Resumen
The vagina is a fibromuscular tube-shaped organ that plays critical roles in menstruation, pregnancy, and female sexual health. Vaginal tissue constituents, including cells and extracellular matrix components, contribute to tissue structure, function, and prevention of injury and pathology. However, much microstructural function remains unknown, including how the fiber-cell and cell–cell interactions influence macromechanical properties. A deeper understanding of these interactions will provide critical information needed to reduce and prevent vaginal pathologies. Our objective for this work is to design a novel tissue-mimicking biomaterial for vaginal tissue engineering, and characterize its biological and mechanical performance in the vaginal microenvironment. We successfully created fiber-reinforced hydrogels of gelatin-elastin electrospun fibers infiltrated with gelatin methacryloyl hydrogels. Further, we extensively characterized its relevant mechanical behavior, including tensile and tear properties. We also demonstrate initial biocompatibility and stability of the composites using primary vaginal epithelial cells in acidic vaginal conditions. This work significantly advances progress in vaginal tissue engineering by developing a physiologically relevant novel material with tunable properties, equipped to investigate biomechanical and cellular mechanisms underlying vaginal function, pathology, and therapeutic intervention.
| Idioma original | English |
|---|---|
| Número de artículo | e70061 |
| Publicación | Journal of Biomedical Materials Research - Part A |
| Volumen | 114 |
| N.º | 3 |
| DOI | |
| Estado | Published - mar 2026 |
Nota bibliográfica
Publisher Copyright:© 2026 The Author(s). Journal of Biomedical Materials Research Part A published by Wiley Periodicals LLC.
Financiación
This work was supported by National Institutes of Health (T32DK120497, KL2TR001996). The authors thank Dr. Huafang Li for assisting with ESEM training in the IMSE Core Facility at Washington University in St. Louis. The authors thank Dr. Adrienne K. Scott for reading this manuscript. Gregory Strout performed critical point drying through the use of the Washington University Center for Cellular Imaging (WUCCI) supported by the Washington University School of Medicine, The Children's Discovery Institute of Washington University, and St. Louis Children's Hospital (CDI-CORE-2015-505 and CDI-CORE-2019-813) and the Foundation for Barnes-Jewish Hospital (3770 and 4642). This publication was supported by the National Institutes of Health T32 Clinical Outcomes Research Training Program in Female Lower Urinary Tract Disorders [NIH T32DK120497] (S.G.Z.) and the National Center for Research Resources and the National Center for Advancing Translational Sciences, National Institutes of Health, through Grant KL2TR001996. The content is solely the responsibility of the authors and does not necessarily represent the official views of the NIH. Figures were created with http://biorender.com.
| Financiadores | Número del financiador |
|---|---|
| National Center for Research Resources | |
| Children's Discovery Institute | |
| National Center for Advancing Translational Sciences (NCATS) | |
| St. Louis Children's Hospital | CDI-CORE-2019-813, CDI-CORE-2015-505 |
| National Institutes of Health (NIH) | KL2TR001996, T32DK120497 |
| Foundation for Barnes-Jewish Hospital | 3770, 4642 |
ASJC Scopus subject areas
- Ceramics and Composites
- Biomaterials
- Biomedical Engineering
- Metals and Alloys
Huella
Profundice en los temas de investigación de 'Fiber-Reinforced Composites for Vaginal Tissue Engineering Applications'. En conjunto forman una huella única.Citar esto
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