Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin Desensitization

The excessive light illumination of mammalian retina is known to induce oxidative stress and photoreceptor cell death linked to progression of age-related macular degeneration. The photochemical damage of photoreceptors is suggested to occur via two apoptotic pathways that involve either excessive r...

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Main Authors: Evgeni Yu. Zernii, Aliya A. Nazipova, Ekaterina L. Nemashkalova, Alexey S. Kazakov, Olga S. Gancharova, Marina V. Serebryakova, Natalya K. Tikhomirova, Viktoriia E. Baksheeva, Vasiliy I. Vladimirov, Dmitry V. Zinchenko, Pavel P. Philippov, Ivan I. Senin, Sergei E. Permyakov
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-01-01
Series:Frontiers in Molecular Neuroscience
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fnmol.2018.00474/full
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author Evgeni Yu. Zernii
Evgeni Yu. Zernii
Aliya A. Nazipova
Ekaterina L. Nemashkalova
Alexey S. Kazakov
Olga S. Gancharova
Olga S. Gancharova
Marina V. Serebryakova
Natalya K. Tikhomirova
Viktoriia E. Baksheeva
Vasiliy I. Vladimirov
Dmitry V. Zinchenko
Pavel P. Philippov
Ivan I. Senin
Sergei E. Permyakov
spellingShingle Evgeni Yu. Zernii
Evgeni Yu. Zernii
Aliya A. Nazipova
Ekaterina L. Nemashkalova
Alexey S. Kazakov
Olga S. Gancharova
Olga S. Gancharova
Marina V. Serebryakova
Natalya K. Tikhomirova
Viktoriia E. Baksheeva
Vasiliy I. Vladimirov
Dmitry V. Zinchenko
Pavel P. Philippov
Ivan I. Senin
Sergei E. Permyakov
Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin Desensitization
Frontiers in Molecular Neuroscience
light-induced retinal damage
photoreceptor
apoptosis
neuronal calcium sensor
recoverin
thiol oxidation
author_facet Evgeni Yu. Zernii
Evgeni Yu. Zernii
Aliya A. Nazipova
Ekaterina L. Nemashkalova
Alexey S. Kazakov
Olga S. Gancharova
Olga S. Gancharova
Marina V. Serebryakova
Natalya K. Tikhomirova
Viktoriia E. Baksheeva
Vasiliy I. Vladimirov
Dmitry V. Zinchenko
Pavel P. Philippov
Ivan I. Senin
Sergei E. Permyakov
author_sort Evgeni Yu. Zernii
title Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin Desensitization
title_short Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin Desensitization
title_full Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin Desensitization
title_fullStr Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin Desensitization
title_full_unstemmed Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin Desensitization
title_sort light-induced thiol oxidation of recoverin affects rhodopsin desensitization
publisher Frontiers Media S.A.
series Frontiers in Molecular Neuroscience
issn 1662-5099
publishDate 2019-01-01
description The excessive light illumination of mammalian retina is known to induce oxidative stress and photoreceptor cell death linked to progression of age-related macular degeneration. The photochemical damage of photoreceptors is suggested to occur via two apoptotic pathways that involve either excessive rhodopsin activation or constitutive phototransduction, depending on the light intensity. Both pathways are dramatically activated in the absence of rhodopsin desensitization by GRK1. Previously, we have shown that moderate illumination (halogen lamp, 1,500 lx, 1–5 h) of mammalian eyes provokes disulfide dimerization of recoverin, a calcium-dependent regulator of GRK1. Here, we demonstrate under in vivo conditions that both moderate long-term (metal halide lamp, 2,500 lx, 14 h, rat model) and intense short-term (halogen lamp, 30,000 lx for 3 h, rabbit model) illumination of the mammalian retina are accompanied by accumulation of disulfide dimer of recoverin. Furthermore, in the second case we reveal alternatively oxidized derivatives of the protein, apparently including its monomer with sulfinic group. Histological data indicate that thiol oxidation of recoverin precedes apoptosis of photoreceptors. Both disulfide dimer and oxidized monomer (or oxidation mimicking C39D mutant) of recoverin exhibit lowered α-helical content and thermal stability of their apo-forms, as well as increased Ca2+ affinity. Meanwhile, the oxidized monomer and C39D mutant of recoverin demonstrate impaired ability to bind photoreceptor membranes and regulate GRK1, whereas disulfide dimer exhibits notably improved membrane binding and GRK1 inhibition in absence of Ca2+. The latter effect is expected to slow down rhodopsin desensitization in the light, thereby favoring support of the light-induced oxidative stress, ultimately leading to photoreceptor apoptosis. Overall, the intensity and duration of illumination of the retina affect thiol oxidation of recoverin likely contributing to propagation of the oxidative stress and photoreceptor damage.
