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1. Eye Center of the Second Affiliated Hospital, Zhejiang University School of Medicine,Hangzhou,China
2. Department of Ophthalmology, Zhongshan Hospital, Fudan University,Shanghai,China
3. Shanghai Institute of Infectious Disease and Biosecurity, Zhongshan Hospital, Fudan University,Shanghai,China
纸质出版日期:2024,
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Kai Wang, Xueqi Lin, Siting Sheng, 等. Association between glaucoma and stroke: A bidirectional mendelian randomization study[J]. 眼科实践与研究新进展, 2024,4(3):147-155.
KAI WANG, XUEQI LIN, SITING SHENG, et al. Association between glaucoma and stroke: A bidirectional mendelian randomization study. [J]. Aopr, 2024, 4(3): 147-155.
Kai Wang, Xueqi Lin, Siting Sheng, 等. Association between glaucoma and stroke: A bidirectional mendelian randomization study[J]. 眼科实践与研究新进展, 2024,4(3):147-155. DOI: 10.1016/j.aopr.2024.04.003.
KAI WANG, XUEQI LIN, SITING SHENG, et al. Association between glaucoma and stroke: A bidirectional mendelian randomization study. [J]. Aopr, 2024, 4(3): 147-155. DOI: 10.1016/j.aopr.2024.04.003.
PurposeObservational studies have reported positive associations between glaucoma and stroke; however
controversial results exist. Importantly
the nature of the relationship remains unknown since previous studies were not designed to test causality. Therefore
we aimed to investigate the possible causal relationships between glaucoma and stroke.MethodsOur two-sample Mendelian randomization (MR) encompassed multi-ethnic large-scale genome-wide association studies with more than 20000 cases and 260000 controls for glaucoma
and more than 80000 cases and 630000 controls for stroke. Individual effect estimates for each SNP were combined using the inverse-variance weighted (IVW) method. To avoid potential pleiotropic effects
we adjusted the main results by excluding genetic variants associated with metabolic factors. The weighted median and MR-Egger methods were also used for the sensitivity analysis.ResultsOur MR analysis revealed that glaucoma and its subtypes
including primary open-angle glaucoma and primary angle-closure glaucoma
exhibited no causal role in relation to any stroke (AS)
any ischemic stroke (AIS)
large-artery atherosclerotic stroke (LAS)
small-vessel stroke (SVS)
or cardioembolic stroke (CES) across MR analyses (all
P
>
0.05). The null associations remained robust even after adjusting for metabolic-related traits and were consistent in both the European and Asian populations. Furthermore
reverse MR analyses also did not indicate any significant causal effects of AS
AIS
LAS
or CES on glaucoma risk.ConclusionsEvidence from our series of causal inference approaches using large-scale population-based MR analyses did not support causal effects between glaucoma and stroke. These findings suggest that the relationship of glaucoma management and stroke risk prevention should be carefully evaluated in future studies. In turn
stroke diagnosis should not be simply applied to glaucoma risk prediction.
