The role of the ER stress-response protein PERK in rhodopsin retinitis pigmentosa

Abstract Mutations in rhodopsin, the light-sensitive protein of rod cells, are the most common cause of dominant retinitis pigmentosa (RP), a type of inherited blindness caused by the dysfunction and death of photoreceptor cells. The P23H mutation, the most frequent single cause of RP in the USA, causes rhodopsin misfolding and induction of the unfolded protein response (UPR), an adaptive ER stress response and signalling network that aims to enhance the folding and degradation of misfolded proteins to restore proteostasis. Prolonged UPR activation, and in particular the PERK branch, can reduce protein synthesis and initiate cell death through induction of pro-apoptotic pathways. Here, we investigated the effect of pharmacological PERK inhibition on retinal disease process in the P23H-1 transgenic rat model of retinal degeneration. PERK inhibition with GSK2606414A led to an inhibition of eIF2α phosphorylation, which correlated with reduced ERG function and decreased photoreceptor survival at both high and low doses of PERK inhibitor. Additionally, PERK inhibition increased the incidence of inclusion formation in cultured cells overexpressing P23H rod opsin, and increased rhodopsin aggregation in the P23H-1 rat retina, suggesting enhanced P23H misfolding and aggregation. In contrast, treatment of P23H-1 rats with an inhibitor of eIF2α phosphatase, salubrinal, led to improved photoreceptor survival. Collectively, these data suggest the activation of PERK is part of a protective response to mutant rhodopsin that ultimately limits photoreceptor cell death.

[1]  M. Bertrand,et al.  When PERK inhibitors turn out to be new potent RIPK1 inhibitors: critical issues on the specificity and use of GSK2606414 and GSK2656157 , 2017, Cell Death and Differentiation.

[2]  Peter M. G. Munro,et al.  Rescue of mutant rhodopsin traffic by metformin-induced AMPK activation accelerates photoreceptor degeneration , 2016, Human molecular genetics.

[3]  K. Palczewski,et al.  Dominant and recessive mutations in rhodopsin activate different cell death pathways. , 2016, Human molecular genetics.

[4]  Z. Bebők,et al.  Limited ATF4 Expression in Degenerating Retinas with Ongoing ER Stress Promotes Photoreceptor Survival in a Mouse Model of Autosomal Dominant Retinitis Pigmentosa , 2016, PloS one.

[5]  O. L. Moritz,et al.  NLRP3 inflammasome activation drives bystander cone photoreceptor cell death in a P23H rhodopsin model of retinal degeneration. , 2016, Human molecular genetics.

[6]  M. Lavail,et al.  Robust Endoplasmic Reticulum-Associated Degradation of Rhodopsin Precedes Retinal Degeneration , 2015, Molecular Neurobiology.

[7]  M. Naash,et al.  Genotypic and Phenotypic Characterization of P23H Line 1 Rat Model , 2015, PloS one.

[8]  D. Athanasiou,et al.  The co-chaperone and reductase ERdj5 facilitates rod opsin biogenesis and quality control , 2014, Human molecular genetics.

[9]  B. Kalmar,et al.  The heat-shock response co-inducer arimoclomol protects against retinal degeneration in rhodopsin retinitis pigmentosa , 2014, Cell Death and Disease.

[10]  K. Palczewski,et al.  P23H opsin knock-in mice reveal a novel step in retinal rod disc morphogenesis. , 2014, Human molecular genetics.

[11]  M. Haeri,et al.  Ablation of the Proapoptotic Genes Chop or Ask1 Does Not Prevent or Delay Loss of Visual Function in a P23H Transgenic Mouse Model of Retinitis Pigmentosa , 2014, PloS one.

[12]  J. Trojanowski,et al.  Therapeutic modulation of eIF2α-phosphorylation rescues TDP-43 toxicity in amyotrophic lateral sclerosis disease models , 2013, Nature Genetics.

[13]  P. Garriga,et al.  Hsp90 inhibition protects against inherited retinal degeneration , 2013, Human molecular genetics.

[14]  P. Fischer,et al.  Oral Treatment Targeting the Unfolded Protein Response Prevents Neurodegeneration and Clinical Disease in Prion-Infected Mice , 2013, Science Translational Medicine.

[15]  O. Gorbatyuk,et al.  Review: Retinal degeneration: Focus on the unfolded protein response , 2013, Molecular vision.

[16]  D. Athanasiou,et al.  The cell stress machinery and retinal degeneration , 2013, FEBS letters.

[17]  A. Lewin,et al.  Ablation of C/EBP Homologous Protein Does Not Protect T17M RHO Mice from Retinal Degeneration , 2013, PloS one.

[18]  M. Lavail,et al.  Induction of endoplasmic reticulum stress genes, BiP and chop, in genetic and environmental models of retinal degeneration. , 2012, Investigative ophthalmology & visual science.