topic light-induced retinal damage
photoreceptor
apoptosis
neuronal calcium sensor
recoverin
thiol oxidation
url https://www.frontiersin.org/article/10.3389/fnmol.2018.00474/full
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spelling doaj-25b5e6cd0d3d479a86bcc3ceab3142b22020-11-24T21:14:24ZengFrontiers Media S.A.Frontiers in Molecular Neuroscience1662-50992019-01-011110.3389/fnmol.2018.00474427406Light-Induced Thiol Oxidation of Recoverin Affects Rhodopsin DesensitizationEvgeni Yu. Zernii0Evgeni Yu. Zernii1Aliya A. Nazipova2Ekaterina L. Nemashkalova3Alexey S. Kazakov4Olga S. Gancharova5Olga S. Gancharova6Marina V. Serebryakova7Natalya K. Tikhomirova8Viktoriia E. Baksheeva9Vasiliy I. Vladimirov10Dmitry V. Zinchenko11Pavel P. Philippov12Ivan I. Senin13Sergei E. Permyakov14Belozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, RussiaInstitute of Molecular Medicine, Sechenov First Moscow State Medical University, Moscow, RussiaInstitute for Biological Instrumentation of the Russian Academy of Sciences, Pushchino, RussiaInstitute for Biological Instrumentation of the Russian Academy of Sciences, Pushchino, RussiaInstitute for Biological Instrumentation of the Russian Academy of Sciences, Pushchino, RussiaBelozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, RussiaInstitute for Regenerative Medicine, Sechenov First Moscow State Medical University, Moscow, RussiaBelozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, RussiaBelozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, RussiaBelozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, RussiaShemyakin and Ovchinnikov Institute of Bioorganic Chemistry of the Russian Academy of Sciences, Pushchino, RussiaShemyakin and Ovchinnikov Institute of Bioorganic Chemistry of the Russian Academy of Sciences, Pushchino, RussiaBelozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, RussiaBelozersky Institute of Physico-Chemical Biology, Lomonosov Moscow State University, Moscow, RussiaInstitute for Biological Instrumentation of the Russian Academy of Sciences, Pushchino, RussiaThe excessive light illumination of mammalian retina is known to induce oxidative stress and photoreceptor cell death linked to progression of age-related macular degeneration. The photochemical damage of photoreceptors is suggested to occur via two apoptotic pathways that involve either excessive rhodopsin activation or constitutive phototransduction, depending on the light intensity. Both pathways are dramatically activated in the absence of rhodopsin desensitization by GRK1. Previously, we have shown that moderate illumination (halogen lamp, 1,500 lx, 1–5 h) of mammalian eyes provokes disulfide dimerization of recoverin, a calcium-dependent regulator of GRK1. Here, we demonstrate under in vivo conditions that both moderate long-term (metal halide lamp, 2,500 lx, 14 h, rat model) and intense short-term (halogen lamp, 30,000 lx for 3 h, rabbit model) illumination of the mammalian retina are accompanied by accumulation of disulfide dimer of recoverin. Furthermore, in the second case we reveal alternatively oxidized derivatives of the protein, apparently including its monomer with sulfinic group. Histological data indicate that thiol oxidation of recoverin precedes apoptosis of photoreceptors. Both disulfide dimer and oxidized monomer (or oxidation mimicking C39D mutant) of recoverin exhibit lowered α-helical content and thermal stability of their apo-forms, as well as increased Ca2+ affinity. Meanwhile, the oxidized monomer and C39D mutant of recoverin demonstrate impaired ability to bind photoreceptor membranes and regulate GRK1, whereas disulfide dimer exhibits notably improved membrane binding and GRK1 inhibition in absence of Ca2+. The latter effect is expected to slow down rhodopsin desensitization in the light, thereby favoring support of the light-induced oxidative stress, ultimately leading to photoreceptor apoptosis. Overall, the intensity and duration of illumination of the retina affect thiol oxidation of recoverin likely contributing to propagation of the oxidative stress and photoreceptor damage.https://www.frontiersin.org/article/10.3389/fnmol.2018.00474/fulllight-induced retinal damagephotoreceptorapoptosisneuronal calcium sensorrecoverinthiol oxidation