GlaucomaStrokeMendelian randomizationCausationMetabolic-related trait
1 V.L. Roger, A.S. Go, D.M. Lloyd-Jones, et al.Heart disease and stroke statistics--2011 update: a report from the American Heart Association Circulation, 123 (4) (2011), pp. e18-e209, 10.1161/CIR.0b013e3182009701
2 C. Esenwa, J. GutierrezSecondary stroke prevention: challenges and solutions Vasc Health Risk Manag, 11 (2015), pp. 437-450, 10.2147/VHRM.S63791
3 F.J. Rowe, et al.Vision in Stroke cohort: profile overview of visual impairment Brain Behav, 7 (11) (2017), Article e00771, 10.1002/brb3.771
4 F.J. Rowe, L.R. Hepworth, C. Howard, et al.High incidence and prevalence of visual problems after acute stroke: an epidemiology study with implications for service delivery PLoS One, 14 (3) (2019), Article e0213035, 10.1371/journal.pone.0213035
5 T.M. Smith, M.R. Pappadis, S. Krishnan, et al.Stroke survivor and caregiver perspectives on post-stroke visual concerns and long-term consequences Behav Neurol, 2018 (2018), p. 1463429, 10.1155/2018/1463429
6 R. Chou, T. Dana, C. Bougatsos, et al.Screening for impaired visual acuity in older adults: updated evidence report and systematic review for the US preventive services task force JAMA, 315 (9) (2016), pp. 915-933, 10.1001/jama.2016.0783
7 K.P. Hreha, S.R. Fisher, T.A. Reistetter, et al.Use of the ICD-10 vision codes to study ocular conditions in Medicare beneficiaries with stroke BMC Health Serv Res, 20 (1) (2020), p. 628, 10.1186/s12913-020-05484-z
8 J.B. Jonas, T. Aung, R.R. Bourne Lancet, 390 (10108) (2017), pp. 2183-2193, 10.1016/S0140-6736(17)31469-1
9 R.N. Weinreb, T. Aung, F.A. MedeirosThe pathophysiology and treatment of glaucoma: a review JAMA, 311 (18) (2014), pp. 1901-1911, 10.1001/jama.2014.3192
10 R.D. Fechtner, R.N. WeinrebMechanisms of optic nerve damage in primary open angle glaucoma Surv Ophthalmol, 39 (1) (1994), pp. 23-42, 10.1016/s0039-6257(05)80042-6
11 M. Yanagi, R. Kawasaki, J.J. Wang, et al.Vascular risk factors in glaucoma: a review Clin Exp Ophthalmol, 39 (3) (2011), pp. 252-258, 10.1111/j.1442-9071.2010.02455.x
12 A. Guzik, C. BushnellStroke epidemiology and risk factor management Continuum, 23 (1, Cerebrovascular Disease) (2017), pp. 15-39, 10.1212/con.0000000000000416
13 J.D. Ho, C.C. Hu, H.C. LinOpen-angle glaucoma and the risk of stroke development: a 5-year population-based follow-up study Stroke, 40 (8) (2009), pp. 2685-2690, 10.1161/strokeaha.109.554642
14 M.S. Lee, L.L. Kuo, E.C. Tan, et al.Is normal-tension glaucoma a risk factor for stroke?-A 10-year follow-up study PLoS One, 12 (6) (2017), Article e0179307, 10.1371/journal.pone.0179307
15 S.H. Lee, G.A. Kim, W. Lee, et al.Vascular and metabolic comorbidities in open-angle glaucoma with low- and high-teen intraocular pressure: a cross-sectional study from South Korea Acta Ophthalmol, 95 (7) (2017), pp. e564-e574, 10.1111/aos.13487
16 T.H. Rim, S.Y. Lee, H.W. Bae, et al.Increased stroke risk among patients with open-angle glaucoma: a 10-year follow-up cohort study Br J Ophthalmol, 102 (3) (2018), pp. 338-343, 10.1136/bjophthalmol-2017-310415
17 C.W. Su, Y.C. Chang, C.L. Lin, et al.Association of neovascular glaucoma with risk of stroke: a population-based cohort study J Ophthalmol, 2017 (2017), p. 1851568, 10.1155/2017/1851568
18 H.C. Lin, C.W. Chien, C.C. Hu, et al.Comparison of comorbid conditions between open-angle glaucoma patients and a control cohort: a case-control study Ophthalmology, 117 (11) (2010), pp. 2088-2095, 10.1016/j.ophtha.2010.03.003
