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Evaluating residual strain throughout the murine female reproductive system

  • Daniel J. Capone
    ,
  • Gabrielle L. Clark
    ,
  • Derek Bivona
    ,
  • ,
  • Laurephile Desrosiers
    ,
  • Leise R. Knoepp
  • Tulane University
    ,
  • University of Virginia
    ,
  • University of Queensland
Scholary Output:
Contribution to journal
Article
Peer-review

Open access

Abstract

Mounting evidence suggests that cells within soft tissues seek to maintain a preferred biomechanical state. Residual stress is defined as the stress that remains in a tissue when all external loads are removed and contributes to tissue mechanohomeostasis by decreasing the transmural gradient of wall stress. Current computational models of pelvic floor mechanics, however, often do not consider residual stress. Residual strain, a result of residual stress can be quantitatively measured through opening angle experiments. Therefore, the objective of this study is to quantify the regional variations in opening angles along the murine female reproductive system at estrus and diestrus, to quantify residual strain in the maintenance state of sexually mature females. Further, evidence suggests that hydrophilic glycosaminoglycan/proteoglycans are integral to cervical remodeling. Thus, variations in opening angles following hypo-osmotic loading are evaluated. Opening angle experiments were performed along the murine reproductive system in estrus (n = 8) and diestrus (n = 8) and placed in hypo-osmotic solution. Measurements of thickness and volume were also obtained for each group. Differences (p < 0.05) in opening angle were observed with respect to region and loading, however, differences with respect to estrous stage were not significant. Thickness values were significant (p < 0.05) with respect to region only. The effects of both estrous cycle and region resulted in significant differences (p < 0.05) in observed volume. The observed regional differences indicate variation in the stress-free state among the reproductive system which may have implications for future computational models to advance women's reproductive health.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 299-306 (8 pages)

Journal (Volume, Issue Number)

Journal of Biomechanics (Volume 82)

Publication milestones

  • Published - 01/03/2019

Publication status

Published - 01/03/2019

ISSN

0021-9290

Publication IDs

  • Scopus: 85056723551
  • PubMed: 30458959

Publication metrics

Metrics

Scopus
citations
Fractional count
1
Fractional count
0.13
Fractional count
7
Fractional count
0.88
Fractional count
1
Fractional count
1

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Citation count
14
Captures
26

Funding Details

Tulane Newcomb College Institute (NCI) Faculty Grant (KSM).
FundersFunding number
Tulane Newcomb College Institute
-
NHLBI
R01HL133619
NCI
-