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Deformation and Durability of Soft 3D-printed Polycarbonate Urethane Porous Membranes for Potential Use in Pelvic Organ Prolapse.

Publication ,  Journal Article
Bachtiar, E; Knight, K; Moalli, P; Gall, K
Published in: Journal of biomechanical engineering
May 2023

Pelvic organ prolapse (POP) is the herniation of the pelvic organs into the vaginal space, resulting in the feeling of a bulge and organ dysfunction. Treatment of POP often involves repositioning of the organs using a polypropylene mesh, which has recently been found to have relatively high rates of complications. Complications have been shown to be related to stiffness mismatches between the vagina and polypropylene, and unstable knit patterns resulting in mesh deformations with mechanical loading. To overcome these limitations, we have 3D-printed a porous, monofilament membrane composed of relatively soft polycarbonate-urethane (PCU) with a stable geometry. PCU was chosen for its tunable properties as it is comprised of both hard and soft segments. The bulk mechanical properties of PCU were first characterized by testing dogbone samples, demonstrating the dependence of PCU mechanical properties on its measurement environment and the effect of print pathing. The pore dimensions and load-relative elongation response of the 3D-printed PCU membranes under monotonic tensile loading were then characterized. Finally, a fatigue study was performed on the 3D-printed membrane to evaluate durability, showing a similar fatigue resistance with a commercial synthetic mesh and hence its potential as a replacement.

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Published In

Journal of biomechanical engineering

DOI

EISSN

1528-8951

ISSN

0148-0731

Publication Date

May 2023

Start / End Page

1 / 62

Related Subject Headings

  • Biomedical Engineering
  • 4003 Biomedical engineering
  • 0913 Mechanical Engineering
  • 0903 Biomedical Engineering
 

Citation

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Bachtiar, E., Knight, K., Moalli, P., & Gall, K. (2023). Deformation and Durability of Soft 3D-printed Polycarbonate Urethane Porous Membranes for Potential Use in Pelvic Organ Prolapse. Journal of Biomechanical Engineering, 1–62. https://doi.org/10.1115/1.4062490
Bachtiar, Emilio, Katrina Knight, Pamela Moalli, and Ken Gall. “Deformation and Durability of Soft 3D-printed Polycarbonate Urethane Porous Membranes for Potential Use in Pelvic Organ Prolapse.Journal of Biomechanical Engineering, May 2023, 1–62. https://doi.org/10.1115/1.4062490.
Bachtiar E, Knight K, Moalli P, Gall K. Deformation and Durability of Soft 3D-printed Polycarbonate Urethane Porous Membranes for Potential Use in Pelvic Organ Prolapse. Journal of biomechanical engineering. 2023 May;1–62.
Bachtiar, Emilio, et al. “Deformation and Durability of Soft 3D-printed Polycarbonate Urethane Porous Membranes for Potential Use in Pelvic Organ Prolapse.Journal of Biomechanical Engineering, May 2023, pp. 1–62. Epmc, doi:10.1115/1.4062490.
Bachtiar E, Knight K, Moalli P, Gall K. Deformation and Durability of Soft 3D-printed Polycarbonate Urethane Porous Membranes for Potential Use in Pelvic Organ Prolapse. Journal of biomechanical engineering. 2023 May;1–62.

Published In

Journal of biomechanical engineering

DOI

EISSN

1528-8951

ISSN

0148-0731

Publication Date

May 2023

Start / End Page

1 / 62

Related Subject Headings

  • Biomedical Engineering
  • 4003 Biomedical engineering
  • 0913 Mechanical Engineering
  • 0903 Biomedical Engineering