19 D.D. French, C.E. MargoOpen angle glaucoma and stroke Ophthalmology, 117 (8) (2010), pp. 1653-1654, 10.1016/j.ophtha.2010.03.016
20 D.Y. Leung, C.C. Tham, F.C. Li, et al.Silent cerebral infarct and visual field progression in newly diagnosed normal-tension glaucoma: a cohort study Ophthalmology, 116 (7) (2009), pp. 1250-1256, 10.1016/j.ophtha.2009.02.003
21 J. Schoemann, T. Engelhorn, S. Waerntges, et al.Cerebral microinfarcts in primary open-angle glaucoma correlated with DTI-derived integrity of optic radiation Invest Ophthalmol Vis Sci, 55 (11) (2014), pp. 7241-7247, 10.1167/iovs.14-14919
22 J. Flammer, S. Orgül, V.P. Costa, et al.The impact of ocular blood flow in glaucoma Prog Retin Eye Res, 21 (4) (2002), pp. 359-393, 10.1016/s1350-9462(02)00008-3
23 I.U. Güngör, L. Güngör, Y. Ozarslan, et al.Is symptomatic atherosclerotic cerebrovascular disease a risk factor for normal-tension glaucoma? Med Princ Pract : international journal of the Kuwait University, Health Science Centre, 20 (3) (2011), pp. 220-224, 10.1159/000323596
24 K. Ong, A. Farinelli, F. Billson, et al.Comparative study of brain magnetic resonance imaging findings in patients with low-tension glaucoma and control subjects Ophthalmology, 102 (11) (1995), pp. 1632-1638, 10.1016/s0161-6420(95)30816-0
25 J. Suzuki, A. Tomidokoro, M. Araie, et al.Visual field damage in normal-tension glaucoma patients with or without ischemic changes in cerebral magnetic resonance imaging Jpn J Ophthalmol, 48 (4) (2004), pp. 340-344, 10.1007/s10384-004-0072-0
26 W.J. Lee, J.W. Jeoung, K.I. Na, et al.Relationship between open-angle glaucoma and stroke: a 2010 to 2012 Korea National Health and Nutrition Examination Survey J Glaucoma, 27 (1) (2018), pp. 22-27, 10.1097/ijg.0000000000000829
27 R. Klein, B.E. Klein, S.E. Moss, et al.Association of ocular disease and mortality in a diabetic population Arch Ophthalmol, 117 (11) (1999), pp. 1487-1495, 10.1001/archopht.117.11.1487
28 P.C. Robinson, H.K. Choi, R. Do, et al.Insight into rheumatological cause and effect through the use of Mendelian randomization Nat Rev Rheumatol, 12 (8) (2016), pp. 486-496, 10.1038/nrrheum.2016.102
29 P.G. Hysi, A.P. Khawaja, C. Menni, et al.Ascorbic acid metabolites are involved in intraocular pressure control in the general population Redox Biol, 20 (2019), pp. 349-353, 10.1016/j.redox.2018.10.004
30 L. Shen, S. Walter, R.B. Melles, et al.Diabetes pathology and risk of primary open-angle glaucoma: evaluating causal mechanisms by using genetic information Am J Epidemiol, 183 (2) (2016), pp. 147-155, 10.1093/aje/kwv204
31 G. Hindy, G. Engström, S.C. Larsson, et al.Role of blood lipids in the development of ischemic stroke and its subtypes: a mendelian randomization study Stroke, 49 (4) (2018), pp. 820-827, 10.1161/strokeaha.117.019653
32 J.C. Hopewell, R. ClarkeEmerging risk factors for stroke: what have we learned from mendelian randomization studies? Stroke, 47 (6) (2016), pp. 1673-1678, 10.1161/strokeaha.115.010646
33 S.C. Larsson, R.A. Scott, M. Traylor, et al.Type 2 diabetes, glucose, insulin, BMI, and ischemic stroke subtypes: mendelian randomization study Neurology, 89 (5) (2017), pp. 454-460, 10.1212/wnl.0000000000004173
34 F. Yang, S. Chen, Z. Qu, et al.Genetic liability to sedentary behavior in relation to stroke, its subtypes and neurodegenerative diseases: a mendelian randomization study Front Aging Neurosci, 13 (2021), p. 757388, 10.3389/fnagi.2021.757388
