Impact of polypropylene prolapse mesh on vaginal smooth muscle in rhesus macaque

Rebecca M Shaffer1, Rui Liang2, Katrina Knight2

  • 1Department of Obstetrics and Gynecology, Larner College of Medicine at the University of Vermont, Burlington, VT.

Abstract

Insights

Polypropylene mesh (Gynemesh PS) for pelvic organ prolapse negatively impacts vaginal tissue. Combining it with a bioscaffold (MatriStem) attenuated these negative effects, preserving vaginal structure and function.

Area of Science:

  • Biomedical Engineering
  • Regenerative Medicine
  • Gynecologic Surgery

Background:

  • Polypropylene mesh use in pelvic organ prolapse (POP) surgery is associated with complications.
  • Gynemesh PS implantation can negatively affect vaginal tissue, causing thinning and reduced contractility.
  • Extracellular matrix bioscaffolds show potential in mitigating mesh-related complications.

Purpose of the Study:

  • To evaluate the impact of Gynemesh PS and MatriStem bioscaffolds on vaginal smooth muscle micromorphology, innervation, and contractility.
  • To assess the effects of Gynemesh PS alone, a composite of Gynemesh PS and MatriStem, and MatriStem alone.
  • To elucidate the mechanisms behind mesh-related complications in POP repair.

Main Methods:

  • Rhesus macaques underwent sacrocolpopexy with Gynemesh PS, Gynemesh PS/MatriStem composite, or MatriStem alone.
  • Vaginal tissue was analyzed for smooth muscle morphology, contractile protein levels, and nerve density.
  • Nerve-mediated smooth muscle contractility was assessed via electrical field stimulation.

Main Results:

  • Gynemesh PS alone caused disorganized muscle, decreased contractile proteins, reduced nerve density, and impaired contractility.
  • The Gynemesh PS/MatriStem composite showed results similar to sham surgery, with improved myocyte diameter and alpha-smooth muscle actin levels.
  • MatriStem alone increased small muscle bundles but did not significantly alter other parameters compared to sham.

Conclusions:

  • Gynemesh PS implantation negatively impacts vaginal smooth muscle integrity and function.
  • MatriStem bioscaffolds, especially as a composite with Gynemesh PS, can attenuate these adverse effects.
  • MatriStem alone may promote adaptive remodeling of vaginal tissue.

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