Intraocular Pressure

Intraocular pressure (IOP) is the fluid pressure inside the eye, generated by the balance between aqueous humor production and its removal, and it is an important indicator of ocular health. Aqueous humor is produced by the ciliary body, circulates through the anterior chamber, and exits primarily through the trabecular meshwork and Schlemm’s canal; impaired outflow can raise pressure and stress the optic nerve. Clinicians measure IOP with tonometry to assess glaucoma risk, monitor disease progression, and evaluate treatment response. Understanding IOP also supports research into ocular fluid dynamics, optic nerve injury, and therapies that improve aqueous humor drainage or reduce its production.

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JoVE EoE - Neuropathology

Induction of Elevated Intraocular Pressure in a Rat Model

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2025

Source: Lani-Louzada, R., et al., Full-Circle Cauterization of Limbal Vascular Plexus for Surgically Induced Glaucoma in Rodents. J. Vis. Exp. (2022)This video demonstrates the induction and monitoring of elevated intraocular pressure (IOP) in a rat model. The process involves cauterizing the limbal blood vessels, resulting in vessel occlusion and elevated IOP. The rat is then allowed to recover, and IOP is regularly monitored in both the experimental and control eyes for comparison.

A Mouse Model of Retinal Ischemia-Reperfusion Injury Through Elevation of Intraocular Pressure

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Cited by 102 •

2016

This article describes a procedure for inducing retinal ischemia-reperfusion injury by elevated intraocular pressure in mice. Retinal ischemia-reperfusion injury by elevated intraocular pressure serves to model human pathologies characterized by compromised oxygen and nutrient delivery in the retina, enabling researchers to examine potential cellular mechanisms and treatments for human diseases of the retinal neurovascular unit.

Use of Rabbit Eyes in Pharmacokinetic Studies of Intraocular Drugs

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Cited by 59 •

2016

Rabbits are widely used to study the pharmacokinetics of intraocular drugs. We describe a method for conducting pharmacokinetic studies of intraocular drugs using rabbit eyes.

Translaminar Autonomous System Model for the Modulation of Intraocular and Intracranial Pressure in Human Donor Posterior Segments

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Cited by 3 •

2020

We describe and detail the use of the translaminar autonomous system. This system utilizes the human posterior segment to independently regulate the pressure inside the segment (intraocular) and surrounding the optic nerve (intracranial) to generate a translaminar pressure gradient that mimics features of glaucomatous optic neuropathy.

Synthesis and Microdiffraction at Extreme Pressures and Temperatures

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Cited by 5 •

2013

The laser heated diamond anvil cell combined with synchrotron micro-diffraction techniques allows researchers to explore the nature and properties of new phases of matter at extreme pressure and temperature (PT) conditions. Heterogeneous samples can be characterized in situ under high pressure by 2D mapping and combined powder, single-crystal and multigrain diffraction approaches.

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