Engineered biocatalytic architecture for enhanced light utilisation in algal H2 production
| dc.contributor.author | Kosourov, Sergey | |
| dc.contributor.author | Tammelin, Tekla | |
| dc.contributor.author | Allahverdiyeva, Yagut | |
| dc.contributor.organization | fi=molekulaarinen kasvibiologia|en=Molecular Plant Biology| | |
| dc.contributor.organization-code | 1.2.246.10.2458963.20.50535969575 | |
| dc.converis.publication-id | 477902007 | |
| dc.converis.url | https://research.utu.fi/converis/portal/Publication/477902007 | |
| dc.date.accessioned | 2025-08-27T22:26:14Z | |
| dc.date.available | 2025-08-27T22:26:14Z | |
| dc.description.abstract | Thin-layer photosynthetic biocatalysts (PBCs) offer an innovative and promising approach to the solar-powered generation of renewable chemicals and fuels. Thin-layer PBCs incorporate photosynthetic microbes, engineered for the production of targeted chemicals, into specifically tailored bio-based polymeric matrices. This unique integration forms a biocatalytic architecture that allows controlled distribution of light, nutrients, and substrates to the entrapped cells, optimising their performance. The research outlined in this study offers a systematic engineering approach to developing a biocatalytic architecture with improved light utilisation and enhanced photosynthetic conversion of captured light energy to molecular hydrogen (H2), an important energy carrier and fuel. This was achieved by entrapping wild-type green alga Chlamydomonas reinhardtii and its mutants with truncated light-harvesting chlorophyll antenna (Tla) complexes within thin-layer (up to 330 μm-thick) polymeric matrices under sulphur-deprived conditions. Our step-by-step engineering strategy involved: (i) synchronising culture growth to select cells with the highest photosynthetic capacity for entrapment, (ii) implementing a photosynthetic antenna gradient in the matrix by placing Tla cells atop the wild-type algae for better light distribution, (iii) replacing the conventional alginate formulation with TEMPO-oxidised cellulose nanofibers for improved matrix stability and porosity, and (iv) employing a semi-wet production approach to simplify the removal of produced H2 from the matrix with entrapped cells, thus preventing H2 recycling. The engineered PBCs achieved a fourfold increase in H2 photoproduction yield compared to conventional alginate films under the same irradiance (0.65 vs. 0.16 mol m−2 under 25 μmol photons m−2 s−1, respectively) and maintained H2 photoproduction activity for over 16 days. This resulted in a remarkable 4% light energy to hydrogen energy conversion efficiency at peak production activity and over 2% throughout the entire production period. These significant advancements highlight the potential of engineered thin-layer PBCs for efficient H2 production. The technology could be adapted for biomanufacturing various renewable chemicals and fuels. | |
| dc.format.pagerange | 937 | |
| dc.format.pagerange | 947 | |
| dc.identifier.eissn | 1754-5706 | |
| dc.identifier.jour-issn | 1754-5692 | |
| dc.identifier.olddbid | 202166 | |
| dc.identifier.oldhandle | 10024/185193 | |
| dc.identifier.uri | https://www.utupub.fi/handle/11111/46164 | |
| dc.identifier.url | https://pubs.rsc.org/en/content/articlelanding/2025/ee/d4ee03075c | |
| dc.identifier.urn | URN:NBN:fi-fe2025082785635 | |
| dc.language.iso | en | |
| dc.okm.affiliatedauthor | Kosourov, Sergey | |
| dc.okm.affiliatedauthor | Allahverdiyeva-Rinne, Yagut | |
| dc.okm.discipline | 1182 Biochemistry, cell and molecular biology | en_GB |
| dc.okm.discipline | 1183 Plant biology, microbiology, virology | en_GB |
| dc.okm.discipline | 1182 Biokemia, solu- ja molekyylibiologia | fi_FI |
| dc.okm.discipline | 1183 Kasvibiologia, mikrobiologia, virologia | fi_FI |
| dc.okm.internationalcopublication | not an international co-publication | |
| dc.okm.internationality | International publication | |
| dc.okm.type | A1 ScientificArticle | |
| dc.publisher | Royal Society of Chemistry | |
| dc.publisher.country | United Kingdom | en_GB |
| dc.publisher.country | Britannia | fi_FI |
| dc.publisher.country-code | GB | |
| dc.relation.doi | 10.1039/d4ee03075c | |
| dc.relation.ispartofjournal | Energy and Environmental Science | |
| dc.relation.issue | 2 | |
| dc.relation.volume | 18 | |
| dc.source.identifier | https://www.utupub.fi/handle/10024/185193 | |
| dc.title | Engineered biocatalytic architecture for enhanced light utilisation in algal H2 production | |
| dc.year.issued | 2025 |
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