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A Novel Technique for Simultaneous Whole-Body and Multi-Organ Decellularization: Umbilical Artery Catheterization As a Perfusion-Based Method in a Sheep Foetus Model Publisher Pubmed



Kajbafzadeh AM1 ; Khorramirouz R1 ; Akbarzadeh A1 ; Sabetkish S1 ; Sabetkish N1 ; Saadat P1 ; Tehrani M1
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Authors Affiliations
  1. 1. Pediatric Urology Research Center Section of Tissue Engineering and Stem Cells Therapy, Children's Hospital Medical Center Tehran University of Medical Sciences, Tehran, Iran

Source: International Journal of Experimental Pathology Published:2015


Abstract

The aim of this study was to develop a method to generate multi-organ acellular matrices. Using a foetal sheep model have developed a method of systemic pulsatile perfusion via the umbilical artery which allows for simultaneous multi-organ decellularization. Twenty sheep foetuses were systemically perfused with Triton X-100 and sodium dodecyl sulphate. Following completion of the whole-body decellularization, multiple biopsy samples were taken from different parts of 21 organs to ascertain complete cell component removal in the preserved extracellular matrices. Both the natural and decellularized organs were subjected to several examinations. The samples were obtained from the skin, eye, ear, nose, throat, cardiovascular, respiratory, gastrointestinal, urinary, musculoskeletal, central nervous and peripheral nervous systems. The histological results depicted well-preserved extracellular matrix (ECM) integrity and intact vascular structures, without any evidence of residual cellular materials, in all decellularized bioscaffolds. Scanning electron microscope (SEM) and biochemical properties remained intact, similar to their age-matched native counterparts. Preservation of the collagen structure was evaluated by a hydroxyproline assay. Dense organs such as bone and muscle were also completely decellularized, with a preserved ECM structure. Thus, as shown in this study, several organs and different tissues were decellularized using a perfusion-based method, which has not been previously accomplished. Given the technical challenges that exist for the efficient generation of biological scaffolds, the current results may pave the way for obtaining a variety of decellularized scaffolds from a single donor. In this study, there have been unique responses to the single acellularization protocol in foetuses, which may reflect the homogeneity of tissues and organs in the developing foetal body. © 2015 International Journal of Experimental Pathology.
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