Literature DB >> 1651326

Role of the carboxyl-terminal region of arrestin in binding to phosphorylated rhodopsin.

K Palczewski1, J Buczyłko, N R Imami, J H McDowell, P A Hargrave.   

Abstract

The structural and functional properties of arrestin were studied by subjecting the protein to limited proteolysis. Limited proteolysis by trypsin cleaves arrestin (48 kDa), producing 20-25-kDa fragments. Prior to this stage of proteolysis, trypsin produced 46.6-, 45.4-, and 42-kDa fragments. Structural analysis of the proteolytic fragments demonstrated major cleavage at the carboxyl terminus, indicating that the carboxyl terminus is highly exposed. We found that forms of arrestin truncated at their carboxyl terminus maintained their functional properties and bound to phosphorylated rhodopsin. Native arrestin binds only to photoexcited phosphorylated rhodopsin, whereas the truncated arrestin binds to phosphorylated rhodopsin independent of its exposure to light. The truncated forms of arrestin were separated from native arrestin by a chromatographic procedure and subsequently characterized in functional studies. The binding of the truncated forms of arrestin to phosphorylated photoexcited rhodopsin is more tight than the binding of native arrestin as determined by a direct binding assay and the phosphodiesterase assay. We suggest that the acidic carboxyl-terminal region of arrestin may act as a regulator for light-dependent binding to phosphorylated rhodopsin.

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Year:  1991        PMID: 1651326

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  25 in total

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3.  Functional map of arrestin-1 at single amino acid resolution.

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4.  Conformational dynamics of helix 8 in the GPCR rhodopsin controls arrestin activation in the desensitization process.

Authors:  Kristina Kirchberg; Tai-Yang Kim; Martina Möller; Darko Skegro; Gayathri Dasara Raju; Joachim Granzin; Georg Büldt; Ramona Schlesinger; Ulrike Alexiev
Journal:  Proc Natl Acad Sci U S A       Date:  2011-10-28       Impact factor: 11.205

5.  Photocyclic behavior of rhodopsin induced by an atypical isomerization mechanism.

Authors:  Sahil Gulati; Beata Jastrzebska; Surajit Banerjee; Ángel L Placeres; Przemyslaw Miszta; Songqi Gao; Karl Gunderson; Gregory P Tochtrop; Sławomir Filipek; Kota Katayama; Philip D Kiser; Muneto Mogi; Phoebe L Stewart; Krzysztof Palczewski
Journal:  Proc Natl Acad Sci U S A       Date:  2017-03-13       Impact factor: 11.205

Review 6.  Emerging paradigms of β-arrestin-dependent seven transmembrane receptor signaling.

Authors:  Arun K Shukla; Kunhong Xiao; Robert J Lefkowitz
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Review 7.  Structure and functions of arrestins.

Authors:  K Palczewski
Journal:  Protein Sci       Date:  1994-09       Impact factor: 6.725

8.  Molecular mechanism of GPCR-mediated arrestin activation.

Authors:  Naomi R Latorraca; Jason K Wang; Brian Bauer; Raphael J L Townshend; Scott A Hollingsworth; Julia E Olivieri; H Eric Xu; Martha E Sommer; Ron O Dror
Journal:  Nature       Date:  2018-05-02       Impact factor: 49.962

9.  Topographic study of arrestin using differential chemical modifications and hydrogen/deuterium exchange.

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Review 10.  β-arrestins and G protein-coupled receptor trafficking.

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Journal:  Handb Exp Pharmacol       Date:  2014
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