[19]  D. Athanasiou,et al.  BiP prevents rod opsin aggregation , 2012, Molecular biology of the cell.

[20]  L. Shewchuk,et al.  Discovery of 7-methyl-5-(1-{[3-(trifluoromethyl)phenyl]acetyl}-2,3-dihydro-1H-indol-5-yl)-7H-pyrrolo[2,3-d]pyrimidin-4-amine (GSK2606414), a potent and selective first-in-class inhibitor of protein kinase R (PKR)-like endoplasmic reticulum kinase (PERK). , 2012, Journal of medicinal chemistry.

[21]  M. Seeliger,et al.  Pharmacological Modulation of the Retinal Unfolded Protein Response in Bardet-Biedl Syndrome Reduces Apoptosis and Preserves Light Detection Ability* , 2012, The Journal of Biological Chemistry.

[22]  W. Hauswirth,et al.  ER stress is involved in T17M rhodopsin-induced retinal degeneration. , 2012, Investigative ophthalmology & visual science.

[23]  D. Dinsdale,et al.  Sustained translational repression by eIF2α-P mediates prion neurodegeneration , 2012, Nature.

[24]  M. Lavail,et al.  ER Stress in Retinal Degeneration in S334ter Rho Rats , 2012, PloS one.

[25]  P. Walter,et al.  The Unfolded Protein Response: From Stress Pathway to Homeostatic Regulation , 2011, Science.

[26]  E. Zrenner,et al.  Calpain and PARP Activation during Photoreceptor Cell Death in P23H and S334ter Rhodopsin Mutant Rats , 2011, PloS one.

[27]  R. Roos,et al.  The unfolded protein response in familial amyotrophic lateral sclerosis. , 2011, Human molecular genetics.

[28]  A. J. Roman,et al.  Probing Mechanisms of Photoreceptor Degeneration in a New Mouse Model of the Common Form of Autosomal Dominant Retinitis Pigmentosa due to P23H Opsin Mutations*♦ , 2011, The Journal of Biological Chemistry.

[29]  F. R. Papa,et al.  The UPR and cell fate at a glance , 2010, Journal of Cell Science.

[30]  W. Hauswirth,et al.  Restoration of visual function in P23H rhodopsin transgenic rats by gene delivery of BiP/Grp78 , 2010, Proceedings of the National Academy of Sciences.

[31]  M. Ueffing,et al.  Clearance of Rhodopsin(P23H) aggregates requires the ERAD effector VCP. , 2010, Biochimica et biophysica acta.

[32]  P. Garriga,et al.  A dual role for EDEM1 in the processing of rod opsin , 2009, Journal of Cell Science.

[33]  H. Ryoo,et al.  Suppression of retinal degeneration in Drosophila by stimulation of ER-associated degradation , 2009, Proceedings of the National Academy of Sciences.

[34]  C. Mendes,et al.  ER stress protects from retinal degeneration , 2009, The EMBO journal.

[35]  M. Lavail,et al.  The relationship of photoreceptor degeneration to retinal vascular development and loss in mutant rhodopsin transgenic and RCS rats. , 2008, Experimental eye research.

[36]  M. Cheetham,et al.  Pharmacological manipulation of gain-of-function and dominant-negative mechanisms in rhodopsin retinitis pigmentosa. , 2008, Human molecular genetics.

[37]  Chao Zhang,et al.  IRE1 Signaling Affects Cell Fate During the Unfolded Protein Response , 2007, Science.

[38]  P. Walter,et al.  Signal integration in the endoplasmic reticulum unfolded protein response , 2007, Nature Reviews Molecular Cell Biology.

[39]  W. Scheper,et al.  Activation of the unfolded protein response in Parkinson's disease. , 2007, Biochemical and biophysical research communications.

[40]  F. Baas,et al.  The unfolded protein response is activated in Alzheimer’s disease , 2005, Acta Neuropathologica.

[41]  M. Cheetham,et al.  Mechanisms of cell death in rhodopsin retinitis pigmentosa: implications for therapy. , 2005, Trends in molecular medicine.

[42]  Rahul S. Rajan,et al.  A Rhodopsin Mutant Linked to Autosomal Dominant Retinitis Pigmentosa Is Prone to Aggregate and Interacts with the Ubiquitin Proteasome System* , 2002, The Journal of Biological Chemistry.

[43]  Peter M. G. Munro,et al.  The cellular fate of mutant rhodopsin: quality control, degradation and aggresome formation. , 2002, Journal of cell science.

[44]  W. Baehr,et al.  Mutant rhodopsin transgene expression on a null background. , 2001, Investigative ophthalmology & visual science.

[45]  David W. Yandell,et al.  A point mutation of the rhodopsin gene in one form of retinitis pigmentosa , 1990, Nature.