Literature DB >> 27169332

Nondestructive Methods for Monitoring Cell Removal During Rat Liver Decellularization.

Sharon Geerts1, Sinan Ozer1, Maria Jaramillo1, Martin L Yarmush1, Basak E Uygun1.   

Abstract

Whole liver engineering holds the promise to create transplantable liver grafts that may serve as substitutes for donor organs, addressing the donor shortage in liver transplantation. While decellularization and recellularization of livers in animal models have been successfully achieved, scale up to human livers has been slow. There are a number of donor human livers that are discarded because they are not found suitable for transplantation, but are available for engineering liver grafts. These livers are rejected due to a variety of reasons, which in turn may affect the decellularization outcome. Hence, a one-size-fit-for all decellularization protocol may not result in scaffolds with consistent matrix quality, subsequently influencing downstream recellularization and transplantation outcomes. There is a need for a noninvasive monitoring method to evaluate the extent of cell removal, while ensuring preservation of matrix components during decellularization. In this study, we decellularized rat livers using a protocol previously established by our group, and we monitored decellularization through traditional destructive techniques, including evaluation of DNA, collagen, and glycosaminoglycan (GAG) content in decellularized scaffolds, as well as histology. In addition, we used computed tomography and perfusate analysis as alternative nondestructive decellularization monitoring methods. We found that DNA removal correlates well with the Hounsfield unit of the liver, and perfusate analysis revealed that significant amount of GAG is removed during perfusion with 0.1% sodium dodecyl sulfate. This allowed for optimization of our decellularization protocol leading to scaffolds that have significantly higher GAG content, while maintaining appropriate removal of cellular contents. The significance of this is the creation of a nondestructive monitoring strategy that can be used for optimization of decellularization protocols for individual human livers available for liver engineering.

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Year:  2016        PMID: 27169332      PMCID: PMC4943465          DOI: 10.1089/ten.TEC.2015.0571

Source DB:  PubMed          Journal:  Tissue Eng Part C Methods        ISSN: 1937-3384            Impact factor:   3.056


  19 in total

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Review 6.  Decellularization and cell seeding of whole liver biologic scaffolds composed of extracellular matrix.

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  11 in total

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7.  Quality Comparison of Decellularized Omentum Prepared by Different Protocols for Tissue Engineering Applications.

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Review 10.  Accounting for Material Changes in Decellularized Tissue with Underutilized Methodologies.

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