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Published in: Diabetologia 9/2018

Open Access 01-09-2018 | Review

Neurodegeneration in diabetic retinopathy: does it really matter?

Authors: Rafael Simó, Alan W. Stitt, Thomas W. Gardner

Published in: Diabetologia | Issue 9/2018

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Abstract

The concept of diabetic retinopathy as a microvascular disease has evolved, in that it is now considered a more complex diabetic complication in which neurodegeneration plays a significant role. In this article we provide a critical overview of the role of microvascular abnormalities and neurodegeneration in the pathogenesis of diabetic retinopathy. A special emphasis is placed on the pathophysiology of the neurovascular unit (NVU), including the contributions of microvascular and neural elements. The potential mechanisms linking retinal neurodegeneration and early microvascular impairment, and the effects of neuroprotective drugs are summarised. Additionally, we discuss how the assessment of retinal neurodegeneration could be an important index of cognitive status, thus helping to identify individuals at risk of dementia, which will impact on current procedures for diabetes management. We conclude that glial, neural and microvascular dysfunction are interdependent and essential for the development of diabetic retinopathy. Despite this intricate relationship, retinal neurodegeneration is a critical endpoint and neuroprotection, itself, can be considered a therapeutic target, independently of its potential impact on microvascular disease. In addition, interventional studies targeting pathogenic pathways that impact the NVU are needed. Findings from these studies will be crucial, not only for increasing our understanding of diabetic retinopathy, but also to help to implement a timely and efficient personalised medicine approach for treating this diabetic complication.
Appendix
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Literature
2.
go back to reference Leasher JL, Bourne RR, Flaxman SR et al (2016) Global estimates on the number of people blind or visually impaired by diabetic retinopathy: a meta-analysis from 1990 to 2010. Diabetes Care 39:1643–1649CrossRefPubMed Leasher JL, Bourne RR, Flaxman SR et al (2016) Global estimates on the number of people blind or visually impaired by diabetic retinopathy: a meta-analysis from 1990 to 2010. Diabetes Care 39:1643–1649CrossRefPubMed
3.
go back to reference Abcouwer SF, Gardner TW (2014) Diabetic retinopathy: loss of neuroretinal adaptation to the diabetic metabolic environment. Ann N Y Acad Sci 1311:174–190CrossRefPubMedPubMedCentral Abcouwer SF, Gardner TW (2014) Diabetic retinopathy: loss of neuroretinal adaptation to the diabetic metabolic environment. Ann N Y Acad Sci 1311:174–190CrossRefPubMedPubMedCentral
4.
go back to reference Simó R, Hernández C (2014) Neurodegeneration in the diabetic eye: new insights and therapeutic perspectives. Trends Endocrinol Metab 25:23–33CrossRefPubMed Simó R, Hernández C (2014) Neurodegeneration in the diabetic eye: new insights and therapeutic perspectives. Trends Endocrinol Metab 25:23–33CrossRefPubMed
5.
go back to reference Simó R, Hernández C (2015) Novel approaches for treating diabetic retinopathy based on recent pathogenic evidence. Prog Retin Eye Res 48:160–180CrossRefPubMed Simó R, Hernández C (2015) Novel approaches for treating diabetic retinopathy based on recent pathogenic evidence. Prog Retin Eye Res 48:160–180CrossRefPubMed
6.
go back to reference Stitt AW, Curtis TM, Chen M et al (2016) The progress in understanding and treatment of diabetic retinopathy. Prog Retin Eye Res 51:156–186CrossRefPubMed Stitt AW, Curtis TM, Chen M et al (2016) The progress in understanding and treatment of diabetic retinopathy. Prog Retin Eye Res 51:156–186CrossRefPubMed
7.
8.
go back to reference Rossing P, Hougaard P, Parving HH (2002) Risk factors for development of incipient and overt diabetic nephropathy in type 1 diabetic patients. A 10-year prospective observational study. Diabetes Care 25:859–864CrossRefPubMed Rossing P, Hougaard P, Parving HH (2002) Risk factors for development of incipient and overt diabetic nephropathy in type 1 diabetic patients. A 10-year prospective observational study. Diabetes Care 25:859–864CrossRefPubMed
9.
go back to reference Takagi M, Babazono T, Uchigata Y (2015) Differences in risk factors for the onset of albuminuria and decrease in glomerular filtration rate in people with type 2 diabetes mellitus: implications for the pathogenesis of diabetic kidney disease. Diabet Med 32:1354–1360CrossRefPubMedPubMedCentral Takagi M, Babazono T, Uchigata Y (2015) Differences in risk factors for the onset of albuminuria and decrease in glomerular filtration rate in people with type 2 diabetes mellitus: implications for the pathogenesis of diabetic kidney disease. Diabet Med 32:1354–1360CrossRefPubMedPubMedCentral
10.
