Authors
Cunningham, K. W., Wakao, S., Hall, J. L., Blaby-Haas, C., Ivatury, R., Gleeson, L., Chuang, D., Kim, J. J., Moseley, J. L., Fleming, G. R., Niyogi, K. K.
Abstract
Photosynthetic organisms protect themselves from excess light through non-photochemical quenching (NPQ), a process that safely dissipates excess light energy as heat. Current understanding of NPQ is largely drawn from a few model systems, leaving it unclear how universal NPQ mechanisms are across the green lineage. We characterize the slow, sustained NPQ of the green alga, Auxenochlorella protothecoides x symbiontica (UTEX 250-A). The Auxenochlorella genome lacks Light-Harvesting Complex Stress Related (LHCSR), one of the two proteins required for the fast energy-dependent quenching (qE) component of NPQ. Mutants lacking the Photosystem II Subunit S (PSBS)-like gene (psbsl1) in Auxenochlorella had no effect on NPQ, indicating this alga lacks canonical qE. We identified two candidate enzymes associated with zeaxanthin-dependent quenching (qZ), which has slower kinetics: a plant-type Violaxanthin De-Epoxidase (VDE) and an algal-type Chlorophycean Violaxanthin De-Epoxidase (CVDE). High light did not trigger the expected conversion of violaxanthin to zeaxanthin, a pigment change that is a hallmark of qZ. Mutants lacking VDE (vde1), CVDE (cvde1), or both enzymes (vde1 cvde1) still displayed slow, reversible NPQ. However, when the Auxenochlorella VDE1 and CVDE1 were expressed in a VDE-deficient mutant of Nicotiana benthamiana, both enzymes restored zeaxanthin production and NPQ, confirming they are catalytically functional de-epoxidases. Together, these results reveal an alga that retains two functional, evolutionarily distinct xanthophyll-cycle enzymes yet does not rely on typical xanthophyll pigment dynamics for photoprotection. This points to a biological function that is decoupled from de-epoxidase activity, highlighting unexplored diversity in green algal photoprotection.
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bioRxiv
The authors list and abstract were imported from bioRxiv on 03 Oct 2026.
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