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Solution structure of a cyanobacterial phytochrome GAF domain in the red-light-absorbing ground state
Authors:Cornilescu Gabriel  Ulijasz Andrew T  Cornilescu Claudia C  Markley John L  Vierstra Richard D
Affiliation:1 National Magnetic Resonance Facility at Madison, University of Wisconsin, Madison, WI 53706, USA
2 Department of Genetics, University of Wisconsin, 425-G Henry Mall, Madison, WI 53706, USA
3 Center for Eukaryotic Structural Genomics, University of Wisconsin, Madison, WI 53706, USA
Abstract:
The unique photochromic absorption behavior of phytochromes (Phys) depends on numerous reversible interactions between the bilin chromophore and the associated polypeptide. To help define these dynamic interactions, we determined by NMR spectroscopy the first solution structure of the chromophore-binding cGMP phosphodiesterase/adenylcyclase/FhlA (GAF) domain from a cyanobacterial Phy assembled with phycocyanobilin (PCB). The three-dimensional NMR structure of Synechococcus OS-B′ cyanobacterial Phy 1 in the red-light-absorbing state of Phy (Pr) revealed that PCB is bound to Cys138 of the GAF domain via the A-ring ethylidene side chain and is buried within the GAF domain in a ZZZsyn,syn,anti configuration. The D ring of the chromophore sits within a hydrophobic pocket and is tilted by approximately 80° relative to the B/C rings by contacts with Lys52 and His169. The solution structure revealed remarkable flexibility for PCB and several adjacent amino acids, indicating that the Pr chromophore has more freedom in the binding pocket than anticipated. The propionic acid side chains of rings B and C and Arg101 and Arg133 nearby are especially mobile and can assume several distinct and energetically favorable conformations. Mutagenic studies on these arginines, which are conserved within the Phy superfamily, revealed that they have opposing roles, with Arg101 and Arg133 helping stabilize and destabilize the far-red-light-absorbing state of Phy (Pfr), respectively. Given the fact that the Synechococcus OS-B′ GAF domain can, by itself, complete the Pr → Pfr photocycle, it should now be possible to determine the solution structure of the Pfr chromophore and surrounding pocket using this Pr structure as a framework.
Keywords:Phy, phytochrome   GAF, cGMP phosphodiesterase/adenylcyclase/FhlA   PCB, phycocyanobilin   Pr, red-light-absorbing state of phytochrome   Pfr, far-red-light-absorbing state of phytochrome   PAS, Per/Arndt/Sim   R, red light   FR, far-red light   BphP, bacteriophytochrome   BV, biliverdin IXα   Cph, cyanobacterial phytochrome   PHY, phytochrome domain   3D, three-dimensional   SyB, Synechococcus OS-B&prime     HSQC, heteronuclear single-quantum coherence   RDC, residual dipolar coupling   PDB, Protein Data Bank   NOE, nuclear Overhauser effect   DrBphP, BphP from Deinococcus radiodurans   RpBphP3, BphP from Rhodopseudomonas palustris   RR, resonance Raman   NOESY, NOE spectroscopy   NIH, National Institutes of Health
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