go back to reference Kramer CK, Rodrigues TC, Canani LH, Gross JL, Azevedo MJ (2011) Diabetic retinopathy predicts all-cause mortality and cardiovascular events in both type 1 and type 2 diabetes: meta-analysis of observational studies. Diabetes Care 34:1238–1244CrossRefPubMedPubMedCentral Kramer CK, Rodrigues TC, Canani LH, Gross JL, Azevedo MJ (2011) Diabetic retinopathy predicts all-cause mortality and cardiovascular events in both type 1 and type 2 diabetes: meta-analysis of observational studies. Diabetes Care 34:1238–1244CrossRefPubMedPubMedCentral
11.
go back to reference Gerstein HC, Ambrosious WT, Danis R et al (2013) Diabetic retinopathy, its progression, and incident cardiovascular events in the ACCORD trial. Diabetes Care 36:1266–1271CrossRefPubMedPubMedCentral Gerstein HC, Ambrosious WT, Danis R et al (2013) Diabetic retinopathy, its progression, and incident cardiovascular events in the ACCORD trial. Diabetes Care 36:1266–1271CrossRefPubMedPubMedCentral
12.
go back to reference Brownrigg JR, Hughes CO, Burleigh D et al (2016) Microvascular disease and risk of cardiovascular events among individuals with type 2 diabetes: a population-level cohort study. Lancet Diabetes Endocrinol 4:588–597CrossRefPubMed Brownrigg JR, Hughes CO, Burleigh D et al (2016) Microvascular disease and risk of cardiovascular events among individuals with type 2 diabetes: a population-level cohort study. Lancet Diabetes Endocrinol 4:588–597CrossRefPubMed
13.
go back to reference Cheung N, Rogera S, Couper DJ, Klein R, Sharrett AR, Wong TY (2007) Is diabetic retinopathy an independent risk factor for ischemic stroke? Stroke 38:398–401CrossRefPubMed Cheung N, Rogera S, Couper DJ, Klein R, Sharrett AR, Wong TY (2007) Is diabetic retinopathy an independent risk factor for ischemic stroke? Stroke 38:398–401CrossRefPubMed
14.
go back to reference Kawasaki R, Tanaka S, Tanaka S et al (2013) Risk of cardiovascular diseases is increased even with mild diabetic retinopathy: the Japan Diabetes Complications Study. Ophthalmology 120:574–582CrossRefPubMed Kawasaki R, Tanaka S, Tanaka S et al (2013) Risk of cardiovascular diseases is increased even with mild diabetic retinopathy: the Japan Diabetes Complications Study. Ophthalmology 120:574–582CrossRefPubMed
15.
go back to reference Schmier JK, Covert DW, Lau EC, Matthews GP (2009) Medicare expenditures associated with diabetes and diabetic retinopathy. Retina 29:199–206CrossRefPubMed Schmier JK, Covert DW, Lau EC, Matthews GP (2009) Medicare expenditures associated with diabetes and diabetic retinopathy. Retina 29:199–206CrossRefPubMed
16.
go back to reference Heinz E, Wirehn AB, Peebo BB, Rosenqvist U, Levin LA (2010) Prevalence and healthcare costs of diabetic retinopathy: a population-based register study in Sweden. Diabetologia 53:2147–2154CrossRef Heinz E, Wirehn AB, Peebo BB, Rosenqvist U, Levin LA (2010) Prevalence and healthcare costs of diabetic retinopathy: a population-based register study in Sweden. Diabetologia 53:2147–2154CrossRef
17.
18.
go back to reference Hawkins BT, Davis TP (2005) The blood-brain barrier/neurovascular unit in health and disease. Pharmacol Rev 57:173–185CrossRefPubMed Hawkins BT, Davis TP (2005) The blood-brain barrier/neurovascular unit in health and disease. Pharmacol Rev 57:173–185CrossRefPubMed
19.
20.
go back to reference Gardner TW, Davila JR (2017) The neurovascular unit and the pathophysiologic basis of diabetic retinopathy. Graefes Arch Clin Exp Ophthalmol 255:1–6CrossRefPubMed Gardner TW, Davila JR (2017) The neurovascular unit and the pathophysiologic basis of diabetic retinopathy. Graefes Arch Clin Exp Ophthalmol 255:1–6CrossRefPubMed
21.
go back to reference Duh EJ, Sun JK, Stitt AW (2017) Diabetic retinopathy: current understanding, mechanisms, and treatment strategies. JCI Insight 2:e93751CrossRefPubMedCentral Duh EJ, Sun JK, Stitt AW (2017) Diabetic retinopathy: current understanding, mechanisms, and treatment strategies. JCI Insight 2:e93751CrossRefPubMedCentral
22.
