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Biology subjects

Elman, T.

Publications and source records attributed to Elman, T..

3 recordsLinked to original sources

Expanding The Algal Hydrogen Toolbox: A Non-GMO Platform Reveals Multiple Physiological Routes To Sustained Hydrogen Production Across Microalgae

Sustainable hydrogen production from microalgae remains limited by intrinsic physiological constraints and the need to preserve biomass value for food and feed applications. Transgenic approaches to overcome these limitations were proven successful, yet result in genetically modified (GMO) strains that face major regulatory and deployment barriers. Here, we present a non-GMO experimental platform that enables systematic isolation of hydrogen-producing phenotypes through high-throughput UV mutagenesis pipline coupled with targeted physiological screening. Applying this approach across phylogenetically distinct algal species, including the industrial strain Chlorella vulgaris and the extremophile Chlorella ohadii, we achieve high discovery efficiency, recovering 0.4-0.6% validated hydrogen-producing mutants and achieving 6.7-25% validation rates among screen-positive candidates, indicating strong enrichment at the primary screening stage. We show that sustained hydrogen production represents a physiologically accessible state emerging across diverse genetic backgrounds. This state is consistently associated with reorganization of photosynthetic electron partitioning, yet arises through multiple distinct configurations that differentially balance hydrogen production, oxygen metabolism, and carbon fixation. This framework provides a scalable route to identify hydrogen-producing strains in industrially relevant algae without introducing foreign DNA and expands the accessible design space for photobiological hydrogen production.

plant biology↗

A Conserved Mechanism for Positioning Ferredoxin NADP+ Reductase at Photosystem I in Green Algae

The association of ferredoxin-NADP+ reductase (FNR) with thylakoid membranes constitutes a central regulatory node in photosynthetic electron transport, governing NADPH production essential for carbon fixation. In cyanobacteria and higher plants, this interaction is mediated by an intrinsic FNR domain or specialized proteins, yet the mode of recruitment in green algae has remained enigmatic. Here, we show that in the green microalga Chlamydomonas reinhardtii, FNR is directly tethered to photosystem I-LHCI (PSI-LHCI) through a conserved N-terminal -helix of the antenna protein Lhca4. Cryogenic electron microscopy localizes FNR to the stromal side of PSI proximal to Lhca4, while AlphaFold modeling identifies a specific interaction interface, which we validate using isothermal titration calorimetry. Structural modeling further reveals that the spatial separation between PSI-bound FNR and ferredoxin (Fd) is incompatible with direct electron transfer, indicating that it occurs sequentially rather than through a stable PSI-Fd-FNR complex. Comparative analysis demonstrates that the FNR-binding N-terminal motif of Lhca proteins is conserved across diverse green microalgae, suggesting an evolutionarily conserved strategy for positioning FNR at PSI. Collectively, our results uncover a novel mechanism for FNR recruitment and establish a new principle by which photosynthetic electron partitioning is regulated through spatial organization of electron transfer components.

plant biology↗

Photobiological Hydrogen Production at Scale: Integrating Bioprocess Optimization and Techno-Economic Modeling

Microalgal hydrogen production driven by solar energy offers significant promise as a sustainable energy alternative, yet remains economically challenging due to issues of scalability from laboratory to industrial applications. Here, we demonstrate scalable hydrogen production at semi-industrial volumes using the Chlamydomonas reinhardtii pgr5 mutant, employing an optimized cultivation protocol and photobioreactor design. This approach achieves a fivefold increase in hydrogen yield. Notably, the post-production biomass maintains a high-quality protein and nutrients profile, emphasizing microalgae as a "green coin" with energy security on one side and food security on the other. Techno-economic analysis suggests, achievable hydrogen production costs could reach $2.70/kg H2 under projected improvements, and potentially decrease furthur to $1.48/kg with full optimization. By effectively bridging laboratory research and practical industrial implementation, our study establishes a dual-purpose algal hydrogen production platform aligned with circular economy principles, positioning microalgae prominently within sustainable energy and food frameworks.

bioengineering↗