Retinal vessel oximetry in children with inherited retinal diseases.


Journal

Acta ophthalmologica
ISSN: 1755-3768
Titre abrégé: Acta Ophthalmol
Pays: England
ID NLM: 101468102

Informations de publication

Date de publication:
Feb 2021
Historique:
received: 11 12 2019
accepted: 21 04 2020
pubmed: 24 6 2020
medline: 7 9 2021
entrez: 24 6 2020
Statut: ppublish

Résumé

Retinal vessel oximetry (RO) has been used to show altered metabolic function in patients with inherited retinal diseases (IRDs). The aim of this study was to investigate RO parameters of children with IRDs and presumed IRD carriers (pIRDc) and to compare them to controls. In this cross-sectional cohort study, 142 eyes from 71 Caucasian subjects were included: 40 eyes with IRDs, 26 eyes with pIRDc and 76 control eyes. The oxygen saturation was measured with the Retinal Vessel Analyser (IMEDOS Systems UG, Jena, Germany). Mean oxygen saturations in the peripapillary retinal arterioles (A-SO In general, children suffering from IRDs differed from controls when the A-SO In general, we found that children with IRDs presented early metabolic changes. Within IRDs, children with RCD showed more affected metabolic changes. Thus, RO may support early screening to rule out IRDs in children, and more precisely may help to differentiate those suffering from RCD.

Sections du résumé

BACKGROUND BACKGROUND
Retinal vessel oximetry (RO) has been used to show altered metabolic function in patients with inherited retinal diseases (IRDs). The aim of this study was to investigate RO parameters of children with IRDs and presumed IRD carriers (pIRDc) and to compare them to controls.
METHODS METHODS
In this cross-sectional cohort study, 142 eyes from 71 Caucasian subjects were included: 40 eyes with IRDs, 26 eyes with pIRDc and 76 control eyes. The oxygen saturation was measured with the Retinal Vessel Analyser (IMEDOS Systems UG, Jena, Germany). Mean oxygen saturations in the peripapillary retinal arterioles (A-SO
RESULTS RESULTS
In general, children suffering from IRDs differed from controls when the A-SO
CONCLUSION CONCLUSIONS
In general, we found that children with IRDs presented early metabolic changes. Within IRDs, children with RCD showed more affected metabolic changes. Thus, RO may support early screening to rule out IRDs in children, and more precisely may help to differentiate those suffering from RCD.

Identifiants

pubmed: 32573052
doi: 10.1111/aos.14466
doi:

Substances chimiques

Oxygen S88TT14065

Types de publication

Journal Article Observational Study

Langues

eng

Sous-ensembles de citation

IM

Pagination

52-60

Subventions

Organisme : Liechtenstein Stiftung
Organisme : Gottfried und Julia Bangerter-Rhyner-Stiftung
ID : YTCR11/2017
Organisme : Schweizerische Akademie der Medizinischen Wissenschaften
ID : YTCR11/2017
Organisme : Stiftung Ostschweizerische Pleoptik- and Orthoptik-Schule

Informations de copyright

© 2020 Acta Ophthalmologica Scandinavica Foundation. Published by John Wiley & Sons Ltd.

