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Published on: July 19, 2024
Tear-film breakup: The role of membrane-associated mucin polymers
Anjishnu Choudhury1, Mohar Dey2, Harish N Dixit3
1Department of Mechanical and Aerospace Engineering, Indian Institute of Technology Hyderabad, Telangana 502285, India and Department of Mathematics, University of British Columbia, Vancouver, British Columbia V6T 1Z2, Canada.
Abstract:
Mucin polymers in the tear film protect the corneal surface from pathogens and modulate the tear-film flow characteristics. Recent studies have suggested a relationship between the loss of membrane-associated mucins and premature rupture of the tear film in various eye diseases. This work aims to elucidate the hydrodynamic mechanisms by which loss of membrane-associated mucins causes premature tear-film rupture. We model the bulk of the tear film as a Newtonian fluid in a two-dimensional periodic domain, and the lipid layer at the air-tear interface as insoluble surfactants. Gradual loss of membrane-associated mucins produces growing areas of exposed cornea in direct contact with the tear fluid. We represent the hydrodynamic consequences of this morphological change through two mechanisms: an increased van der Waals attraction due to loss of wettability on the exposed area, and a change of boundary condition from an effective negative slip on the mucin-covered areas to the no-slip condition on exposed cornea. Finite-element computations, with an arbitrary Lagrangian-Eulerian scheme to handle the moving interface, demonstrate a strong effect of the elevated van der Waals attraction on precipitating tear-film breakup. The change in boundary condition on the cornea has a relatively minor role. Using realistic parameters, our heterogeneous mucin model is able to predict quantitatively the shortening of tear-film breakup time observed in diseased eyes.
Insights
Loss of membrane-associated mucins in the tear film leads to premature tear film rupture. Increased van der Waals attraction, not boundary condition changes, is the primary hydrodynamic cause.
Area of Science:
- Ophthalmology
- Biophysics
- Fluid Dynamics
Background:
- Mucin polymers in the tear film are crucial for corneal protection and tear film stability.
- Loss of membrane-associated mucins correlates with premature tear film rupture in various eye diseases.
Purpose of the Study:
- To elucidate the hydrodynamic mechanisms driving premature tear film rupture due to mucin loss.
- To model the impact of exposed cornea on tear film stability.
Main Methods:
- Modeling the tear film as a Newtonian fluid with a surfactant lipid layer.
- Simulating mucin loss by introducing areas of exposed cornea with altered wettability and boundary conditions.
- Employing finite-element computations with an arbitrary Lagrangian-Eulerian scheme for interface tracking.
Main Results:
- Elevated van der Waals attraction on exposed corneal areas significantly accelerates tear film breakup.
- Changes in boundary conditions on the cornea play a minor role in tear film rupture.
- The heterogeneous mucin model quantitatively predicts reduced tear film breakup time in diseased eyes.
Conclusions:
- Increased van der Waals attraction is the dominant hydrodynamic factor causing premature tear film rupture following mucin loss.
- The developed model accurately predicts tear film instability observed in ocular surface diseases.
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