24.
25.
go back to reference Lott ME, Slocomb JE, Shivkumar V et al (2012) Comparison of retinal vasodilator and constrictor responses in type 2 diabetes. Acta Ophthalmol 90:e434–e441CrossRefPubMed Lott ME, Slocomb JE, Shivkumar V et al (2012) Comparison of retinal vasodilator and constrictor responses in type 2 diabetes. Acta Ophthalmol 90:e434–e441CrossRefPubMed
26.
go back to reference Díaz-Coránguez M, Ramos C, Antonetti DA (2017) The inner blood-retinal barrier: cellular basis and development. Vis Res 139:123–137CrossRefPubMed Díaz-Coránguez M, Ramos C, Antonetti DA (2017) The inner blood-retinal barrier: cellular basis and development. Vis Res 139:123–137CrossRefPubMed
27.
go back to reference Klaassen I, Van Noorden CJ, Schlingemann RO (2013) Molecular basis of the inner blood-retinal barrier and its breakdown in diabetic macular edema and other pathological conditions. Prog Retin Eye Res 34:19–48CrossRefPubMed Klaassen I, Van Noorden CJ, Schlingemann RO (2013) Molecular basis of the inner blood-retinal barrier and its breakdown in diabetic macular edema and other pathological conditions. Prog Retin Eye Res 34:19–48CrossRefPubMed
29.
go back to reference Xu Y, Cheng Q, Yang B et al (2015) Increased sCD200 levels in vitreous of patients with proliferative diabetic retinopathy and its correlation with VEGF and proinflammatory cytokines. Invest Ophthalmol Vis Sci 56:6565–6572CrossRefPubMed Xu Y, Cheng Q, Yang B et al (2015) Increased sCD200 levels in vitreous of patients with proliferative diabetic retinopathy and its correlation with VEGF and proinflammatory cytokines. Invest Ophthalmol Vis Sci 56:6565–6572CrossRefPubMed
30.
go back to reference Cantón A, Martinez-Cáceres EM, Hernández C, Espejo C, García-Arumí J, Simó R (2004) CD4-CD8 and CD28 expression in T cells infiltrating the vitreous fluid in patients with proliferative diabetic retinopathy: a flow cytometric analysis. Arch Ophthalmol 122:743–749CrossRefPubMed Cantón A, Martinez-Cáceres EM, Hernández C, Espejo C, García-Arumí J, Simó R (2004) CD4-CD8 and CD28 expression in T cells infiltrating the vitreous fluid in patients with proliferative diabetic retinopathy: a flow cytometric analysis. Arch Ophthalmol 122:743–749CrossRefPubMed
31.
go back to reference Wilkinson-Berka JL (2006) Angiotensin and diabetic retinopathy. Int J Biochem Cell Biol 38:752–765CrossRefPubMed Wilkinson-Berka JL (2006) Angiotensin and diabetic retinopathy. Int J Biochem Cell Biol 38:752–765CrossRefPubMed
32.
go back to reference Kurihara T, Ozawa Y, Nagai N et al (2008) Angiotensin II type 1 receptor signaling contributes to synaptophysin degradation and neuronal dysfunction in the diabetic retina. Diabetes 57:2191–2198CrossRefPubMedPubMedCentral Kurihara T, Ozawa Y, Nagai N et al (2008) Angiotensin II type 1 receptor signaling contributes to synaptophysin degradation and neuronal dysfunction in the diabetic retina. Diabetes 57:2191–2198CrossRefPubMedPubMedCentral
33.
go back to reference Silva KC, Rosales MA, Biswas SK, Lopes de Faria JB, Lopes de Faria JM (2009) Diabetic retinal neurodegeneration is associated with mitochondrial oxidative stress and is improved by an angiotensin receptor blocker in a model combining hypertension and diabetes. Diabetes 58:1382–1390CrossRefPubMedPubMedCentral Silva KC, Rosales MA, Biswas SK, Lopes de Faria JB, Lopes de Faria JM (2009) Diabetic retinal neurodegeneration is associated with mitochondrial oxidative stress and is improved by an angiotensin receptor blocker in a model combining hypertension and diabetes. Diabetes 58:1382–1390CrossRefPubMedPubMedCentral
34.
go back to reference Ola MS, Ahmed MM, Abouhashish HM, Al-Rejaie SS, Alhomida AS (2013) Telmisartan ameliorates neurotrophic support and oxidative stress in the retina of streptozotocin-induced diabetic rats. Neurochem Res 38:1572–1579CrossRefPubMed Ola MS, Ahmed MM, Abouhashish HM, Al-Rejaie SS, Alhomida AS (2013) Telmisartan ameliorates neurotrophic support and oxidative stress in the retina of streptozotocin-induced diabetic rats. Neurochem Res 38:1572–1579CrossRefPubMed
35.
