Literature DB >> 12177057

Rhodopsin with 11-cis-locked chromophore is capable of forming an active state photoproduct.

Guibao Fan1, Friedrich Siebert, Mordechai Sheves, Reiner Vogel.   

Abstract

The visual pigment rhodopsin is characterized by an 11-cis retinal chromophore bound to Lys-296 via a protonated Schiff base. Following light absorption the C(11)=C(12) double bond isomerizes to trans configuration and triggers protein conformational alterations. These alterations lead to the formation of an active intermediate (Meta II), which binds and activates the visual G protein, transducin. We have examined by UV-visible and Fourier transform IR spectroscopy the photochemistry of a rhodopsin analogue with an 11-cis-locked chromophore, where cis to trans isomerization around the C(11)=C(12) double bond is prevented by a 6-member ring structure (Rh(6.10)). Despite this lock, the pigment was found capable of forming an active photoproduct with a characteristic protein conformation similar to that of native Meta II. This intermediate is further characterized by a protonated Schiff base and protonated Glu-113, as well as by its ability to bind a transducin-derived peptide previously shown to interact efficiently with native Meta II. The yield of this active photointermediate is pH-dependent and decreases with increasing pH. This study shows that with the C(11)=C(12) double bond being locked, isomerization around the C(9)=C(10) or the C(13)=C(14) double bonds may well lead to an activation of the receptor. Additionally, prolonged illumination at pH 7.5 produces a new photoproduct absorbing at 385 nm, which, however, does not exhibit the characteristic active protein conformation.

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Year:  2002        PMID: 12177057     DOI: 10.1074/jbc.M205033200

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


  6 in total

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Authors:  Jureepan Saranak; Kenneth W Foster
Journal:  Eukaryot Cell       Date:  2005-10

2.  Characterization of the primary photochemistry of proteorhodopsin with femtosecond spectroscopy.

Authors:  Alisa Rupenyan; Ivo H M van Stokkum; Jos C Arents; Rienk van Grondelle; Klaas Hellingwerf; Marie Louise Groot
Journal:  Biophys J       Date:  2008-01-30       Impact factor: 4.033

3.  Evidence from Chlamydomonas on the photoactivation of rhodopsins without isomerization of their chromophore.

Authors:  Kenneth W Foster; Jureepan Saranak; Sonja Krane; Randy L Johnson; Koji Nakanishi
Journal:  Chem Biol       Date:  2011-06-24

4.  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 5.  Rhodopsin: the functional significance of asn-linked glycosylation and other post-translational modifications.

Authors:  Anne R Murray; Steven J Fliesler; Muayyad R Al-Ubaidi
Journal:  Ophthalmic Genet       Date:  2009-09       Impact factor: 1.803

6.  Protective Effect of a Locked Retinal Chromophore Analog against Light-Induced Retinal Degeneration.

Authors:  Songqi Gao; Tanu Parmar; Grazyna Palczewska; Zhiqian Dong; Marcin Golczak; Krzysztof Palczewski; Beata Jastrzebska
Journal:  Mol Pharmacol       Date:  2018-07-17       Impact factor: 4.436

  6 in total

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