35 H. Choquet, S. Paylakhi, S.C. Kneeland, et al.A multiethnic genome-wide association study of primary open-angle glaucoma identifies novel risk loci Nat Commun, 9 (1) (2018), p. 2278, 10.1038/s41467-018-04555-4
36 C.C. Khor, T. Do, H. Jia, et al.Genome-wide association study identifies five new susceptibility loci for primary angle closure glaucoma Nat Genet, 48 (5) (2016), pp. 556-562, 10.1038/ng.3540
37 Y. Shiga, M. Akiyama, K.M. Nishiguchi, et al.Genome-wide association study identifies seven novel susceptibility loci for primary open-angle glaucoma Hum Mol Genet, 27 (8) (2018), pp. 1486-1496, 10.1093/hmg/ddy053
38 A.P. Khawaja, J.N. Cooke Bailey, N.J. Wareham, et al.Genome-wide analyses identify 68 new loci associated with intraocular pressure and improve risk prediction for primary open-angle glaucoma Nat Genet, 50 (6) (2018), pp. 778-782, 10.1038/s41588-018-0126-8
39 R. Malik, G. Chauhan, M. Traylor, et al.Multiancestry genome-wide association study of 520,000 subjects identifies 32 loci associated with stroke and stroke subtypes Nat Genet, 50 (4) (2018), pp. 524-537, 10.1038/s41588-018-0058-3
40 K. Ishigaki, M. Akiyama, M. Kanai, et al.Large-scale genome-wide association study in a Japanese population identifies novel susceptibility loci across different diseases Nat Genet, 52 (7) (2020), pp. 669-679, 10.1038/s41588-020-0640-3
41 T.M. Palmer, D.A. Lawlor, R.M. Harbord, et al.Using multiple genetic variants as instrumental variables for modifiable risk factors Stat Methods Med Res, 21 (3) (2012), pp. 223-242, 10.1177/0962280210394459
42 S.C. Lin, L.R. Pasquale, K. Singh, et al.The association between body mass index and open-angle glaucoma in a South Korean population-based sample J Glaucoma, 27 (3) (2018), pp. 239-245, 10.1097/IJG.0000000000000867
43 V. Chopra, R. Varma, B.A. Francis, et al.Type 2 diabetes mellitus and the risk of open-angle glaucoma the Los Angeles Latino Eye Study Ophthalmology, 115 (2) (2008), pp. 227-232 e221, 10.1016/j.ophtha.2007.04.049
44 P.A. Newman-Casey, N. Talwar, B. Nan, et al.The relationship between components of metabolic syndrome and open-angle glaucoma Ophthalmology, 118 (7) (2011), pp. 1318-1326, 10.1016/j.ophtha.2010.11.022
45 M.S. Elkind, R.L. SaccoStroke risk factors and stroke prevention Semin Neurol, 18 (4) (1998), pp. 429-440, 10.1055/s-2008-1040896
46 S. Burgess, A. Butterworth, S.G. ThompsonMendelian randomization analysis with multiple genetic variants using summarized data Genet Epidemiol, 37 (7) (2013), pp. 658-665, 10.1002/gepi.21758
47 J.R. Thompson, C. Minelli, M.F. Del GrecoMendelian randomization using public data from genetic consortia Int J Biostat, 12 (2) (2016), 10.1515/ijb-2015-0074
48 J. Bowden, G. Davey Smith, P.C. Haycock, et al.Consistent estimation in mendelian randomization with some invalid instruments using a weighted median estimator Genet Epidemiol, 40 (4) (2016), pp. 304-314, 10.1002/gepi.21965
49 S. Burgess, S.G. ThompsonInterpreting findings from Mendelian randomization using the MR-Egger method Eur J Epidemiol, 32 (5) (2017), pp. 377-389, 10.1007/s10654-017-0255-x
50 A. Belzunce, M. CasellasVascular risk factors in primary open angle glaucoma An Sist Sanit Navar, 27 (3) (2004), pp. 335-344, 10.4321/s1137-66272004000500005