go back to reference Roy S, Bae E, Amin S, Kim D (2015) Extracellular matrix, gap junctions, and retinal vascular homeostasis in diabetic retinopathy. Exp Eye Res 133:58–68CrossRefPubMed Roy S, Bae E, Amin S, Kim D (2015) Extracellular matrix, gap junctions, and retinal vascular homeostasis in diabetic retinopathy. Exp Eye Res 133:58–68CrossRefPubMed
36.
go back to reference Oshitari T, Polewski M, Chadda M, Li AF, Sato T, Roy S (2006) Effect of combined antisense oligonucleotides against high-glucose- and diabetes-induced overexpression of extracellular matrix components and increased vascular permeability. Diabetes 55:86–92CrossRefPubMed Oshitari T, Polewski M, Chadda M, Li AF, Sato T, Roy S (2006) Effect of combined antisense oligonucleotides against high-glucose- and diabetes-induced overexpression of extracellular matrix components and increased vascular permeability. Diabetes 55:86–92CrossRefPubMed
38.
go back to reference Pfister F, Feng Y, vom Hagen F et al (2008) Pericyte migration: a novel mechanism of pericyte loss in experimental diabetic retinopathy. Diabetes 57:2495–2502CrossRefPubMedPubMedCentral Pfister F, Feng Y, vom Hagen F et al (2008) Pericyte migration: a novel mechanism of pericyte loss in experimental diabetic retinopathy. Diabetes 57:2495–2502CrossRefPubMedPubMedCentral
40.
go back to reference Hammes HP (2018) Diabetic retinopathy: hyperglycemia, oxidative stress and beyond. Diabetologia 61:29–38CrossRefPubMed Hammes HP (2018) Diabetic retinopathy: hyperglycemia, oxidative stress and beyond. Diabetologia 61:29–38CrossRefPubMed
41.
42.
go back to reference Spaide RF, Fujimoto JG, Waheed NK, Sadda SR, Staurenghi G (2018) Optical coherence tomography angiography. Prog Retin Eye Res 64:1–55CrossRefPubMed Spaide RF, Fujimoto JG, Waheed NK, Sadda SR, Staurenghi G (2018) Optical coherence tomography angiography. Prog Retin Eye Res 64:1–55CrossRefPubMed
43.
go back to reference Hasegawa N, Nozaki M, Takase N, Yoshida M, Ogura Y (2016) New insights into microaneurysms in the deep capillary plexus detected by optical coherence tomography angiography in diabetic macular edema. Invest Ophthalmol Vis Sci 57:OCT348–OCT355CrossRefPubMed Hasegawa N, Nozaki M, Takase N, Yoshida M, Ogura Y (2016) New insights into microaneurysms in the deep capillary plexus detected by optical coherence tomography angiography in diabetic macular edema. Invest Ophthalmol Vis Sci 57:OCT348–OCT355CrossRefPubMed
44.
go back to reference Barber AJ, Lieth E, Khin SA, Antonetti DA, Buchanan AG, Gardner TW (1998) Neural apoptosis in the retina during experimental and human diabetes. Early onset and effect of insulin. J Clin Invest 102:783–791CrossRefPubMedPubMedCentral Barber AJ, Lieth E, Khin SA, Antonetti DA, Buchanan AG, Gardner TW (1998) Neural apoptosis in the retina during experimental and human diabetes. Early onset and effect of insulin. J Clin Invest 102:783–791CrossRefPubMedPubMedCentral
45.
go back to reference Carrasco E, Hernández C, Miralles A, Huguet P, Farrés J, Simó R (2007) Lower somatostatin expression is an early event in diabetic retinopathy and is associated with retinal neurodegeneration. Diabetes Care 30:2902–2908CrossRefPubMed Carrasco E, Hernández C, Miralles A, Huguet P, Farrés J, Simó R (2007) Lower somatostatin expression is an early event in diabetic retinopathy and is associated with retinal neurodegeneration. Diabetes Care 30:2902–2908CrossRefPubMed
46.
go back to reference Garcia-Ramírez M, Hernández C, Villarroel M et al (2009) Interphotoreceptor retinoid-binding protein (IRBP) is downregulated at early stages of diabetic retinopathy. Diabetologia 52:2633–2641CrossRefPubMed Garcia-Ramírez M, Hernández C, Villarroel M et al (2009) Interphotoreceptor retinoid-binding protein (IRBP) is downregulated at early stages of diabetic retinopathy. Diabetologia 52:2633–2641CrossRefPubMed
47.
