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Sökning: id:"swepub:oai:lup.lub.lu.se:66a30f84-8b84-4d2e-a794-48ebac0bd39d" > Developing an exper...

Developing an experimental-computational workflow to study the biomechanics of the human conventional aqueous outflow pathway

Karimi, Alireza (författare)
Oregon Health & Science University
Khan, Shanjida (författare)
Oregon Health & Science University
Razaghi, Reza (författare)
University of Alabama
visa fler...
Rahmati, Seyed Mohammadali (författare)
Georgia Institute of Technology
Gathara, Michael (författare)
University of Alabama
Tudisco, Erika (författare)
Lund University,Lunds universitet,Byggnadsmekanik,Institutionen för byggvetenskaper,Institutioner vid LTH,Lunds Tekniska Högskola,Geoteknik,LTH profilområde: Cirkulär byggindustri,LTH profilområden,Structural Mechanics,Department of Construction Sciences,Departments at LTH,Faculty of Engineering, LTH,Geotechnical Engineering,Faculty of Engineering, LTH,LTH Profile Area: Circular Building Sector,LTH Profile areas,Faculty of Engineering, LTH
Aga, Mini (författare)
Oregon Health & Science University
Kelley, Mary J. (författare)
Oregon Health & Science University
Jian, Yifan (författare)
Oregon Health & Science University
Acott, Ted S. (författare)
Oregon Health & Science University
visa färre...
 (creator_code:org_t)
2023
2023
Engelska.
Ingår i: Acta Biomaterialia. - 1742-7061. ; 164, s. 346-362
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • The aqueous humor actively interacts with the trabecular meshwork (TM), juxtacanalicular tissue (JCT), and Schlemm's canal (SC) through a dynamic fluid-structure interaction (FSI) coupling. Despite the fact that intraocular pressure (IOP) undergoes significant fluctuations, our understanding of the hyperviscoelastic biomechanical properties of the aqueous outflow tissues is limited. In this study, a quadrant of the anterior segment from a normal human donor eye was dynamically pressurized in the SC lumen, and imaged using a customized optical coherence tomography (OCT). The TM/JCT/SC complex finite element (FE) with embedded collagen fibrils was reconstructed based on the segmented boundary nodes in the OCT images. The hyperviscoelastic mechanical properties of the outflow tissues’ extracellular matrix with embedded viscoelastic collagen fibrils were calculated using an inverse FE-optimization method. Thereafter, the 3D microstructural FE model of the TM, with adjacent JCT and SC inner wall, from the same donor eye was constructed using optical coherence microscopy and subjected to a flow load-boundary from the SC lumen. The resultant deformation/strain in the outflow tissues was calculated using the FSI method, and compared to the digital volume correlation (DVC) data. TM showed larger shear modulus (0.92 MPa) compared to the JCT (0.47 MPa) and SC inner wall (0.85 MPa). Shear modulus (viscoelastic) was larger in the SC inner wall (97.65 MPa) compared to the TM (84.38 MPa) and JCT (56.30 MPa). The conventional aqueous outflow pathway is subjected to a rate-dependent IOP load-boundary with large fluctuations. This necessitates addressing the biomechanics of the outflow tissues using hyperviscoelastic material-model. Statement of significance: While the human conventional aqueous outflow pathway is subjected to a large-deformation and time-dependent IOP load-boundary, we are not aware of any studies that have calculated the hyperviscoelastic mechanical properties of the outflow tissues with embedded viscoelastic collagen fibrils. A quadrant of the anterior segment of a normal humor donor eye was dynamically pressurized from the SC lumen with relatively large fluctuations. The TM/JCT/SC complex were OCT imaged and the mechanical properties of the tissues with embedded collagen fibrils were calculated using the inverse FE-optimization algorithm. The resultant displacement/strain in the FSI outflow model was validated versus the DVC data. The proposed experimental-computational workflow may significantly contribute to understanding of the effects of different drugs on the biomechanics of the conventional aqueous outflow pathway.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Medicinteknik -- Annan medicinteknik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Medical Engineering -- Other Medical Engineering (hsv//eng)

Nyckelord

Finite element method
Hyperviscoelastic
Juxtacanalicular tissue
Optimization algorithm
Schlemm's canal
Trabecular meshwork

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