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https://doi.org/10.1371/journal.pone.0194141
Title: | Numerical stress analysis of the iris tissue induced by pupil expansion: Comparison of commercial devices | Authors: | Tan R.K.Y. Wang X. Perera S.A. Girard M.J.A. |
Keywords: | article human human tissue intermethod comparison iris simulation sphincter stress stroma biological model comparative study finite element analysis mechanical stress mydriasis pathophysiology pupil Finite Element Analysis Humans Models, Biological Mydriasis Pupil Stress, Mechanical |
Issue Date: | 2018 | Publisher: | Public Library of Science | Citation: | Tan R.K.Y., Wang X., Perera S.A., Girard M.J.A. (2018). Numerical stress analysis of the iris tissue induced by pupil expansion: Comparison of commercial devices. PLoS ONE 13 (3) : e0194141. ScholarBank@NUS Repository. https://doi.org/10.1371/journal.pone.0194141 | Abstract: | Purpose: (1) To use finite element (FE) modelling to estimate local iris stresses (i.e. internal forces) as a result of mechanical pupil expansion; and to (2) compare such stresses as generated from several commercially available expanders (Iris hooks, APX dilator and Malyugin ring) to determine which design and deployment method are most likely to cause iris damage. Methods: We used a biofidelic 3-part iris FE model that consisted of the stroma, sphincter and dilator muscles. Our FE model simulated expansion of the pupil from 3 mm to a maximum of 6 mm using the aforementioned pupil expanders, with uniform circular expansion used for baseline comparison. FE-derived stresses, resultant forces and area of final pupil opening were compared across devices for analysis. Results: Our FE models demonstrated that the APX dilator generated the highest stresses on the sphincter muscles, (max: 6.446 MPa; average: 5.112 MPa), followed by the iris hooks (max: 5.680 MPa; average: 5.219 MPa), and the Malyugin ring (max: 2.144 MPa; average: 1.575 MPa). Uniform expansion generated the lowest stresses (max: 0.435MPa; average: 0.377 MPa). For pupil expansion, the APX dilator required the highest force (41.22 mN), followed by iris hooks (40.82 mN) and the Malyugin ring (18.56 mN). Conclusion: Our study predicted that current pupil expanders exert significantly higher amount of stresses and forces than required during pupil expansion. Our work may serve as a guide for the development and design of next-generation pupil expanders. © 2018 Tan et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. | Source Title: | PLoS ONE | URI: | https://scholarbank.nus.edu.sg/handle/10635/165908 | ISSN: | 19326203 | DOI: | 10.1371/journal.pone.0194141 |
Appears in Collections: | Elements Staff Publications |
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