Corneal structure and biomechanics: impact on the diagnosis and management of glaucoma
- 1 August 2006
- journal article
- review article
- Published by Wolters Kluwer Health in Current Opinion in Opthalmology
- Vol. 17 (4) , 338-343
- https://doi.org/10.1097/01.icu.0000233951.01971.5b
Abstract
Highlights recent studies relating to the impact of corneal structure and biomechanical properties on glaucoma evaluation and management. Central corneal thickness has been shown to play a role in the interpretation of intraocular pressure. Central corneal thickness has also been suggested as a glaucoma risk factor. The potential role of other corneal factors, such as stromal makeup, in the accurate measurement of intraocular pressure and the assessment of glaucoma risk remains to be determined. Improved understanding of central corneal thickness and corneal biomechanical properties may someday lead to a better understanding of glaucoma risk and its assessment.Keywords
This publication has 83 references indexed in Scilit:
- Accuracy of the New ICare Rebound Tonometer vs. Other Portable Tonometers in Healthy EyesOptometry and Vision Science, 2006
- Central Corneal Thickness and Development of Glaucomatous Optic Disk HemorrhagesAmerican Journal of Ophthalmology, 2005
- Validity and limitations of the Nidek NT‐4000 non‐contact tonometer: a clinical studyOphthalmic and Physiological Optics, 2005
- Clinical evaluation of the pressure phosphene tonometer in patients with glaucomaBritish Journal of Ophthalmology, 2005
- Central Corneal Thickness Correlated with Glaucoma Damage and Rate of ProgressionInvestigative Opthalmology & Visual Science, 2005
- Mathematical modeling of Maklakoff’s method for measuring the intraocular pressureFluid Dynamics, 2005
- Ocular Biomechanics and BiotransportAnnual Review of Biomedical Engineering, 2004
- Regional elastic performance of the human corneaPublished by Elsevier ,1999
- Strip Extensiometry for Comparison of the Mechanical Response of Bovine, Rabbit, and Human CorneasJournal of Biomechanical Engineering, 1992
- A microstructurally-based finite element model of the incised human corneaJournal of Biomechanics, 1991