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Direct allosteric regulation between the GAF domain and catalytic domain of photoreceptor phosphodiesterase PDE6.

Publication ,  Journal Article
Zhang, X-J; Cahill, KB; Elfenbein, A; Arshavsky, VY; Cote, RH
Published in: J Biol Chem
October 31, 2008

Photoreceptor cGMP phosphodiesterase (PDE6) is the central enzyme in the visual transduction cascade. The PDE6 catalytic subunit contains a catalytic domain and regulatory GAF domains. Unlike most GAF domain-containing cyclic nucleotide phosphodiesterases, little is known about direct allosteric communication of PDE6. In this study, we demonstrate for the first time direct, inter-domain allosteric communication between the GAF and catalytic domains in PDE6. The binding affinity of PDE6 for pharmacological inhibitors or for the C-terminal region of the inhibitory gamma subunit (Pgamma), known to directly inhibit PDE6 catalysis, was increased approximately 2-fold by ligands binding to the GAF domain. Binding of the N-terminal half of Pgamma to the GAF domains suffices to induce this allosteric effect. Allosteric communication between GAF and catalytic domains is reciprocal, in that drug binding to the catalytic domain slowed cGMP dissociation from the GAF domain. Although cGMP hydrolysis was not affected by binding of Pgamma1-60, Pgamma lacking its last seven amino acids decreased the Michaelis constant of PDE6 by 2.5-fold. Pgamma1-60 binding to the GAF domain increased vardenafil but not cGMP affinity, indicating that substrate- and inhibitor-binding sites do not totally overlap. In addition, prolonged incubation of PDE6 with vardenafil or sildenafil (but not 3-isobutyl-1-methylxanthine and zaprinast) induced a distinct conformational change in the catalytic domain without affecting the binding properties of the GAF domains. We conclude that although Pgamma-mediated regulation plays the dominant role in visual excitation, the direct, inter-domain allosteric regulation described in this study may play a feedback role in light adaptational processes during phototransduction.

Duke Scholars

Published In

J Biol Chem

DOI

ISSN

0021-9258

Publication Date

October 31, 2008

Volume

283

Issue

44

Start / End Page

29699 / 29705

Location

United States

Related Subject Headings

  • Vardenafil Dihydrochloride
  • Triazines
  • Sulfones
  • Sildenafil Citrate
  • Retina
  • Purines
  • Protein Structure, Tertiary
  • Protein Conformation
  • Piperazines
  • Molecular Conformation
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Zhang, X.-J., Cahill, K. B., Elfenbein, A., Arshavsky, V. Y., & Cote, R. H. (2008). Direct allosteric regulation between the GAF domain and catalytic domain of photoreceptor phosphodiesterase PDE6. J Biol Chem, 283(44), 29699–29705. https://doi.org/10.1074/jbc.M803948200
Zhang, Xiu-Jun, Karyn B. Cahill, Arye Elfenbein, Vadim Y. Arshavsky, and Rick H. Cote. “Direct allosteric regulation between the GAF domain and catalytic domain of photoreceptor phosphodiesterase PDE6.J Biol Chem 283, no. 44 (October 31, 2008): 29699–705. https://doi.org/10.1074/jbc.M803948200.
Zhang X-J, Cahill KB, Elfenbein A, Arshavsky VY, Cote RH. Direct allosteric regulation between the GAF domain and catalytic domain of photoreceptor phosphodiesterase PDE6. J Biol Chem. 2008 Oct 31;283(44):29699–705.
Zhang, Xiu-Jun, et al. “Direct allosteric regulation between the GAF domain and catalytic domain of photoreceptor phosphodiesterase PDE6.J Biol Chem, vol. 283, no. 44, Oct. 2008, pp. 29699–705. Pubmed, doi:10.1074/jbc.M803948200.
Zhang X-J, Cahill KB, Elfenbein A, Arshavsky VY, Cote RH. Direct allosteric regulation between the GAF domain and catalytic domain of photoreceptor phosphodiesterase PDE6. J Biol Chem. 2008 Oct 31;283(44):29699–29705.

Published In

J Biol Chem

DOI

ISSN

0021-9258

Publication Date

October 31, 2008

Volume

283

Issue

44

Start / End Page

29699 / 29705

Location

United States

Related Subject Headings

  • Vardenafil Dihydrochloride
  • Triazines
  • Sulfones
  • Sildenafil Citrate
  • Retina
  • Purines
  • Protein Structure, Tertiary
  • Protein Conformation
  • Piperazines
  • Molecular Conformation