51 G.A. Stroman, W.C. Stewart, K.C. Golnik, et al.Magnetic resonance imaging in patients with low-tension glaucoma Arch Ophthalmol, 113 (2) (1995), pp. 168-172, 10.1001/archopht.1995.01100020050027
52 X. Wu, K. Konieczka, X. Liu, et al.Role of ocular blood flow in normal tension glaucoma Adv Ophthalmol Pract Res, 2 (1) (2022), Article 100036, 10.1016/j.aopr.2022.100036
53 V. KumarUnderstanding retinal changes after stroke Open J Ophthalmol, 7 (4) (2017), pp. 281-292, 10.4236/ojoph.2017.74037
54 D.A. De Silva, J.J. Manzano, E.Y. Liu, et al.Retinal microvascular changes and subsequent vascular events after ischemic stroke Neurology, 77 (9) (2011), pp. 896-903, 10.1212/WNL.0b013e31822c623b
55 A.Z. Sherzai, M.S. ElkindAdvances in stroke prevention Ann N Y Acad Sci, 1338 (2015), pp. 1-15, 10.1111/nyas.12723
56 H.W. Bae, N. Lee, H.S. Lee, et al.Systemic hypertension as a risk factor for open-angle glaucoma: a meta-analysis of population-based studies PLoS One, 9 (9) (2014), Article e108226, 10.1371/journal.pone.0108226
57 M. Zhou, W. Wang, W. Huang, et al.Diabetes mellitus as a risk factor for open-angle glaucoma: a systematic review and meta-analysis PLoS One, 9 (8) (2014), Article e102972, 10.1371/journal.pone.0102972
58 P. Masson, A.C. Webster, M. Hong, et al.Chronic kidney disease and the risk of stroke: a systematic review and meta-analysis Nephrol Dial Transplant, 30 (7) (2015), pp. 1162-1169, 10.1093/ndt/gfv009 official publication of the European Dialysis and Transplant Association - European Renal Association
59 Y. Miyasaka, M.E. Barnes, B.J. Gersh, et al.Secular trends in incidence of atrial fibrillation in Olmsted County, Minnesota, 1980 to 2000, and implications on the projections for future prevalence Circulation, 114 (2) (2006), pp. 119-125, 10.1161/circulationaha.105.595140
60 D.S. Sanders, S.L. MansbergerObstructive sleep apnea and primary open-angle glaucoma J Glaucoma, 28 (8) (2019), p. 667, 10.1097/ijg.0000000000001304
61 T.J. Wang, C.K. Wu, C.C. Hu, et al.Increased risk of co-morbid eye disease in patients with chronic renal failure: a population-based study Ophthalmic Epidemiol, 19 (3) (2012), pp. 137-143, 10.3109/09286586.2012.680531
62 P. Mitchell, H. Leung, J.J. Wang, et al.Retinal vessel diameter and open-angle glaucoma: the blue mountains eye study Ophthalmology, 112 (2) (2005), pp. 245-250, 10.1016/j.ophtha.2004.08.015
63 T.Y. Wong, R. Klein, D.J. Couper, et al.Retinal microvascular abnormalities and incident stroke: the atherosclerosis risk in communities study Lancet, 358 (9288) (2001), pp. 1134-1140, 10.1016/s0140-6736(01)06253-5
64 J.Y. Lee, C. Yoo, J.H. Park, et al.Retinal vessel diameter in young patients with open-angle glaucoma: comparison between high-tension and normal-tension glaucoma Acta Ophthalmol, 90 (7) (2012), pp. e570-e571, 10.1111/j.1755-3768.2011.02371.x
65 L. Bonomi, G. Marchini, M. Marraffa, et al.Vascular risk factors for primary open angle glaucoma: the Egna-Neumarkt Study Ophthalmology, 107 (7) (2000), pp. 1287-1293, 10.1016/s0161-6420(00)00138-x
66 P. KolarRisk factors for central and branch retinal vein occlusion: a meta-analysis of published clinical data Journal of ophthalmology, 2014 (2014), Article 724780, 10.1155/2014/724780
67 Y.C. Tham, C.Y. ChengAssociations between chronic systemic diseases and primary open angle glaucoma: an epidemiological perspective Clin Exp Ophthalmol, 45 (1) (2017), pp. 24-32, 10.1111/ceo.12763
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