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PMID: 11024026 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

An additional phosphate-binding element in arrestin molecule. Implications for the mechanism of arrestin activation.

The Journal of biological chemistry ·Vol. 275 ·No. 52 ·2000-12-29 ·Pages 41049-57

Vishnivetskiy SA, Schubert C, Climaco GC, Gurevich YV, Velez MG, Gurevich VV

Abstract

Arrestins quench the signaling of a wide variety of G protein-coupled receptors by virtue of high-affinity binding to phosphorylated activated receptors. The high selectivity of arrestins for this particular functional form of receptor ensures their timely binding and dissociation. In a continuing effort to elucidate the molecular mechanisms responsible for arrestin's selectivity, we used the visual arrestin model to probe the functions of its N-terminal beta-strand I comprising the highly conserved hydrophobic element Val-Ile-Phe (residues 11-13) and the adjacent positively charged Lys(14) and Lys(15). Charge elimination and reversal in positions 14 and 15 dramatically reduce arrestin binding to phosphorylated light-activated rhodopsin (P-Rh*). The same mutations in the context of various constitutively active arrestin mutants (which bind to P-Rh*, dark phosphorylated rhodopsin (P-Rh), and unphosphorylated light-activated rhodopsin (Rh*)) have minimum impact on P-Rh* and Rh* binding and virtually eliminate P-Rh binding. These results suggest that the two lysines "guide" receptor-attached phosphates toward the phosphorylation-sensitive trigger Arg(175) and participate in phosphate binding in the active state of arrestin. The elimination of the hydrophobic side chains of residues 11-13 (triple mutation V11A, I12A, and F13A) moderately enhances arrestin binding to P-Rh and Rh*. The effects of triple mutation V11A, I12A, and F13A in the context of phosphorylation-independent mutants suggest that residues 11-13 play a dual role. They stabilize arrestin's basal conformation via interaction with hydrophobic elements in arrestin's C-tail and alpha-helix I as well as its active state by interactions with alternative partners. In the context of the recently solved crystal structure of arrestin's basal state, these findings allow us to propose a model of initial phosphate-driven structural rearrangements in arrestin that ultimately result in its transition into the active receptor-binding state.

MeSH Terms
Amino Acid Sequence Arrestin/chemistry,metabolism Binding Sites Molecular Sequence Data Mutagenesis, Site-Directed Phosphates/metabolism Protein Structure, Secondary Structure-Activity Relationship
Chemicals
Arrestin Phosphates
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Vishnivetskiy S A
Ralph & Muriel Roberts Laboratory for Vision Science, Sun Health Research Institute, Sun City, Arizona 85372, USA.
Schubert C
Climaco G C
Gurevich Y V
Velez M G
Gurevich V V
Article Info
Journal
The Journal of biological chemistry
Abbr.
J Biol Chem
ISSN
0021-9258
Published
2000-12-29
Pages
41049-57
Language
English
Region
United States
NLM ID
2985121R
Subset
IM
Grants
NEI NIH HHS · EY11500 · United States
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