Références

Anastasakis A, Genead MA, McAnany JJ & Fishman GA (2012): Evaluation of retinal nerve fiber layer thickness in patients with retinitis pigmentosa using spectral-domain optical coherence tomography. Retina 32: 358-363.
Anguela XM & High KA (2019): Entering the modern era of gene therapy. Annu Rev Med 70: 273-288.
Bainbridge JW, Mehat MS, Sundaram V et al. (2015): Long-term effect of gene therapy on Leber's congenital amaurosis. N Engl J Med 372: 1887-1897.
Battu R, Mohan A, Khanna A, Kumar A & Shetty R (2015): Retinal oxygen saturation in retinitis pigmentosa and macular dystrophies in asian-Indian eyes. Invest Ophthalmol Vis Sci 56: 2798-2802.
Beutelspacher SC, Serbecic N, Barash H, Burgansky-Eliash, Z, Grinvald, A, Krastel, H & Jonas, JB (2011): Retinal blood flow velocity measured by retinal function imaging in retinitis pigmentosa. Graefes Arch Clin Exp Ophthalmol 249: 1855-1858.
Blanks JC & Johnson LV (1986): Vascular atrophy in the retinal degenerative rd mouse. J Comp Neurol 254: 543-553.
Bojinova RI, Türksever C, Schötzau A, Valmaggia C, Schorderet DF & Todorova MG (2017): Reduced metabolic function and structural alterations in inherited retinal dystrophies: investigating the effect of peripapillary vessel oxygen saturation and vascular diameter on the retinal nerve fibre layer thickness. Acta Ophthalmol 95: 252-261.
Bojinova RI, Schorderet DF, Valmaggia C, Türksever C, Schoetzau A & Todorova MG (2018): Higher retinal vessel oxygen saturation: investigating its relationship with macular oedema in retinitis pigmentosa patients. Eye 32: 1209-1219.
Cottet S & Schorderet DF (2009): Mechanisms of apoptosis in retinitis pigmentosa. Curr Mol Med 9: 375-383.
Cringle SJ, Yu DY, Yu PK & Su EN (2002): Intraretinal oxygen consumption in the rat in vivo. Invest Ophthalmol Vis Sci 43: 1922-1927.
Curcio CA, Sloan KR, Kalina RE & Hendrickson AE (1990): Human photoreceptor topography. J Comp Neurol 292: 497-523.
Della Volpe-Waizel M, Zuche HC, Müller U, Rickmann A, Scholl HPN & Todorova MG (2020): Metabolic monitoring of transcorneal electrical stimulation in retinitis pigmentosa. Graefes Arch Clin Exp Ophthalmol 258: 79-87.
Eysteinsson T, Hardarson SH, Bragason D & Stefánsson E (2014): Retinal vessel oxygen saturation and vessel diameter in retinitis pigmentosa. Acta Ophthalmol 92: 449-453.
Faiss R, Pialoux V, Sartori C, Faes C, Dériaz O & Millet GP (2013): Ventilation, oxidative stress, and nitric oxide in hypobaric versus normobaric hypoxia. Med Sci Sports Exerc 45: 253-260.
Farrell DF (2009): Unilateral retinitis pigmentosa and cone-rod dystrophy. Clin Ophthalmol 3: 263-270.
Finger RP, Fimmers R, Holz FG & Scholl HP (2011): Incidence of blindness and severe visual impairment in Germany: projections for 2030. Invest Ophthalmol Vis Sci 52: 4381-4389.
Geirsdottir A, Palsson O, Hardarson SH, Olafsdottir OB, Kristjansdottir JV & Stefánsson E (2012): Retinal vessel oxygen saturation in healthy individuals. Invest Ophthalmol Vis Sci 13: 5433-5442.
Gilbert CE, Anderton L, Dandona L & Foster A (1999): Prevalence of visual impairment in children: a review of available data. Ophthalmic Epidemiol 6: 73-82.
Grunwald JE, Maguire AM & Dupont J (1996): Retinal hemodynamics in retinitis pigmentosa. Am J Ophthalmol 122: 502-508.
Hammer M, Thamm E & Schweitzer D (2002): A simple algorithm for in vivo ocular fundus oximetry compensating for non-haemoglobin absorption and scattering. Phys Med Biol 47: 233-238.
Hammer M, Vilser W, Riemer T, et al. (2009): Diabetic patients with retinopathy show increased retinal venous oxygen saturation. Graefes Arch Clin Exp Ophthalmol 247: 1025-1030.
Hardarson SH, Harris A, Karlsson RA et al. (2006): Automatic retinal oximetry. Invest Ophthalmol Vis Sci 47: 5011-5016.
Harris A, Kagemann L & Cioffi GA (1998): Assessment of human ocular hemodynamics. Surv Ophthalmol 42: 509-533.
Hartong DT, Berson EL & Dryja TP (2006): Retinitis pigmentosa. Lancet 368: 1795-1809.
