Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models

This study investigated the relationships among intraocular pressure (IOP), nitric oxide (NO) levels, and aqueous flow rates in experimental ocular hypertension models. A total of 75 rabbits were used. One of four different materials [i.e., α-chymotrypsin, latex microspheres (Polybead), red blood ce...

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Main Authors: Da-Wen Lu, Yi-Hao Chen, Charn-Jung Chang, Chiao-Hsi Chiang, Hsin-Yu Yao
Format: Article
Language:English
Published: Wiley 2014-12-01
Series:Kaohsiung Journal of Medical Sciences
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1607551X1400182X
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spelling doaj-04efb8e1adb54067adba0d3311d6c8b22020-11-24T21:25:55ZengWileyKaohsiung Journal of Medical Sciences1607-551X2014-12-01301259359810.1016/j.kjms.2014.09.004Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental modelsDa-Wen Lu0Yi-Hao Chen1Charn-Jung Chang2Chiao-Hsi Chiang3Hsin-Yu Yao4Department of Ophthalmology, Tri-Service General Hospital, National Defense Medical Center, Taipei, TaiwanDepartment of Ophthalmology, Tri-Service General Hospital, National Defense Medical Center, Taipei, TaiwanDepartment of Pharmacy Practice, Tri-Service General Hospital, National Defense Medical Center, Taipei, TaiwanSchool of Pharmacy, National Defense Medical Center, Taipei, TaiwanDepartment of Ophthalmology, Tri-Service General Hospital, National Defense Medical Center, Taipei, TaiwanThis study investigated the relationships among intraocular pressure (IOP), nitric oxide (NO) levels, and aqueous flow rates in experimental ocular hypertension models. A total of 75 rabbits were used. One of four different materials [i.e., α-chymotrypsin, latex microspheres (Polybead), red blood cell ghosts, or sodium hyaluronate (Healon GV)] was injected into the eyes of the 15 animals in each experimental group; the remaining 15 rabbits were reserved for a control group. The IOP changes in the five groups were recorded on postinduction Days 1–3, Day 7, Day 14, Day 30, Day 60, Day 90, and Day 120. On postinduction Day 7, the dynamics and NO levels in the aqueous humor were recorded. Significant IOP elevations were induced by α-chymotrypsin (p < 0.01) and Polybead (p < 0.01) on each postinduction day. In the red blood cell ghosts model, significant elevations (p < 0.01) were found on postinduction Days 1–3; Healon GV significantly elevated IOP (p < 0.01) on postinduction Day 1 and Day 2. On postinduction Day 7, the aqueous humor NO levels increased significantly in the models of α-chymotrypsin, Polybead, and red blood cell ghosts (all p < 0.01), while the aqueous flow rates were significantly reduced in the models of α-chymotrypsin and Polybead (p < 0.005). Persistent ocular hypertension models were induced with α-chymotrypsin and Polybead in the rabbits. The Polybead model exhibited the characteristic of an increased aqueous humor NO level, similar to human eyes with acute angle-closure glaucoma and neovascular glaucoma.http://www.sciencedirect.com/science/article/pii/S1607551X1400182XExperimental glaucomaFluorophotometerLatex microspheresNitric oxide
collection DOAJ
language English
format Article
sources DOAJ
author Da-Wen Lu
Yi-Hao Chen
Charn-Jung Chang
Chiao-Hsi Chiang
Hsin-Yu Yao
spellingShingle Da-Wen Lu
Yi-Hao Chen
Charn-Jung Chang
Chiao-Hsi Chiang
Hsin-Yu Yao
Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models
Kaohsiung Journal of Medical Sciences
Experimental glaucoma
Fluorophotometer
Latex microspheres
Nitric oxide
author_facet Da-Wen Lu
Yi-Hao Chen
Charn-Jung Chang
Chiao-Hsi Chiang
Hsin-Yu Yao
author_sort Da-Wen Lu
title Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models
title_short Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models
title_full Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models
title_fullStr Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models
title_full_unstemmed Nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models
title_sort nitric oxide levels in the aqueous humor vary in different ocular hypertension experimental models
publisher Wiley
series Kaohsiung Journal of Medical Sciences
issn 1607-551X
publishDate 2014-12-01
description This study investigated the relationships among intraocular pressure (IOP), nitric oxide (NO) levels, and aqueous flow rates in experimental ocular hypertension models. A total of 75 rabbits were used. One of four different materials [i.e., α-chymotrypsin, latex microspheres (Polybead), red blood cell ghosts, or sodium hyaluronate (Healon GV)] was injected into the eyes of the 15 animals in each experimental group; the remaining 15 rabbits were reserved for a control group. The IOP changes in the five groups were recorded on postinduction Days 1–3, Day 7, Day 14, Day 30, Day 60, Day 90, and Day 120. On postinduction Day 7, the dynamics and NO levels in the aqueous humor were recorded. Significant IOP elevations were induced by α-chymotrypsin (p < 0.01) and Polybead (p < 0.01) on each postinduction day. In the red blood cell ghosts model, significant elevations (p < 0.01) were found on postinduction Days 1–3; Healon GV significantly elevated IOP (p < 0.01) on postinduction Day 1 and Day 2. On postinduction Day 7, the aqueous humor NO levels increased significantly in the models of α-chymotrypsin, Polybead, and red blood cell ghosts (all p < 0.01), while the aqueous flow rates were significantly reduced in the models of α-chymotrypsin and Polybead (p < 0.005). Persistent ocular hypertension models were induced with α-chymotrypsin and Polybead in the rabbits. The Polybead model exhibited the characteristic of an increased aqueous humor NO level, similar to human eyes with acute angle-closure glaucoma and neovascular glaucoma.
topic Experimental glaucoma
Fluorophotometer
Latex microspheres
Nitric oxide
url http://www.sciencedirect.com/science/article/pii/S1607551X1400182X
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