Literature DB >> 24359130

Intraocular pressure regulation: findings of pulse-dependent trabecular meshwork motion lead to unifying concepts of intraocular pressure homeostasis.

Murray A Johnstone1.   

Abstract

Intraocular pressure (IOP) is the only treatable risk factor in glaucoma, one of the world's leading causes of blindness. Mechanisms that maintain IOP within a normal range have been poorly understood in contrast to intrinsic mechanisms that regulate systemic blood pressure. Vessel walls experience continuous pulse-induced cyclic pressure and flow. Pressure-dependent wall stress and flow-dependent shear stress provide sensory signals that initiate mechanotransduction responses. The responses optimize vessel wall elasticity, compliance and lumen size, providing a feedback loop to maintain intrinsic pressure homeostasis. Aqueous humor is part of a vascular circulatory loop, being secreted into the anterior chamber of the eye from the vasculature, then returning to the vasculature by passing through the trabecular meshwork (TM), a uniquely modified vessel wall interposed between the anterior chamber and a vascular sinus called Schlemm's canal (SC). Since pressure in circulatory loops elsewhere is modulated by cyclic stresses, one might predict similar pressure modulation in the aqueous outflow system. Recent laboratory evidence in fact demonstrates that cyclic IOP changes alter aqueous outflow while increasing cellularity and contractility of TM cells. Cyclic changes also lead to alterations in gene expression, changes in cytoskeletal networks and modulation of signal transduction. A new technology, phase-based optical coherence tomography, demonstrates in vivo pulse-dependent TM motion like that elsewhere in the vasculature. Recognition of pulse-dependent TM motion provides a linkage to well-characterized mechanisms that provide pressure homeostasis in the systemic vasculature. The linkage may permit unifying concepts of pressure control and provide new insights into IOP homeostatic mechanisms.

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Mesh:

Year:  2013        PMID: 24359130      PMCID: PMC3991971          DOI: 10.1089/jop.2013.0224

Source DB:  PubMed          Journal:  J Ocul Pharmacol Ther        ISSN: 1080-7683            Impact factor:   2.671


  48 in total

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Authors:  W M GRANT
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Review 7.  The aqueous outflow system as a mechanical pump: evidence from examination of tissue and aqueous movement in human and non-human primates.

Authors:  Murray A Johnstone
Journal:  J Glaucoma       Date:  2004-10       Impact factor: 2.503

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Authors:  H W KLEINERT
Journal:  AMA Arch Ophthalmol       Date:  1951-12

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Authors:  E R Tamm; P Russell; D L Epstein; D H Johnson; J Piatigorsky
Journal:  Invest Ophthalmol Vis Sci       Date:  1999-10       Impact factor: 4.799

10.  Signaling pathways used in trabecular matrix metalloproteinase response to mechanical stretch.

Authors:  John M B Bradley; Mary J Kelley; Anastasia Rose; Ted S Acott
Journal:  Invest Ophthalmol Vis Sci       Date:  2003-12       Impact factor: 4.799

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  10 in total

Review 1.  Deconstructing aqueous humor outflow - The last 50 years.

Authors:  Paul L Kaufman
Journal:  Exp Eye Res       Date:  2020-06-23       Impact factor: 3.467

2.  Valve-Like Outflow System Behavior With Motion Slowing in Glaucoma Eyes: Findings Using a Minimally Invasive Glaucoma Surgery-MIGS-Like Platform and Optical Coherence Tomography Imaging.

Authors:  Murray Johnstone; Chen Xin; Ted Acott; Janice Vranka; Joanne Wen; Elizabeth Martin; Ruikang K Wang
Journal:  Front Med (Lausanne)       Date:  2022-04-29

3.  Estimating outflow facility through pressure dependent pathways of the human eye.

Authors:  David W Smith; Bruce S Gardiner
Journal:  PLoS One       Date:  2017-12-20       Impact factor: 3.240

4.  OCT Study of Mechanical Properties Associated with Trabecular Meshwork and Collector Channel Motion in Human Eyes.

Authors:  Chen Xin; Murray Johnstone; Ningli Wang; Ruikang K Wang
Journal:  PLoS One       Date:  2016-09-06       Impact factor: 3.240

Review 5.  Aqueous outflow regulation: Optical coherence tomography implicates pressure-dependent tissue motion.

Authors:  Chen Xin; Ruikang K Wang; Shaozhen Song; Tueng Shen; Joanne Wen; Elizabeth Martin; Yi Jiang; Steven Padilla; Murray Johnstone
Journal:  Exp Eye Res       Date:  2016-06-11       Impact factor: 3.467

6.  Estimating three-dimensional outflow and pressure gradients within the human eye.

Authors:  David W Smith; Chang-Joon Lee; William Morgan; Bruce S Gardiner
Journal:  PLoS One       Date:  2019-04-09       Impact factor: 3.240

7.  Reduced Pulsatile Trabecular Meshwork Motion in Eyes With Primary Open Angle Glaucoma Using Phase-Sensitive Optical Coherence Tomography.

Authors:  Kai Gao; Shaozhen Song; Murray A Johnstone; Qinqin Zhang; Jingjiang Xu; Xiulan Zhang; Ruikang K Wang; Joanne C Wen
Journal:  Invest Ophthalmol Vis Sci       Date:  2020-12-01       Impact factor: 4.799

8.  Impaired TRPV4-eNOS signaling in trabecular meshwork elevates intraocular pressure in glaucoma.

Authors:  Pinkal D Patel; Yen-Lin Chen; Ramesh B Kasetti; Prabhavathi Maddineni; William Mayhew; J Cameron Millar; Dorette Z Ellis; Swapnil K Sonkusare; Gulab S Zode
Journal:  Proc Natl Acad Sci U S A       Date:  2021-04-20       Impact factor: 11.205

Review 9.  Aqueous outflow regulation - 21st century concepts.

Authors:  Murray Johnstone; Chen Xin; James Tan; Elizabeth Martin; Joanne Wen; Ruikang K Wang
Journal:  Prog Retin Eye Res       Date:  2020-11-17       Impact factor: 21.198

10.  Expression of mRNAs, miRNAs, and lncRNAs in Human Trabecular Meshwork Cells Upon Mechanical Stretch.

Authors:  Hannah Youngblood; Jingwen Cai; Michelle D Drewry; Inas Helwa; Eric Hu; Sabrina Liu; Hongfang Yu; Hongmei Mu; Yanzhong Hu; Kristin Perkumas; Inas F Aboobakar; William M Johnson; W Daniel Stamer; Yutao Liu
Journal:  Invest Ophthalmol Vis Sci       Date:  2020-05-11       Impact factor: 4.799

  10 in total

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