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Original Research Article | OPEN ACCESS

Mathematical Modelling of Intraretinal Oxygen Partial Pressure

R Avtar , D Tandon

Department of Mathematics, Harcourt Butler Technological Institute, Kanpur 208002, India.;

For correspondence:-  R Avtar   Email: deepti_hbti@yahoo.co.in

Received: 15 July 2008        Accepted: 15 September 2008        Published: 16 December 2008

Citation: Avtar R, Tandon D. Mathematical Modelling of Intraretinal Oxygen Partial Pressure. Trop J Pharm Res 2008; 7(4):1107-1116 doi: 10.4314/tjpr.v7i4.2

© 2008 The authors.
This is an Open Access article that uses a funding model which does not charge readers or their institutions for access and distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0) and the Budapest Open Access Initiative (http://www.budapestopenaccessinitiative.org/read), which permit unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited..

Abstract

Purpose: The aim of our present work is to develop a simple steady state model for intraretinal oxygen partial pressure distribution and to investigate the effect of various model parameters on the partial pressure distribution under adapted conditions of light and darkness.
Method: A simple eight-layered mathematical model for intraretinal oxygen partial pressure distribution was developed using Fick’s law of diffusion, Michaelis-Menten kinetics, and oxygen delivery in the inner retina. The system of non-linear differential equations was solved numerically using Runge-kutta Nystroms method.
Result: The model predicts that a decrease in the blood flow rate reduces the partial pressure of oxygen in adapted conditions of light and darkness. It was also observed that the partial pressure of oxygen was higher in adapted light conditions than in adapted dark conditions.
Conclusion: The partial pressure of oxygen observed in different layers of the retina was reduced by a decrease in the blood flow rate in the inner retina. The pressure becomes minimum when there is no blood flow in the inner retina. This minimum pressure may fall below the critical level of oxygen partial pressure and affect the retinal function. In order to restore normal retinal function, extreme hyperoxia may assist to make the choroid capable of supplying oxygen to the whole retina during total retinal artery occlusion.

Keywords: Mathematical modeling, Intraretinal oxygen pressure, Retinal capillaries, Oxygen consumption, Retinal vascular occlusion, Oxygen metabolism.

Impact Factor
Thompson Reuters (ISI): 0.6 (2023)
H-5 index (Google Scholar): 49 (2023)

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