai
Jansen, Thomas L. C.
Knoester, Jasper
Caffarri, Stefano
Lambrev, Petar H.
Tan, Howe-Siang
format Article
author Do, Thanh Nhut
Nguyen, Hoang Long
Akhtar, Parveen
Zhong, Kai
Jansen, Thomas L. C.
Knoester, Jasper
Caffarri, Stefano
Lambrev, Petar H.
Tan, Howe-Siang
author_sort Do, Thanh Nhut
title Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II
title_short Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II
title_full Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II
title_fullStr Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II
title_full_unstemmed Ultrafast excitation energy transfer dynamics in the LHCII-CP29-CP24 subdomain of plant photosystem II
title_sort ultrafast excitation energy transfer dynamics in the lhcii-cp29-cp24 subdomain of plant photosystem ii
publishDate 2022
url https://hdl.handle.net/10356/162349
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