Structure and energy transfer of a minimal PSI–LHCI supercomplex with FNR binding from a terrestrial eustigmatophyte
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Soil microalgae endure harsh terrestrial stressors, such as intense light. Eustigmatophytes are an independent evolutionary branch within stramenopiles and occupy diverse aquatic and terrestrial environments, but the structural organization of their photosynthetic apparatus remains poorly understood. Here, we determined the cryo-electron microscopy structure of a photosystem I–light-harvesting complex I (PSI–LHCI) supercomplex bound with ferredoxin-NADP + oxidoreductase (FNR) from the terrestrial eustigmatophyte Vischeria stellata at 2.44 Å resolution. The supercomplex contains a monomeric PSI core associated with only three LHCI subunits, representing the smallest PSI–LHCI reported among structurally characterized red-lineage PSI complexes composed of violaxanthin-Chl a proteins (VCPs). The three VCPIs with distinct structure features and arrangements form a compact belt along the PsaL–PsaI–PsaM side of PSI. The structure also resolves a 43-residue N-terminal segment of FNR (FNR-N) bound to the PSI stromal surface, which is stabilized by both a eustigmatophyte-conserved insertion in PsaL and the N-terminal region of PsaD. In contrast, the catalytic region of FNR was not resolved, suggesting conformational flexibility. Computational simulations indicate potential excitation-energy-transfer pathways connecting the three VCPI subunits to the PSI core and highlight lineage-specific pigments that maintain energetic connectivity within the exceptionally compact antenna. Our analysis further reveals conservation of FNR tethering despite pronounced diversification of antenna size and organization. These findings uncover a modular evolutionary principle in which PSI acceptor-side organization is retained while the light-harvesting antenna is extensively remodeled, providing a framework for understanding the diversification of photosynthetic energy conversion across ecological transitions.