Hood DC, Lin CE, Lazow MA, Locke KG, Zhang X & Birch DG (2009): Thickness of receptor and post-receptor retinal layers in patients with retinitis pigmentosa measured with frequency-domain optical coherence tomography. Invest Ophthalmol Vis Sci 50: 2328-2336.
Jani PD, Mwanza JC, Billow KB, Waters AM, Moyer S & Garg S (2014): Normative values and predictors of retinal oxygen saturation. Retina 34: 394-401.
Jeppesen SK & Bek T (2019): The retinal oxygen saturation measured by dual wavelength oximetry in larger retinal vessels is influenced by the linear velocity of the Blood. Curr Eye Res 44: 46-52.
Jones BW & Marc RE (2005): Retinal remodeling during retinal degeneration. Exp Eye Res 81: 123-137.
Linsenmeier RA (1986): Effects of light and darkness on oxygen distribution and consumption in the cat retina. J Gen Physiol 88: 521-542.
Liu X, Wang S, Liu Y, Liu LJ, Lv YY, Tang P, Jonas JB & Xu L (2017): Retinal oxygen saturation in Chinese adolescents. Acta Ophthalmol 95: e54-e61.
Liu X, He X, Yin Y et al. (2019): Retinal oxygen saturation in 1461 healthy children aged 7-19 and its associated factors. Acta Ophthalmol 97: 287-295.
Lopez Torres LT, Türksever C, Schötzau A, Orgül S & Todorova MG (2015): Peripapillary retinal vessel diameter correlates with mfERG alterations in retinitis pigmentosa. Acta Ophthalmol 93: 527-533.
Ma Y, Kawasaki R, Dobson LP, Ruddle JB, Kearns LS, Wong TY & Mackey DA (2012): Quantitative analysis of retinal vessel attenuation in eyes with retinitis pigmentosa. Invest Ophthalmol Vis Sci 53: 4306-4314.
Marc RE & Jones BW (2003): Retinal remodeling in inherited photoreceptor degenerations. Mol Neurobiol 28: 139-147.
Masella BD, Hunter JJ & Williams DR (2014): Rod photopigment kinetics after photodisruption of the retinal pigment epithelium. Invest Ophthalmol Vis Sci 55: 7535-7544.
Matthes MT & Bok D (1984): Blood vascular abnormalities in the degenerative mouse retina (C57BL/6J-rd le). Invest Ophthalmol Vis Sci 25: 364-369.
Merin S & Auerbach E (1976): Retinitis pigmentosa. Surv Ophthalmol 20: 303-346.
Milam AH, Li ZY & Fariss RN (1998): Histopathology of the human retina in retinitis pigmentosa. Prog Retin Eye Res 17: 175-205.
Mukhopadhyay R, Holder GE, Moore AT & Webster AR (2011): Unilateral retinitis pigmentosa occurring in an individual with a germline mutation in the RP1 gene. Arch Ophthalmol 129: 954-956.
Naylor A, Hopkins A, Hudson N & Campbell M (2019): Tight Junctions of the outer blood retina barrier. Int J Mol Sci 21: E211.
Ong T, Pennesi ME, Birch DG, Lam BL & Tsang SH (2019): Adeno-associated viral gene therapy for inherited retinal disease. Pharm Res 36: 34.
Padnick-Silver L, Kang Derwent JJ, Giuliano E, Narfström K & Linsenmeier RA (2006): Retinal oxygenation and oxygen metabolism in Abyssinian cats with a hereditary retinal degeneration. Invest Ophthalmol Vis Sci 47: 3683-3689.
Panfoli I, Calzia D, Bianchini P et al. (2009): Evidence for aerobic metabolism in retinal rod outer segment disks. Int J Biochem Cell Biol 41: 2555-2565.
Penn JS, Li S & Naash MI (2000): Ambient hypoxia reverses retinal vascular attenuation in a transgenic mouse model of autosomal dominant retinitis pigmentosa. Invest Ophthalmol Vis Sci 41: 4007-4013.
Pennesi ME, Nishikawa S, Matthes MT, Yasumura D & LaVail MM (2008): The relationship of photoreceptor degeneration to retinal vascular development and loss in mutant rhodopsin transgenic and RCS rats. Exp Eye Res 87: 561-570.
Schweitzer D, Thamm E, Hammer M & Kraft J (2001): A new method for the measurement of oxygen saturation at the human ocular fundus. Int Ophthalmol 23: 347-353.
Stefánsson E, Wolbarsht ML & Landers MB 3rd (1983): In vivo O2 consumption in rhesus monkeys in light and dark. Exp Eye Res 37: 251-256.
Stefánsson E, Olafsdottir OB, Eliasdottir TS et al. (2019): Retinal oximetry: metabolic imaging for diseases of the retina and brain. Prog Retin Eye Res 70: 1-22.
Todorova MG (2017): Metabolic, structural and functional alterations in patients with inherited diseases of the retina. Acta Ophthalmol 95(thesis): 7-16.
