Projects per year
Abstract
Developing bioinspired materials to convert sunlight into electricity efficiently is paramount for sustainable energy production. Fluorescent proteins are promising candidates as photoactive materials due to their high fluorescence quantum yield and absorption extinction coefficients in aqueous media. However, developing artificial bioinspired photosynthetic systems requires a detailed understanding of molecular interactions and energy transfer mechanisms in the required operating conditions. Here, the supramolecular self-assembly and photophysical properties of fluorescent proteins complexed with organic dyes are investigated in aqueous media. Supercharged mGreenLantern protein, mutated to have a charge of +22, is complexed together with anionic zinc phthalocyanines having 4 or 16 carboxylate groups. The structural characterization reveals a strong electrostatic interaction between the moieties, accompanied by partial conformational distortion of the protein structure, yet without compromising the mGreenLantern chromophore integrity as suggested by the lack of emission features related to the neutral form of the chromophore. The self-assembled biohybrid shows a total quenching of protein fluorescence, in favor of an energy transfer process from the protein to the phthalocyanine, as demonstrated by fluorescence lifetime and ultrafast transient absorption measurements. These results provide insight into the rich photophysics of fluorescent protein–dye complexes, anticipating their applicability as water-based photoactive materials.
Original language | English |
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Article number | 2400308 |
Number of pages | 10 |
Journal | Advanced Biology |
Volume | 9 |
Issue number | 5 |
Early online date | 16 Oct 2024 |
DOIs | |
Publication status | Published - May 2025 |
MoE publication type | A1 Journal article-refereed |
Keywords
- artificial photosynthesis
- biohybrid materials
- energy transfer
- phthalocyanines
- positively supercharged fluorescent proteins
- protein-based materials
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PhotoCage: Photoactive protein cage biohybrids for light-induced applications
Anaya, E. (Principal investigator)
01/09/2021 → 31/08/2026
Project: RCF Academy Research Fellow (new)
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-: LIBER Kostiainen
Kostiainen, M. (Principal investigator)
01/01/2022 → 31/03/2025
Project: RCF Centre of Excellence
Equipment
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Bioeconomy Research Infrastructure
Seppälä, J. (Manager)
School of Chemical EngineeringFacility/equipment: Facility