Literature DB >> 3365420

Inactivation of photoexcited rhodopsin in retinal rods: the roles of rhodopsin kinase and 48-kDa protein (arrestin).

N Bennett1, A Sitaramayya.   

Abstract

The inactivation of excited rhodopsin in the presence of ATP, rhodopsin kinase, and/or arrestin has been studied from its effect on the two subsequent steps in the light-induced enzymatic cascade: metarhodopsin II catalyzed activation of G-protein and G-protein-dependent activation of cGMP phosphodiesterase. The inactivation of G-protein (from light-scattering measurements) and that of phosphodiesterase (from measurements of cGMP hydrolysis) have been studied and compared in reconstituted systems containing various combinations of the proteins involved (rhodopsin, G-protein, phosphodiesterase, kinase, and arrestin). Our results show that rhodopsin kinase alone can terminate the activation of G-protein and that arrestin speeds up the process at a relative concentration similar to that reported in the rod (half-maximal effect at 50 nM for 4.4 microM rhodopsin). Measurements of rhodopsin phosphorylation under identical conditions show that in the presence of arrestin total metarhodopsin II inactivation is achieved when only 0.5-1.4 phosphates are bound per bleached rhodopsin, whereas in the absence of arrestin it requires binding of 12-16 phosphates per bleached rhodopsin. Phosphodiesterase activity can similarly be turned off by kinase, and the process is similarly accelerated by arrestin.

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Year:  1988        PMID: 3365420     DOI: 10.1021/bi00405a049

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  16 in total

1.  Normal light response, photoreceptor integrity, and rhodopsin dephosphorylation in mice lacking both protein phosphatases with EF hands (PPEF-1 and PPEF-2).

Authors:  P Ramulu; M Kennedy; W H Xiong; J Williams; M Cowan; D Blesh; K W Yau; J B Hurley; J Nathans
Journal:  Mol Cell Biol       Date:  2001-12       Impact factor: 4.272

2.  Rhodopsin and its kinase.

Authors:  Izabela Sokal; Alexander Pulvermüller; Janina Buczyłko; Klaus-Peter Hofmann; Krzysztof Palczewski
Journal:  Methods Enzymol       Date:  2002       Impact factor: 1.600

3.  Concentration-dependent tetramerization of bovine visual arrestin.

Authors:  Yasushi Imamoto; Chie Tamura; Hironari Kamikubo; Mikio Kataoka
Journal:  Biophys J       Date:  2003-08       Impact factor: 4.033

4.  Effect of Rhodopsin Phosphorylation on Dark Adaptation in Mouse Rods.

Authors:  Justin Berry; Rikard Frederiksen; Yun Yao; Soile Nymark; Jeannie Chen; Carter Cornwall
Journal:  J Neurosci       Date:  2016-06-29       Impact factor: 6.167

5.  Origin of reproducibility in the responses of retinal rods to single photons.

Authors:  F Rieke; D A Baylor
Journal:  Biophys J       Date:  1998-10       Impact factor: 4.033

6.  Regulatory arrestin cycle secures the fidelity and maintenance of the fly photoreceptor cell.

Authors:  T Byk; M Bar-Yaacov; Y N Doza; B Minke; Z Selinger
Journal:  Proc Natl Acad Sci U S A       Date:  1993-03-01       Impact factor: 11.205

Review 7.  Structure and functions of arrestins.

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

8.  The proximal promoter of the mouse arrestin gene directs gene expression in photoreceptor cells and contains an evolutionarily conserved retinal factor-binding site.

Authors:  T Kikuchi; K Raju; M L Breitman; T Shinohara
Journal:  Mol Cell Biol       Date:  1993-07       Impact factor: 4.272

9.  Kinetics of turn-offs of frog rod phototransduction cascade.

Authors:  Luba A Astakhova; Michael L Firsov; Victor I Govardovskii
Journal:  J Gen Physiol       Date:  2008-11       Impact factor: 4.086

Review 10.  Constitutively active rhodopsin and retinal disease.

Authors:  Paul Shin-Hyun Park
Journal:  Adv Pharmacol       Date:  2014
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