Associations of Retinal Vessel Caliber With Hearing Status in Childhood and Midlife: A Cross-Generational Population-Based Study.
Journal
JAMA otolaryngology-- head & neck surgery
ISSN: 2168-619X
Titre abrégé: JAMA Otolaryngol Head Neck Surg
Pays: United States
ID NLM: 101589542
Informations de publication
Date de publication:
01 04 2020
01 04 2020
Historique:
pubmed:
31
1
2020
medline:
22
1
2021
entrez:
31
1
2020
Statut:
ppublish
Résumé
Microvascular phenotypes, which can be assessed using retinal imaging, may be informative about the life course pathogenesis of hearing loss. To investigate whether differences in retinal vessel caliber (specifically wider venules and narrower arterioles) are associated with hearing threshold and hearing loss in mid-childhood and midlife. A population-based cross-sectional study (Child Health CheckPoint) was nested within the Longitudinal Study of Australian Children. A total of 1281 children and 1255 attending parents were assessed using retinal microvasculature and air conduction audiometry data at a main assessment center in 7 large cities in Australia. Air conduction audiometry was used to calculate the high Fletcher index (mean threshold of 1, 2, and 4 kHz), and bilateral hearing loss was defined as a high Fletcher index greater than 15 dB hearing level in the better-hearing ear. Retinal arteriolar and venular caliber were measured from fundus photographs using validated computer-based software. Linear and logistic regression quantified the associations of retinal vessel caliber with hearing threshold and hearing loss, respectively. Of the 1281 included children (mean age, 11.4 years; 49.1% boys), the mean (SD) high Fletcher index was 7.9 (5.8) dB hearing level. Of the 1255 included adults (mean age, 43.8 years; 86.6% women), the mean (SD) high Fletcher index was 13.0 (6.8) dB hearing level; 109 of 1281 children (8.5%) and 328 of 1255 adults (26.1%) had hearing loss. In adults, each 1-SD (18.6-μm) wider retinal venular caliber (worse) was associated with higher (worse) hearing threshold at lower individual frequencies (eg, 2 kHz: β = 0.63; 95% CI, 0.10-1.17) and overall high Fletcher index (eg, 2 kHz: β = 0.52; 95% CI, 0.07-0.96), as well as a 1.20-fold (95% CI, 1.03-1.40) higher odds of hearing loss. In children, patterns of venular associations were similar but smaller and less certain. Narrower retinal arteriolar caliber (worse) was associated with a 1.16-fold (95% CI, 1.00-1.37) higher odds of hearing loss in adults (per 1-SD [14.0-μm] narrower arteriolar caliber) but not in children. Adverse retinal microvascular characteristics are associated with hearing loss by midlife, with venular associations possibly emerging by age 11 to 12 years. Microvascular health may contribute to the pathogenesis of hearing loss across the life course, warranting replication and mechanistic studies to inform causal inference and prevention efforts.
Identifiants
pubmed: 31999311
pii: 2759813
doi: 10.1001/jamaoto.2019.4484
pmc: PMC7042908
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
323-330Références
Invest Ophthalmol Vis Sci. 2004 Jul;45(7):2129-34
pubmed: 15223786
Circulation. 2016 Nov 1;134(18):1328-1338
pubmed: 27682886
Ophthalmologica. 2013;229(3):125-36
pubmed: 23006932
J Assoc Res Otolaryngol. 2008 Sep;9(3):264-76; discussion 261-3
pubmed: 18543032
Br J Audiol. 2000 Aug;34(4):231-40
pubmed: 10997452
Lancet Neurol. 2004 Mar;3(3):179-83
pubmed: 15029894
BMJ Open. 2019 Jul 4;9(Suppl 3):85-94
pubmed: 31273019
BMJ. 2003 Nov 22;327(7425):1199-200
pubmed: 14630755
JAMA. 2002 Mar 6;287(9):1153-9
pubmed: 11879113
Laryngoscope. 2013 Dec;123(12):3178-84
pubmed: 23754553
Am J Ind Med. 2005 Dec;48(6):446-58
pubmed: 16299704
Lancet. 2005 Sep 24-30;366(9491):1111-20
pubmed: 16182900
Semin Hear. 2012 Aug;33(3):242-250
pubmed: 25346568
Int J Audiol. 2015;54(12):958-66
pubmed: 26642893
Gerontologist. 2016 Apr;56 Suppl 2:S256-67
pubmed: 26994265
Surv Ophthalmol. 2009 Jan-Feb;54(1):74-95
pubmed: 19171211
ASHA. 1981 Jul;23(7):493-500
pubmed: 7052898
Hear Res. 2017 Jun;349:129-137
pubmed: 27916698
JAMA. 2010 Aug 18;304(7):772-8
pubmed: 20716740
Otolaryngol Head Neck Surg. 1998 May;118(5):576-83
pubmed: 9591853
Int J Obes (Lond). 2018 Oct;42(10):1771-1781
pubmed: 30026592
J Pathol. 2007 Jan;211(2):188-97
pubmed: 17200945
BMJ Open. 2019 Jul 4;9(Suppl 3):44-52
pubmed: 31273015
Cochrane Database Syst Rev. 2011 Dec 07;(12):CD001871
pubmed: 22161367
JAMA Otolaryngol Head Neck Surg. 2016 Feb;142(2):173-8
pubmed: 26747711
Arch Dis Child. 2018 Jun;103(6):579-585
pubmed: 29386180
Dis Mon. 2013 Apr;59(4):110-8
pubmed: 23507351
Annu Rev Public Health. 2005;26:1-35
pubmed: 15760279
Circulation. 2001 Aug 7;104(6):735-40
pubmed: 11489784
Cell. 2004 Mar 19;116(6):883-95
pubmed: 15035989
JAMA Otolaryngol Head Neck Surg. 2017 Sep 1;143(9):928-934
pubmed: 28750130
Ear Hear. 2007 Jun;28(3):394-401
pubmed: 17485988
BMJ Open. 2019 Jul 4;9(Suppl 3):3-22
pubmed: 31273012
J Neurosci Res. 2020 Sep;98(9):1674-1684
pubmed: 31066107
Curr Eye Res. 2003 Sep;27(3):143-9
pubmed: 14562179
Arch Otolaryngol Head Neck Surg. 1993 Feb;119(2):156-61
pubmed: 8427676
Age Ageing. 2012 Jan;41(1):92-7
pubmed: 22086966
J Clin Endocrinol Metab. 2005 Aug;90(8):4452-6
pubmed: 15928244
Am J Geriatr Psychiatry. 2012 Dec;20(12):1075-7
pubmed: 22327620
Pediatrics. 2010 Apr;125(4):e801-9
pubmed: 20194272
Stroke. 2014 Apr;45(4):1012-7
pubmed: 24549866
Int J Epidemiol. 2019 Oct 1;48(5):1556-1566
pubmed: 30815675
JAMA. 1998 Apr 8;279(14):1071-5
pubmed: 9546565
Int J Obes (Lond). 2015 Oct;39(10):1482-7
pubmed: 26028060
Diabetologia. 2015 Nov;58(11):2476-85
pubmed: 26232097
Obesity (Silver Spring). 2006 Feb;14(2):206-14
pubmed: 16571845