Mechanical induction of bi-directional orientation of primary porcine bladder smooth muscle cells in tubular fibrin-poly(vinylidene fluoride) scaffolds for ureteral and urethral repair using cyclic and focal balloon catheter stimulation

Author:

Seifarth Volker12,Grosse Joachim O2,Gossmann Matthias1,Janke Heinz Peter3,Arndt Patrick2,Koch Sabine4,Epple Matthias5,Artmann Gerhard M6,Artmann Aysegül Temiz7

Affiliation:

1. Institute for Bioengineering (IfB), Laboratory of Medical and Molecular Biology, FH Aachen, Aachen, Germany

2. Department of Urology, RWTH Aachen University Hospital, Aachen, Germany

3. Department of Urology, Radboud Institute for Molecular Life Science, Radboud University Medical Center, Nijmegen, The Netherlands

4. AME-Helmholtz Institute for Biomedical Engineering, Biohybrid & Medical Textiles (BioTex), RWTH Aachen University, Aachen, Germany

5. Department for Inorganic Chemistry and Center for Nanointegration Duisburg-Essen (CeNIDE), University of Duisburg-Essen, Essen, Germany

6. Institute for Bioengineering (IfB), Laboratories of Cell Biophysics, FH Aachen, Campus Jülich, Jülich, Germany

7. Institute for Bioengineering (IfB), Laboratories of Medical and Molecular Biology, FH Aachen, Campus Jülich, Jülich, Germany

Abstract

To restore damaged organ function or to investigate organ mechanisms, it is necessary to prepare replicates that follow the biological role model as faithfully as possible. The interdisciplinary field of tissue engineering has great potential in regenerative medicine and might overcome negative side effects in the replacement of damaged organs. In particular, tubular organ structures of the genitourinary tract, such as the ureter and urethra, are challenging because of their complexity and special milieu that gives rise to incrustation, inflammation and stricture formation. Tubular biohybrids were prepared from primary porcine smooth muscle cells embedded in a fibrin gel with a stabilising poly(vinylidene fluoride) mesh. A mechanotransduction was performed automatically with a balloon kyphoplasty catheter. Diffusion of urea and creatinine, as well as the bursting pressure, were measured. Light and electron microscopy were used to visualise cellular distribution and orientation. Histological evaluation revealed a uniform cellular distribution in the fibrin gel. Mechanical stimulation with a stretch of 20% leads to a circumferential orientation of smooth muscle cells inside the matrix and a longitudinal alignment on the outer surface of the tubular structure. Urea and creatinine permeability and bursting pressure showed a non-statistically significant trend towards stimulated tissue constructs. In this proof of concept study, an innovative technique of intraluminal pressure for mechanical stimulation of tubular biohybrids prepared from autologous cells and a composite material induce bi-directional orientation of smooth muscle cells by locally and cyclically applied mechanical tension. Such geometrically driven patterns of cell growth within a scaffold may represent a key stage in the future tissue engineering of implantable ureter replacements that will allow the active transportation of urine from the renal pelvis into the bladder.

Publisher

SAGE Publications

Subject

Biomedical Engineering,Biomaterials

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