go back to reference Simão S, Costa MÂ, Sun JK, Cunha-Vaz J, Simó R (2017) Development of a normative database for multifocal electroretinography in the context of a multicenter clinical trial. Ophthalmic Res 57:107–117CrossRefPubMed Simão S, Costa MÂ, Sun JK, Cunha-Vaz J, Simó R (2017) Development of a normative database for multifocal electroretinography in the context of a multicenter clinical trial. Ophthalmic Res 57:107–117CrossRefPubMed
48.
go back to reference Jackson GR, Barber AJ (2010) Visual dysfunction associated with diabetic retinopathy. Curr Diab Rep 10:380–384CrossRefPubMed Jackson GR, Barber AJ (2010) Visual dysfunction associated with diabetic retinopathy. Curr Diab Rep 10:380–384CrossRefPubMed
49.
go back to reference Wolff BE, Bearse MA Jr, Schneck ME et al (2015) Color vision and neuroretinal function in diabetes. Doc Ophthalmol 130:131–139CrossRefPubMed Wolff BE, Bearse MA Jr, Schneck ME et al (2015) Color vision and neuroretinal function in diabetes. Doc Ophthalmol 130:131–139CrossRefPubMed
50.
go back to reference Trento M, Durando O, Lavecchia S et al (2017) Vision related quality of life in patients with type 2 diabetes in the EUROCONDOR trial. Endocrine 57:83–88CrossRefPubMed Trento M, Durando O, Lavecchia S et al (2017) Vision related quality of life in patients with type 2 diabetes in the EUROCONDOR trial. Endocrine 57:83–88CrossRefPubMed
51.
52.
go back to reference Coorey NJ, Shen W, Chung SH, Zhu L, Gillies MC (2012) The role of glia in retinal vascular disease. Clin Exp Optom 95:266–281CrossRefPubMed Coorey NJ, Shen W, Chung SH, Zhu L, Gillies MC (2012) The role of glia in retinal vascular disease. Clin Exp Optom 95:266–281CrossRefPubMed
53.
go back to reference Arroba AI, Valverde AM (2017) Modulation of microglia in the retina: new insights into diabetic retinopathy. Acta Diabetol 54:527–533CrossRefPubMed Arroba AI, Valverde AM (2017) Modulation of microglia in the retina: new insights into diabetic retinopathy. Acta Diabetol 54:527–533CrossRefPubMed
54.
go back to reference Altmann C, Schmidt MHH (2018) The role of microglia in diabetic retinopathy: inflammation, microvascular defects and neurodegeneration. Int J Mol Sci 19:110CrossRefPubMedCentral Altmann C, Schmidt MHH (2018) The role of microglia in diabetic retinopathy: inflammation, microvascular defects and neurodegeneration. Int J Mol Sci 19:110CrossRefPubMedCentral
55.
go back to reference Fort PE, Losiewicz MK, Reiter CE et al (2011) Differential roles of hyperglycemia and hypoinsulinemia in diabetes induced retinal cell death: evidence for retinal insulin resistance. PLoS One 6:e26498CrossRefPubMedPubMedCentral Fort PE, Losiewicz MK, Reiter CE et al (2011) Differential roles of hyperglycemia and hypoinsulinemia in diabetes induced retinal cell death: evidence for retinal insulin resistance. PLoS One 6:e26498CrossRefPubMedPubMedCentral
56.
go back to reference Liu X, Chen HH, Zhang LW (2013) Potential therapeutic effects of pigment epithelium-derived factor for treatment of diabetic retinopathy. Int J Ophthalmol 6:221–227PubMedPubMedCentral Liu X, Chen HH, Zhang LW (2013) Potential therapeutic effects of pigment epithelium-derived factor for treatment of diabetic retinopathy. Int J Ophthalmol 6:221–227PubMedPubMedCentral
57.
go back to reference Polato F, Becerra SP (2016) Pigment epithelium-derived factor, a protective factor for photoreceptors in vivo. Adv Exp Med Biol 854:699–706CrossRefPubMed Polato F, Becerra SP (2016) Pigment epithelium-derived factor, a protective factor for photoreceptors in vivo. Adv Exp Med Biol 854:699–706CrossRefPubMed
58.
go back to reference Hernández C, García-Ramírez M, Corraliza L et al (2013) Topical administration of somatostatin prevents retinal neurodegeneration in experimental diabetes. Diabetes 62:2569–2578CrossRefPubMedPubMedCentral Hernández C, García-Ramírez M, Corraliza L et al (2013) Topical administration of somatostatin prevents retinal neurodegeneration in experimental diabetes. Diabetes 62:2569–2578CrossRefPubMedPubMedCentral
59.
