Structure-based model of fucoxanthin-chlorophyll protein complex: Calculations of chlorophyll electronic couplings.
Austėja MikalčiūtėAndrius GelzinisMindaugas MačernisClaudia BüchelBruno RobertLeonas ValkunasJevgenij ChmeliovPublished in: The Journal of chemical physics (2022)
Diatoms are a group of marine algae that are responsible for a significant part of global oxygen production. Adapted to life in an aqueous environment dominated by the blue-green light, their major light-harvesting antennae-fucoxanthin-chlorophyll protein complexes (FCPs)-exhibit different pigment compositions than of plants. Despite extensive experimental studies, until recently the theoretical description of excitation energy dynamics in these complexes was limited by the lack of high-resolution structural data. In this work, we use the recently resolved crystallographic information of the FCP complex from Phaeodactylum tricornutum diatom [Wang et al., Science 363, 6427 (2019)] and quantum chemistry-based calculations to evaluate the chlorophyll transition dipole moments, atomic transition charges from electrostatic potential, and the inter-chlorophyll couplings in this complex. The obtained structure-based excitonic couplings form the foundation for any modeling of stationary or time-resolved spectroscopic data. We also calculate the inter-pigment Förster energy transfer rates and identify two quickly equilibrating chlorophyll clusters.
Keyphrases
- energy transfer
- quantum dots
- high resolution
- molecular dynamics simulations
- molecular dynamics
- public health
- electronic health record
- density functional theory
- big data
- molecular docking
- mass spectrometry
- binding protein
- small molecule
- amino acid
- machine learning
- data analysis
- climate change
- ionic liquid
- health information
- deep learning
- water soluble
- artificial intelligence