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. 2010 Jun 15;107(24):10872-7.
doi: 10.1073/pnas.1001908107. Epub 2010 Jun 1.

Quaternary organization of a phytochrome dimer as revealed by cryoelectron microscopy

Affiliations

Quaternary organization of a phytochrome dimer as revealed by cryoelectron microscopy

Hua Li et al. Proc Natl Acad Sci U S A. .

Abstract

Phytochromes are a collection of dimeric photoreceptors that direct a diverse array of responses in plants and microorganisms through photoconversion between a red light-absorbing ground state Pr, and a far-red light-absorbing photoactivated state Pfr. Photoconversion from Pr to Pfr is initiated by a light-driven rotation within the covalently attached bilin, which then triggers a series of protein conformational changes in the binding pocket. These movements ultimately affect an appended output module, which often has reversible protein kinase activity. Propagation of the light signal from the bilin to the output module likely depends on the dimerization interface but its architecture and response to phototransformation remain unclear. Here, we used single particle cryoelectron microscopy to determine the quaternary arrangement of the phytochrome dimer as Pr, using the bacteriophytochrome (BphP) from Deinococcus radiodurans. Contrary to the long-standing view that the two monomers are held together solely via their C-terminal region, we provide unambiguous evidence that the N-terminal bilin-binding region of BphP also provides a dimerization interface with the C-terminal kinase domain appearing as a more flexible appendage. The BphP monomers dimerize in parallel with the polypeptides intimately twisting around each other in a right-handed fashion. Based on this electron microscopic picture, we propose that the light-driven conformational changes transmitted from the chromophore to the output module along the spine of this extensive dimer interface is the central feature underpinning phytochrome signaling.

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Conflict of interest statement

The authors declare no conflict of interest.

Figures

Fig. 1.
Fig. 1.
Domain organization and negative-staining EM image analysis of DrBphP. (A) The domain architecture of the DrBphP polypeptide revealing the linear arrangement of the PAS, GAF, PHY, and HK domains. Cys-24 (C) that covalently binds BV, and the DHp and CA subdomains and His532 (H) that serves as the phosphoacceptor site in the HK domain are indicated. TEV cleavage site introduced into DrBphP-TEV is shown. PSM, photosensory module. OPM, output module. (B, C) Two selected class averages of the negatively stained particles of DrBphP (B) and DrBphP-EGFP (C) in comparison with two side views of the PSM dimer from PaBphP as determined by X-ray crystallography [PDB ID 3C2W (15)]. The approximate position of the HK domains is indicated by the orange-colored shape. (D) Flexibility of the HK domains as observed by negative-staining EM. The right two pictures show DrBphP particles with symmetrically arranged HK domains (red arrows), whereas the remaining pictures show particles where the HK domains are variably displaced.
Fig. 2.
Fig. 2.
3D reconstruction of the DrBphP dimer. (A) The 3D map presented in several surface views obtained from negative-staining EM images. (B) Several reference-free 2D class averages of the DrBphP in comparisons with the reprojections of the negative-staining 3D map. (C) The final 3D cryoEM map of Pr presented in several surface views.
Fig. 3.
Fig. 3.
Docking domain crystal structures into the 3D cryoEM map of the DrBphP dimer in the Pr state. (A) Two orthogonal surface views of the density map colored according to the location of the PAS-GAF (yellow), PHY (white), and HK domains (orange). (BD) Docking of crystal structures for individual domains into the cryoEM map. The cryoEM densities for individual domains are segmented and shown separately in the semitransparent surface views. (B) Docking of the four-helix bundle from the DHp subdomain extracted from the T. maritima HK853 structure [PDB ID 3DGE (10, 27)]. The crystal structure of the CA subdomain was omitted due to the lack of density for this region in the cryoEM model. (C) Docking of the PHY domains extracted from the PaBphP photosensory module structure [PDB ID 3C2W (15)]. The PHY domains in the DrBphP cryoEM map (blue) are rotated approximately 30% from their positions in the PaBphP crystal structure (cyan). The largest region of unoccupied density is located by the red arrows. (D) Docking of the PAS-GAF domains from DrBphP [PDB ID 2O9C (13)]. The extra density in the cryoEM map marked by the red arrow is attributed to the disordered N-terminal 17 residues bearing the T7 tag.
Fig. 4.
Fig. 4.
Proposed model of the DrBphP dimer derived from both cryoEM and crystal structures. (A) Ribbon diagram of the DrBphP monomer assembled based on cryoEM from the crystal structures of the PAS-GAF domains (green) from DrBphP (13), the PHY domain (purple) from PaBphP (15), and the HK domain (cyan) from T. maritima HK853 (10). The positions of BV, the histidine (H) and ATP-binding site involved in autophosphorylation, and the helical spine are indicated. (B) Composite ribbon and space filling views of the DrBphP dimer showing the right-hand twisted association of the monomers. (C) The previous model (I) and our updated model (II) of Phy dimerization. Astericks indicate BV.
Fig. 5.
Fig. 5.
Light-induced conformation changes transmitted from the bilin to the HK domain as determined by proteolytic susceptibility of DrBphP-TEV. See Fig. 1A for location of TEV cleavage site. (A) Proteolytic cleavage of DrBphP-TEV by TEV protease in the dark-adapted Pr state and following saturating R irradiation, which generates a mixture containing approximately 80% Pfr. Arrowheads locate the SDS-PAGE migration of the PAS-GAF-PHY and HK domains proteolytically released from the full-length chromoprotein (FL). (Upper) Detection of the protein products by staining with Coomassie Blue. (Lower) Detection of the BV-containing fragments by zinc-induced fluorescence following SDS-PAGE. (B) Rates of TEV digestion as Pr and Pfr. Open figures represent the rate of loss for full-length DrBphP-TEV. Closed figures represent the rate of appearance for the PAS-GAF-PHY fragment.

References

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