go back to reference Hernández C, Bogdanov P, Corraliza L et al (2016) Topical administration of GLP-1 receptor agonists prevents retinal neurodegeneration in experimental diabetes. Diabetes 65:172–187PubMed Hernández C, Bogdanov P, Corraliza L et al (2016) Topical administration of GLP-1 receptor agonists prevents retinal neurodegeneration in experimental diabetes. Diabetes 65:172–187PubMed
60.
go back to reference Simó R, Hernández C (2017) GLP-1R as a target for the treatment of diabetic retinopathy: friend or foe? Diabetes 66:1453–1460CrossRefPubMed Simó R, Hernández C (2017) GLP-1R as a target for the treatment of diabetic retinopathy: friend or foe? Diabetes 66:1453–1460CrossRefPubMed
61.
go back to reference Hernández C, Bogdanov P, Solà-Adell C et al (2017) Topical administration of DPP-IV inhibitors prevents retinal neurodegeneration in experimental diabetes. Diabetologia 60:2285–2298CrossRefPubMed Hernández C, Bogdanov P, Solà-Adell C et al (2017) Topical administration of DPP-IV inhibitors prevents retinal neurodegeneration in experimental diabetes. Diabetologia 60:2285–2298CrossRefPubMed
62.
go back to reference Sullivan TA, Geisert EE, Templeton JP, Rex TS (2012) Dose-dependent treatment of optic nerve crush by exogenous systemic mutant erythropoietin. Exp Eye Res 96:36–41CrossRefPubMedPubMedCentral Sullivan TA, Geisert EE, Templeton JP, Rex TS (2012) Dose-dependent treatment of optic nerve crush by exogenous systemic mutant erythropoietin. Exp Eye Res 96:36–41CrossRefPubMedPubMedCentral
63.
go back to reference Busch S, Kannt A, Kolibabka M et al (2014) Systemic treatment with erythropoietin protects the neurovascular unit in a rat model of retinal neurodegeneration. PLoS One 9:e102013CrossRefPubMedPubMedCentral Busch S, Kannt A, Kolibabka M et al (2014) Systemic treatment with erythropoietin protects the neurovascular unit in a rat model of retinal neurodegeneration. PLoS One 9:e102013CrossRefPubMedPubMedCentral
64.
go back to reference Simó R, Bandello F, Egan C et al (2017) Topical administration of somatostatin and brimonidine in the early stages of diabetic retinopathy: results of the EUROCONDOR study. Diabetologia 60(Suppl1):S55 Abstract Simó R, Bandello F, Egan C et al (2017) Topical administration of somatostatin and brimonidine in the early stages of diabetic retinopathy: results of the EUROCONDOR study. Diabetologia 60(Suppl1):S55 Abstract
65.
go back to reference De Juan JA, Moya FJ, Ripodas A, Bernal R, Fernandez-Cruz A, Fernandez-Durango R (2000) Changes in the density and localisation of endothelin receptors in the early stages of rat diabetic retinopathy and the effect of insulin treatment. Diabetologia 43:773–785CrossRefPubMed De Juan JA, Moya FJ, Ripodas A, Bernal R, Fernandez-Cruz A, Fernandez-Durango R (2000) Changes in the density and localisation of endothelin receptors in the early stages of rat diabetic retinopathy and the effect of insulin treatment. Diabetologia 43:773–785CrossRefPubMed
66.
go back to reference Chou JC, Rollins SD, Ye M, Batlle D, Fawzi AA (2014) Endothelin receptor-A antagonist attenuates retinal vascular and neuroretinal pathology in diabetic mice. Invest Ophthalmol Vis Sci 55:2516–2525CrossRefPubMedPubMedCentral Chou JC, Rollins SD, Ye M, Batlle D, Fawzi AA (2014) Endothelin receptor-A antagonist attenuates retinal vascular and neuroretinal pathology in diabetic mice. Invest Ophthalmol Vis Sci 55:2516–2525CrossRefPubMedPubMedCentral
67.
go back to reference Minton AZ, Phatak NR, Stankowska DL et al (2012) Endothelin B receptors contribute to retinal ganglion cell loss in a rat model of glaucoma. PLoS One 7:e43199CrossRefPubMedPubMedCentral Minton AZ, Phatak NR, Stankowska DL et al (2012) Endothelin B receptors contribute to retinal ganglion cell loss in a rat model of glaucoma. PLoS One 7:e43199CrossRefPubMedPubMedCentral
68.
go back to reference Tonari M, Kurimoto T, Horie T, Sugiyama T, Ikeda T, Oku H (2012) Blocking endothelin-B receptors rescues retinal ganglion cells from optic nerve injury through suppression of neuroinflammation. Invest Ophthalmol Vis Sci 8:3490–3500CrossRef Tonari M, Kurimoto T, Horie T, Sugiyama T, Ikeda T, Oku H (2012) Blocking endothelin-B receptors rescues retinal ganglion cells from optic nerve injury through suppression of neuroinflammation. Invest Ophthalmol Vis Sci 8:3490–3500CrossRef
69.
