4.6 Article

Crystallographic and Electron Microscopic Analyses of a Bacterial Phytochrome Reveal Local and Global Rearrangements during Photoconversion

期刊

JOURNAL OF BIOLOGICAL CHEMISTRY
卷 289, 期 35, 页码 24573-24587

出版社

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M114.571661

关键词

Electron Microscopy (EM); Photomorphogenesis; Photoreceptor; Phototransduction; Plant Biochemistry; Protein Structure; X-ray Crystallography; Bilin; Photoconversion; Phytochrome

资金

  1. National Institutes of Health [R01 AI070285]
  2. National Science Foundation [MCB-1329956]
  3. Brookhaven National Laboratory Laboratory [10-16]
  4. Direct For Biological Sciences
  5. Div Of Molecular and Cellular Bioscience [1623935, 1329956] Funding Source: National Science Foundation

向作者/读者索取更多资源

Background: Phytochromes are dimeric bili-proteins central to photoperception by plants and microorganisms. Results: An informative perspective on photoconversion from the dark-adapted to the photoactivated state was provided by crystallographic and electron microscopic analyses of a bacterial version. Conclusion: Light-induced conformational changes in the bilin induce a large scale reorientation of the sister output modules. Significance: The structures offer a model for signal transmission by phytochromes. Phytochromes are multidomain photoswitches that drive light perception in plants and microorganisms by coupling photoreversible isomerization of their bilin chromophore to various signaling cascades. How changes in bilin conformation affect output by these photoreceptors remains poorly resolved and might include several species-specific routes. Here, we present detailed three-dimensional models of the photosensing module and a picture of an entire dimeric photoreceptor through structural analysis of the Deinococcus radiodurans phytochrome BphP assembled with biliverdin (BV). A 1.16- resolution crystal structure of the bilin-binding pocket in the dark-adapted red light-absorbing state illuminated the intricate network of bilin/protein/water interactions and confirmed the protonation and ZZZssa conformation of BV. Structural and spectroscopic comparisons with the photochemically compromised D207A mutant revealed that substitutions of Asp-207 allow inclusion of cyclic porphyrins in addition to BV. A crystal structure of the entire photosensing module showed a head-to-head, twisted dimeric arrangement with bowed helical spines and a hairpin protrusion connecting the cGMP phosphodiesterase/adenylyl cyclase/FhlA (GAF) and phytochrome-specific (PHY) domains. A key conserved hairpin feature is its anti-parallel, two -strand stem, which we show by mutagenesis to be critical for BphP photochemistry. Comparisons of single particle electron microscopic images of the full-length BphP dimer in the red light-absorbing state and the photoactivated far-red light-absorbing state revealed a large scale reorientation of the PHY domain relative to the GAF domain, which alters the position of the downstream histidine kinase output module. Together, our data support a toggle model whereby bilin photoisomerization alters GAF/PHY domain interactions through conformational modification of the hairpin, which regulates signaling by impacting the relationship between sister output modules.

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