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Spectral tuning of light-harvesting complex II in the siphonous alga Bryopsis corticulans and its effect on energy transfer dynamics

  • P. Akhtar
  • , P.J. Nowakowski
  • , W. Wang
  • , T.N. Do
  • , S. Zhao
  • , G. Siligardi
  • , G. Garab
  • , J.-R. Shen
  • , H.-S. Tan
  • , P.H. Lambrev

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

© 2020 The AuthorsLight-harvesting complex II (LHCII) from the marine green macroalga Bryopsis corticulans is spectroscopically characterized to understand the structural and functional changes resulting from adaptation to intertidal environment. LHCII is homologous to its counterpart in land plants but has a different carotenoid and chlorophyll (Chl) composition. This is reflected in the steady-state absorption, fluorescence, linear dichroism, circular dichroism and anisotropic circular dichroism spectra. Time-resolved fluorescence and two-dimensional electronic spectroscopy were used to investigate the consequences of this adaptive change in the pigment composition on the excited-state dynamics. The complex contains additional Chl b spectral forms – absorbing at around 650 nm and 658 nm – and lacks the red-most Chl a forms compared with higher-plant LHCII. Similar to plant LHCII, energy transfer between Chls occurs on timescales from under hundred fs (mainly from Chl b to Chl a) to several picoseconds (mainly between Chl a pools). However, the presence of long-lived, weakly coupled Chl b and Chl a states leads to slower exciton equilibration in LHCII from B. corticulans. The finding demonstrates a trade-off between the enhanced absorption of blue-green light and the excitation migration time. However, the adaptive change does not result in a significant drop in the overall photochemical efficiency of Photosystem II. These results show that LHCII is a robust adaptable system whose spectral properties can be tuned to the environment for optimal light harvesting.
Original languageEnglish
Article number148191
JournalBiochimica et Biophysica Acta - Bioenergetics
Volume1861
Issue number7
DOIs
Publication statusPublished - 1 Jul 2020
Externally publishedYes

Funding

The work is supported by grants from the Hungarian Ministry of Finance ( GINOP-2.3.2-15-2016-00001 ), the National Research, Development and Innovation Fund ( NKFI NN 124904 ; 2018-1.2.1-NKP-2018-00009 ), the Singapore Ministry of Education Academic Research Fund ( MOE2015-T2-1-039 ), the National Key Research and Development Program of China ( 2017YFA0503700 ), a CAS Key Research Program for Frontier Science ( QYZDY-SSW-SMC003 ), and the National Natural Science Foundation of China ( 31600191 ). CD measurements at the B23 beamline of the Diamond Light Source Ltd. were supported by the project CALIPSOplus under Grant Agreement 730872 from the EU Framework Programme for Research and Innovation HORIZON 2020.

FundersFunder number
CAS Key Research Program for Frontier ScienceQYZDY-SSW-SMC003
National Key Research and Development Program of China2017YFA0503700
Japan Society for the Promotion of Science17H06434
Singapore Ministry of Education Academic Research FundMOE2015-T2-1-039
Nemzeti Kutatási, Fejlesztési és Innovaciós Alap2018-1.2.1-NKP-2018-00009, NKFI NN 124904
National Natural Science Foundation of China730872, 31600191
Hungarian Ministry of FinanceGINOP-2.3.2-15-2016-00001

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 14 - Life Below Water
      SDG 14 Life Below Water

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