go back to reference Du Y, Veenstra A, Palczewski K, Kern TS (2013) Photoreceptor cells are major contributors to diabetes-induced oxidative stress and local inflammation in the retina. Proc Natl Acad Sci U S A 110:16586–16591CrossRefPubMedPubMedCentral Du Y, Veenstra A, Palczewski K, Kern TS (2013) Photoreceptor cells are major contributors to diabetes-induced oxidative stress and local inflammation in the retina. Proc Natl Acad Sci U S A 110:16586–16591CrossRefPubMedPubMedCentral
70.
go back to reference Liu H, Tang J, Duh Y et al (2016) Photoreceptor cells influence retinal vascular degeneration in mouse models of retinal degeneration and diabetes. Invest Ophthalmol Vis Sci 57:4272–4281CrossRefPubMedPubMedCentral Liu H, Tang J, Duh Y et al (2016) Photoreceptor cells influence retinal vascular degeneration in mouse models of retinal degeneration and diabetes. Invest Ophthalmol Vis Sci 57:4272–4281CrossRefPubMedPubMedCentral
71.
go back to reference Tonade D, Liu H, Palczewski K, Kern TS (2017) Photoreceptor cells produce inflammatory products that contribute to retinal vascular permeability in a mouse model of diabetes. Diabetologia 60:2111–2120CrossRefPubMedPubMedCentral Tonade D, Liu H, Palczewski K, Kern TS (2017) Photoreceptor cells produce inflammatory products that contribute to retinal vascular permeability in a mouse model of diabetes. Diabetologia 60:2111–2120CrossRefPubMedPubMedCentral
72.
go back to reference Cerani A, Tetreault N, Menard C et al (2013) Neuron-derived semaphorin 3A is an early inducer of vascular permeability in diabetic retinopathy via neuropilin-1. Cell Metab 18:505–518CrossRefPubMed Cerani A, Tetreault N, Menard C et al (2013) Neuron-derived semaphorin 3A is an early inducer of vascular permeability in diabetic retinopathy via neuropilin-1. Cell Metab 18:505–518CrossRefPubMed
73.
go back to reference Simó R, Hernández C (2012) Neurodegeneration is an early event in diabetic retinopathy: therapeutic implications. Br J Ophthalmol 96:1285–1290CrossRefPubMed Simó R, Hernández C (2012) Neurodegeneration is an early event in diabetic retinopathy: therapeutic implications. Br J Ophthalmol 96:1285–1290CrossRefPubMed
74.
go back to reference Reis A, Mateus C, Melo P, Figueira J, Cunha-Vaz J, Castelo-Branco M (2014) Neuroretinal dysfunction with intact blood-retinal barrier and absent vasculopathy in type 1 diabetes. Diabetes 63:3926–3937CrossRefPubMed Reis A, Mateus C, Melo P, Figueira J, Cunha-Vaz J, Castelo-Branco M (2014) Neuroretinal dysfunction with intact blood-retinal barrier and absent vasculopathy in type 1 diabetes. Diabetes 63:3926–3937CrossRefPubMed
75.
go back to reference Bogdanov P, Corraliza L, Villena JA et al (2014) The db/db mouse: a useful model for the study of diabetic retinal neurodegeneration. PLoS One 9:e97302CrossRefPubMedPubMedCentral Bogdanov P, Corraliza L, Villena JA et al (2014) The db/db mouse: a useful model for the study of diabetic retinal neurodegeneration. PLoS One 9:e97302CrossRefPubMedPubMedCentral
76.
go back to reference Sohn EH, van Dijk HW, Jiao C et al (2016) Retinal neurodegeneration may precede microvascular changes characteristic of diabetic retinopathy in diabetes mellitus. Proc Natl Acad Sci U S A 113:E2655–E2664CrossRefPubMedPubMedCentral Sohn EH, van Dijk HW, Jiao C et al (2016) Retinal neurodegeneration may precede microvascular changes characteristic of diabetic retinopathy in diabetes mellitus. Proc Natl Acad Sci U S A 113:E2655–E2664CrossRefPubMedPubMedCentral
77.
go back to reference Harrison WW, Bearse MA Jr, Ng JS et al (2011) Multifocal electroretinograms predict onset of diabetic retinopathy in adult patients with diabetes. Invest Ophthalmol Vis Sci 52:772–777CrossRefPubMedPubMedCentral Harrison WW, Bearse MA Jr, Ng JS et al (2011) Multifocal electroretinograms predict onset of diabetic retinopathy in adult patients with diabetes. Invest Ophthalmol Vis Sci 52:772–777CrossRefPubMedPubMedCentral
78.
