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Evidence Supporting the Hydrophobic-Mismatch Model for Cytochrome b6f-Driven State Transitions in the Cyanobacterium Synechocystis Species PCC 6803

Kovacs, Terezia and Kovács, László and Kis, Mihály and Tsuyama, Michito and Vajravel, Sindhujaa and Herman, Éva and Zlatkova Petrova, Nia and Dobrikova, Anelia and Zakar, Tomas and Todinova, Svetla and Krumova, Sashka and Gombos, Zoltán and Vladkova, Radka (2025) Evidence Supporting the Hydrophobic-Mismatch Model for Cytochrome b6f-Driven State Transitions in the Cyanobacterium Synechocystis Species PCC 6803. MEMBRANES (BASEL), 15 (12). No. 383. ISSN 2077-0375

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Abstract

While there is a consensus that the cytochrome b6f complex (cytb6f) in algae and plants is involved in the regulatory mechanism of oxygenic photosynthesis known as light-induced state transitions (STs), no such consensus exists for cyanobacteria. Here, we provide the first direct functional evidence for cytb6f using single-point mutation data. We introduced a PetD-Phe124Ala substitution in the cyanobacterium Synechocystis sp. PCC 6803 to test the key predictions of the hydrophobic-mismatch (HMM) model for cytb6f-driven STs in all oxygenic photosynthetic species. These predictions concern the role of the Phe/Tyr124fg-loop-PetD and the extent and kinetic characteristics of STs. The effects of PetD-F124A mutation on STs were monitored using 77K and Pulse-Amplitude-Modulated (PAM) fluorescence. For comparison, we employed a phycobilisome (PBS)-less Synechocystis mutant and wild-type (WT) strain, as well as the stn7 mutant and WT of Arabidopsis plant. The PetD-F124A mutation reduced the extent of STs and selectively affected the two-exponential kinetics components of the transitions. Under State 1 conditions, the mutant exhibited ~60% less energetic decoupling of PBS from photosystem I (PSI) compared to the WT. It is explainable by the HMM model with the inability of the PetD-F124A mutant, during the induction phase of the State 2→State 1 transition to adopt the cytb6f conformation with minimal hydrophobic thickness. PAM-derived parameters indicated that PSII electron transport function is not inhibited, and no detectable effect on cyclic electron transport around PSI was observed under low-light conditions. Circular dichroism and differential scanning calorimetry confirmed that both the PSI trimer/monomer ratio and the structural integrity of the PBSs are preserved in the mutant. The compensatory response to the mutation includes decreased PSI content and an increase in PBS rod size. In conclusion, (1) cytb6f is involved in cyanobacterial STs; (2) evidence is provided supporting the HMM model; (3) the electron transfer and signal transduction functions of cytb6f are separated into distinct domains; and (4) the signaling pathway regulating STs and pigment-protein composition in Synechocystis involves PetD-Phe124.

Item Type: Article
Additional Information: Funding Agency and Grant Number: Hungarian Government [GINOP-2.3.2.-15]; Hungarian Academy of Sciences [32-06-29]; SPS Invitation Fellowships in Japan [L-15559] Funding text: This research was funded by the bilateral grant agreement between the Bulgarian Academy of Sciences and the Hungarian Academy of Sciences via the free quota exchange visits program (to R.V.) and the bilateral project between the two Academies (No. 32-06-29), the Hungarian Government Grant GINOP-2.3.2.-15, and by the JSPS Invitation Fellowships in Japan (L-15559 to R.V.).
Uncontrolled Keywords: cytochrome b6f; circular dichroism; differential scanning calorimetry; hydrophobic mismatch; photosystem; PAL mutant; phycobilisome; State transitions; single-point mutation; stn7 Arabidopsis mutant
Subjects: Q Science / természettudomány > QH Natural history / természetrajz > QH301 Biology / biológia > QH3015 Molecular biology / molekuláris biológia
SWORD Depositor: MTMT SWORD
Depositing User: MTMT SWORD
Date Deposited: 11 Mar 2026 14:43
Last Modified: 11 Mar 2026 14:43
URI: https://real.mtak.hu/id/eprint/235563

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