Todorova MG, Türksever C, Schorderet DF & Valmaggia C (2014): Retinal vessel oxygen saturation in patients suffering from inherited diseases of the retina. Klin Monbl Augenheilkd 231: 447-452.
Todorova MG, Türksever C, Schötzau A, Schorderet DF & Valmaggia C (2016): Metabolic and functional changes in retinitis pigmentosa: comparing retinal vessel oximetry to full-field electroretinography, electrooculogram and multifocal electroretinography. Acta Ophthalmol 94: 231-241.
Türksever C, Valmaggia C, Orgül S, Schorderet DF, Flammer J & Todorova MG (2014): Retinal vessel oxygen saturation and its correlation with structural changes in retinitis pigmentosa. Acta Ophthalmol 92: 454-460.
Türksever C, Orgül S & Todorova MG (2015): Reproducibility of retinal oximetry measurements in healthy and diseased retinas. Acta Ophthalmol 93: e439-e445.
Ueda-Consolvo T, Fuchizawa C, Otsuka M, Nakagawa T & Hayashi A (2015): Analysis of retinal vessels in eyes with retinitis pigmentosa by retinal oximeter. Acta Ophthalmol 93: 446-450.
Vehmeijer WB, Magnusdottir V, Eliasdottir TS, Hardarson SH, Schalij-Delfos NE & Stefánsson E (2016): Retinal oximetry with scanning laser ophthalmoscope in infants. PLoS One 11: e0148077.
Vinores SA, Küchle M, Derevjanik NL, Henderer JD, Mahlow J, Green WR & Campochiaro PA (1995): Blood-retinal barrier breakdown in retinitis pigmentosa: light and electron microscopic immunolocalization. Histol Histopathol 10: 913-923.
Waizel M, Türksever C & Todorova MG (2018a): The effect of autoimmune retinopathy on retinal vessel oxygen saturation. Eye 32: 1455-1462.
Waizel M, Türksever C & Todorova MG (2018b): Normative values of retinal vessel oximetry in healthy children against adults. Acta Ophthalmol 96: e828-e834.
Walia S & Fishman GA (2008): Retinal nerve fiber layer analysis in RP patients using Fourier-domain OCT. Invest Ophthalmol Vis Sci 49: 3525-3528.
Walia S, Fishman GA, Edward DP & Lindeman M (2007): Retinal nerve fiber layer defects in RP patients. Invest Ophthalmol Vis Sci 48: 4748-4752.
Wang W, Kini A, Wang Y et al. (2019): Metabolic deregulation of the blood-outer retinal barrier in retinitis pigmentosa. Cell Rep 28: 1323-1334.
Wangsa-Wirawan ND & Linsenmeier RA (2003): Retinal oxygen: fundamental and clinical aspects. Arch Ophthalmol 121: 547-557.
Wirtschafter JD (1983): Optic nerve axons and acquired alterations in the appearance of the optic disc. Trans Am Ophthalmol Soc 81: 1034-1091.
Xue K, Wang M, Chen J, Huang X & Xu G (2013): Retinal nerve fiber layer analysis with scanning laser polarimetry and RTVue-OCT in patients of retinitis pigmentosa. Ophthalmologica 229: 38-42.
Yu DY & Cringle SJ (2001): Oxygen distribution and consumption within the retina in vascularised and avascular retinas and in animal models of retinal disease. Prog Retin Eye Res 20: 175-208.
Yu DY & Cringle SJ (2005): Retinal degeneration and local oxygen metabolism. Exp Eye Res 80: 745-751.
Zong Y, Lin L, Yi C et al. (2016): Retinal vessel oxygen saturation and vessel diameter in retinitis pigmentosa at various ages. Graefes Arch Clin Exp Ophthalmol 254: 243-252.

Auteurs

Maria Della Volpe Waizel (M)

Department of Ophthalmology, University of Basel, Basel, Switzerland.
Institute of Molecular and Clinical Ophthalmology Basel (IOB), Basel, Switzerland.

Hendrik P N Scholl (HPN)

Department of Ophthalmology, University of Basel, Basel, Switzerland.
Institute of Molecular and Clinical Ophthalmology Basel (IOB), Basel, Switzerland.

Christophe Valmaggia (C)

Department of Ophthalmology, University of Basel, Basel, Switzerland.
Department of Ophthalmology, Cantonal Hospital St. Gallen, St. Gallen, Switzerland.

Margarita G Todorova (MG)

Department of Ophthalmology, University of Basel, Basel, Switzerland.
Department of Ophthalmology, Cantonal Hospital St. Gallen, St. Gallen, Switzerland.

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