go back to reference Ng JS, Bearse MA Jr, Schneck ME, Barez S, Adams AJ (2008) Local diabetic retinopathy prediction by multifocal ERG delays over 3 years. Invest Ophthalmol Vis Sci 49:1622–1628CrossRefPubMed Ng JS, Bearse MA Jr, Schneck ME, Barez S, Adams AJ (2008) Local diabetic retinopathy prediction by multifocal ERG delays over 3 years. Invest Ophthalmol Vis Sci 49:1622–1628CrossRefPubMed
79.
go back to reference Abramoff MD, Fort P, Han IC, Jayasundera KT, Sohn EH, Gardner TW (2018) Approach for clinically useful comprehensive classification of vascular and neural aspects of diabetic retinal disease. Invest Ophthalmol Vis Sci 59:519–527CrossRefPubMedPubMedCentral Abramoff MD, Fort P, Han IC, Jayasundera KT, Sohn EH, Gardner TW (2018) Approach for clinically useful comprehensive classification of vascular and neural aspects of diabetic retinal disease. Invest Ophthalmol Vis Sci 59:519–527CrossRefPubMedPubMedCentral
80.
go back to reference Santos AR, Ribeiro L, Bandello F et al (2017) Functional and structural findings of neurodegeneration in early stages of diabetic retinopathy: cross-sectional analyses of baseline data of the EUROCONDOR project. Diabetes 66:2503–2510CrossRefPubMed Santos AR, Ribeiro L, Bandello F et al (2017) Functional and structural findings of neurodegeneration in early stages of diabetic retinopathy: cross-sectional analyses of baseline data of the EUROCONDOR project. Diabetes 66:2503–2510CrossRefPubMed
81.
go back to reference Simó R, Ciudin A, Simó-Servat O, Hernández C (2017) Cognitive impairment and dementia: a new emerging complication of type 2 diabetes—the diabetologist’s perspective. Acta Diabetol 54:417–424CrossRefPubMed Simó R, Ciudin A, Simó-Servat O, Hernández C (2017) Cognitive impairment and dementia: a new emerging complication of type 2 diabetes—the diabetologist’s perspective. Acta Diabetol 54:417–424CrossRefPubMed
82.
go back to reference Sundstrom JM, Hernández C, Weber S et al (2018) Proteomic analysis of early diabetic retinopathy reveals mediators of neurodegenerative brain diseases. Invest Ophthamol Vis Sci 59:2264–2274CrossRef Sundstrom JM, Hernández C, Weber S et al (2018) Proteomic analysis of early diabetic retinopathy reveals mediators of neurodegenerative brain diseases. Invest Ophthamol Vis Sci 59:2264–2274CrossRef
83.
go back to reference Cheung CY, Ikram MK, Chen C, Wong TY (2017) Imaging retina to study dementia and stroke. Prog Retin Eye Res 57:89–107CrossRefPubMed Cheung CY, Ikram MK, Chen C, Wong TY (2017) Imaging retina to study dementia and stroke. Prog Retin Eye Res 57:89–107CrossRefPubMed
84.
go back to reference Ciudin A, Simó-Servat O, Hernández C et al (2017) Retinal microperimetry: a new tool for identifying patients with type 2 diabetes at risk for developing Alzheimer disease. Diabetes 66:3098–3104CrossRefPubMed Ciudin A, Simó-Servat O, Hernández C et al (2017) Retinal microperimetry: a new tool for identifying patients with type 2 diabetes at risk for developing Alzheimer disease. Diabetes 66:3098–3104CrossRefPubMed
85.
go back to reference American Diabetes Association (2013) Clinical practice recommendations. Diabetes Care 36(Suppl 1):S3 American Diabetes Association (2013) Clinical practice recommendations. Diabetes Care 36(Suppl 1):S3
86.
go back to reference Carrasco E, Hernández C, de Torres I, Farrés J, Simó R (2008) Lowered cortistatin expression is an early event in the human diabetic retina and is associated with apoptosis and glial activation. Mol Vis 14:1496–1502PubMedPubMedCentral Carrasco E, Hernández C, de Torres I, Farrés J, Simó R (2008) Lowered cortistatin expression is an early event in the human diabetic retina and is associated with apoptosis and glial activation. Mol Vis 14:1496–1502PubMedPubMedCentral
Metadata
Title
Neurodegeneration in diabetic retinopathy: does it really matter?
Authors
Rafael Simó
Alan W. Stitt
Thomas W. Gardner
Publication date
01-09-2018
Publisher
Springer Berlin Heidelberg
Published in
Diabetologia / Issue 9/2018
Print ISSN: 0012-186X
Electronic ISSN: 1432-0428
DOI
https://doi.org/10.1007/s00125-018-4692-1

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