Literature DB >> 21921035

Chemical kinetic analysis of thermal decay of rhodopsin reveals unusual energetics of thermal isomerization and hydrolysis of Schiff base.

Jian Liu1, Monica Yun Liu, Li Fu, Gefei Alex Zhu, Elsa C Y Yan.   

Abstract

The thermal properties of rhodopsin, which set the threshold of our vision, have long been investigated, but the chemical kinetics of the thermal decay of rhodopsin has not been revealed in detail. To understand thermal decay quantitatively, we propose a kinetic model consisting of two pathways: 1) thermal isomerization of 11-cis-retinal followed by hydrolysis of Schiff base (SB) and 2) hydrolysis of SB in dark state rhodopsin followed by opsin-catalyzed isomerization of free 11-cis-retinal. We solve the kinetic model mathematically and use it to analyze kinetic data from four experiments that we designed to assay thermal decay, isomerization, hydrolysis of SB using dark state rhodopsin, and hydrolysis of SB using photoactivated rhodopsin. We apply the model to WT rhodopsin and E181Q and S186A mutants at 55 °C, as well as WT rhodopsin in H(2)O and D(2)O at 59 °C. The results show that the hydrogen-bonding network strongly restrains thermal isomerization but is less important in opsin and activated rhodopsin. Furthermore, the ability to obtain individual rate constants allows comparison of thermal processes under various conditions. Our kinetic model and experiments reveal two unusual energetic properties: the steep temperature dependence of the rates of thermal isomerization and SB hydrolysis in the dark state and a strong deuterium isotope effect on dark state SB hydrolysis. These findings can be applied to study pathogenic rhodopsin mutants and other visual pigments.

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Year:  2011        PMID: 21921035      PMCID: PMC3207414          DOI: 10.1074/jbc.M111.280602

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


  49 in total

Review 1.  Signal flow in visual transduction.

Authors:  L Lagnado; D Baylor
Journal:  Neuron       Date:  1992-06       Impact factor: 17.173

2.  The retinal conformation and its environment in rhodopsin in light of a new 2.2 A crystal structure.

Authors:  Tetsuji Okada; Minoru Sugihara; Ana-Nicoleta Bondar; Marcus Elstner; Peter Entel; Volker Buss
Journal:  J Mol Biol       Date:  2004-09-10       Impact factor: 5.469

3.  Role of the retinal hydrogen bond network in rhodopsin Schiff base stability and hydrolysis.

Authors:  Jay M Janz; David L Farrens
Journal:  J Biol Chem       Date:  2004-10-08       Impact factor: 5.157

4.  Analysis of disease-linked rhodopsin mutations based on structure, function, and protein stability calculations.

Authors:  Elizabeth P Rakoczy; Christina Kiel; Richard McKeone; François Stricher; Luis Serrano
Journal:  J Mol Biol       Date:  2010-11-19       Impact factor: 5.469

5.  Curvature and hydrophobic forces drive oligomerization and modulate activity of rhodopsin in membranes.

Authors:  Ana Vitória Botelho; Thomas Huber; Thomas P Sakmar; Michael F Brown
Journal:  Biophys J       Date:  2006-09-29       Impact factor: 4.033

6.  The thermal origin of spontaneous activity in the Limulus photoreceptor.

Authors:  R Srebro; M Behbehani
Journal:  J Physiol       Date:  1972-07       Impact factor: 5.182

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Authors:  N Salem; B Litman; H Y Kim; K Gawrisch
Journal:  Lipids       Date:  2001-09       Impact factor: 1.880

8.  Role of bulk water in hydrolysis of the rhodopsin chromophore.

Authors:  Beata Jastrzebska; Krzysztof Palczewski; Marcin Golczak
Journal:  J Biol Chem       Date:  2011-04-01       Impact factor: 5.157

9.  Rapid incorporation of functional rhodopsin into nanoscale apolipoprotein bound bilayer (NABB) particles.

Authors:  Sourabh Banerjee; Thomas Huber; Thomas P Sakmar
Journal:  J Mol Biol       Date:  2008-02-02       Impact factor: 5.469

Review 10.  Retinitis pigmentosa: understanding the clinical presentation, mechanisms and treatment options.

Authors:  Michael Kalloniatis; Erica L Fletcher
Journal:  Clin Exp Optom       Date:  2004-03       Impact factor: 2.742

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  6 in total

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Journal:  Prog Retin Eye Res       Date:  2015-07-15       Impact factor: 21.198

2.  Thermal stability of rhodopsin and progression of retinitis pigmentosa: comparison of S186W and D190N rhodopsin mutants.

Authors:  Monica Yun Liu; Jian Liu; Devi Mehrotra; Yuting Liu; Ying Guo; Pedro A Baldera-Aguayo; Victoria L Mooney; Adel M Nour; Elsa C Y Yan
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3.  Unusual kinetics of thermal decay of dim-light photoreceptors in vertebrate vision.

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4.  Mice with a D190N mutation in the gene encoding rhodopsin: a model for human autosomal-dominant retinitis pigmentosa.

Authors:  Javier Sancho-Pelluz; Joaquin Tosi; Chun-Wei Hsu; Frances Lee; Kyle Wolpert; Mirela R Tabacaru; Jonathan P Greenberg; Stephen H Tsang; Chyuan-Sheng Lin
Journal:  Mol Med       Date:  2012-05-09       Impact factor: 6.354

Review 5.  Constitutively active rhodopsin and retinal disease.

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

6.  Structural role of the T94I rhodopsin mutation in congenital stationary night blindness.

Authors:  Ankita Singhal; Ying Guo; Milos Matkovic; Gebhard Schertler; Xavier Deupi; Elsa Cy Yan; Joerg Standfuss
Journal:  EMBO Rep       Date:  2016-07-25       Impact factor: 8.807

  6 in total

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