Tehran University of Medical Sciences

Science Communicator Platform

Stay connected! Follow us on X network (Twitter):
Share this content! On (X network) By
Decellularized Pancreas Matrix Scaffolds for Tissue Engineering Using Ductal or Arterial Catheterization Publisher Pubmed



Hashemi J1 ; Pasalar P1 ; Soleimani M2 ; Arefian E3 ; Khorramirouz R4 ; Akbarzadeh A4 ; Ghorbani F5 ; Enderami SE6 ; Kajbafzadeh AM4
Authors
Show Affiliations
Authors Affiliations
  1. 1. Department of Clinical Biochemistry, School of Medicine, Tehran University of Medical Sciences, Tehran, Iran
  2. 2. Department of Hematology, Faculty of Medical Sciences, Tarbiat Modares University, Tehran, Iran
  3. 3. Department of Microbiology, School of Biology, College of Science, University of Tehran, Tehran, Iran
  4. 4. Pediatric Urology and Regenerative Medicine Research Center, Section of Tissue Engineering and Stem Cell Therapy, Pediatrics Center of Excellence, Children's Medical Center, Tehran University of Medical Sciences, Tehran, Iran
  5. 5. Tracheal Diseases Research Center (TDRC), National Research Institute of Tuberculosis and Lung Diseases (NRITLD), Shahid Beheshti University of Medical Sciences, Tehran, Iran
  6. 6. Department of Medical Biotechnology and Nanotechnology, School of Medicine, Zanjan University of Medical Sciences, Zanjan, Iran

Source: Cells Tissues Organs Published:2018


Abstract

Introduction: Diabetes is known as a worldwide disease with a great burden on society. Since therapeutic options cover a limited number of target points, new therapeutic strategies in the field of regenerative medicine are considered. Bioscaffolds along with islet cells would provide bioengineered tissue as a substitute for β-cells. The perfusion-decellularization technique is considered to create such scaffolds since they mimic the compositional, architectural, and biomechanical nature of a native organ. In this study, we investigated 2 decellularization methods preserving tissue microarchitecture. Methods: Procured pancreas from Sprague-Dawley rats was exposed to different percentages of detergent for 2, 4, and 6 h after cannulation via the common bile duct or aorta. Results: High concentrations of sodium dodecyl sulfate (SDS), i.e., > 0.05%, resulted in tissue disruption or incomplete cell removal depending on the duration of exposure. In both methods, 6-h exposure to 0.05% SDS created a bioscaffold with intact extracellular matrices and proper biomechanical characteristics. Tissue-specific stainings revealed that elastic, reticular, and collagen fiber concentrations were well preserved. Quantitative findings showed that glycosaminoglycan content was slightly different, but hydroxyproline was in the range of native pancreas tissue. Dye infusion through ductal and vascular cannulation proved that the vascular network was intact, and scanning electron microscopy indicated a homogeneous porous structure. Conclusions: Using the detergent-based method, an effective and time-efficient procedure, a whole pancreas extracellular matrix bioscaffold can be developed that can be used as a 3D structure for pancreas tissue engineering-based studies and regenerative medicine applications. © 2018 S. Karger AG, Basel.
Other Related Docs
18. Decellularizing Bone Tissue: Various Protocols, Regenerative Engineering and Translational Medicine (2024)
20. Introduction on Stem Cell Therapy and Regeneration, Comprehensive Hematology and Stem Cell Research: Volume 1-5 (2024)
21. Organoids, Stem Cells in Urology (2020)
23. Albumin-Based Biomaterial for Lung Tissue Engineering Applications, International Journal of Polymeric Materials and Polymeric Biomaterials (2016)
25. Regenerative Medicine in Urology, Stem Cells in Urology (2020)
28. Tissue Engineering: Still Facing a Long Way Ahead, Journal of Controlled Release (2018)
30. Lung Regeneration Using Amniotic Fluid Mesenchymal Stem Cells, Artificial Cells# Nanomedicine and Biotechnology (2018)