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Węgrzyn, A.

Publications and source records attributed to Węgrzyn, A..

2 recordsLinked to original sources

Species-dependent accumulation of PsaA in etioplasts points to light-independent steps in Photosystem I biogenesis

Whether Photosystem I (PSI) core subunits accumulate prior to light exposure in developing angiosperm seedlings remains unresolved, with conflicting reports across species. Here, we investigated the presence and membrane colocalization of the PSI core subunit PsaA in etioplasts of dark-grown angiosperms representing dicot and monocot species. Immunoblotting showed that PsaA accumulates in etioplasts of all three dicot species examined (pea, Arabidopsis, and runner bean), whereas in the monocot oat it was detected only after prolonged etiolation, at substantially lower levels and with an anomalously high apparent molecular weight. Blue-native PAGE analysis reveals that a fraction of PsaA co-migrates with LPOR, PsaB, FNR, and chlorophyll synthase, suggesting co-localization within a shared membrane microdomain rather than stable complex formation. The thylakoid insertase Alb3 was more abundant in dicot etioplasts, consistent with a potential role in the early integration of PsaA into the membrane. Upon illumination, pea reached PSI functionality faster than oat, with P700 oxidation detectable 30 min earlier, linking the dark accumulation of PsaA to an accelerated photosynthetic onset. These findings demonstrate light-independent accumulation of a PSI core subunit in a species-dependent manner and point to early steps in PSI biogenesis that precede full photosynthetic complex assembly. HighlightContrary to prevailing models, a Photosystem I core subunit PsaA accumulates in dark-grown angiosperm seedlings before light exposure, revealing light-independent early steps in photosynthetic complex biogenesis.

Preprint↗

Mature plant chloroplasts form reversible gyroid cubic membranes

Across kingdoms, cells fold their membranes into precise shapes closely linked to their functions. In mature land-plant chloroplasts, the photosynthetic membranes have been viewed as strictly lamellar and it is unknown whether they can take on a different structure while remaining functional. Here, we show that mature Arabidopsis thaliana chloroplasts can transform this network into a gyroid-type cubic membrane, which we call the gyrobody. The gyrobody forms reversibly during the night and preserves photosystem II photochemistry. A decrease in stromal side thylakoid surface charge, caused by lower protein phosphorylation, triggers the lamellar-to-gyroid transition which the curvature-inducing lipid MGDG facilitates. This shows that the mature plant thylakoid network is not locked into its lamellar form, revealing unexpected structural flexibility of this system.

Plant Biology↗