| Literature DB >> 30598836 |
Seong Gyu Kwon1, Yang Woo Kwon1, Tae Wook Lee1, Gyu Tae Park1, Jae Ho Kim1,2.
Abstract
BACKGROUND: Tissue regeneration includes delivering specific types of cells or cell products to injured tissues or organs for restoration of tissue and organ function. Stem cell therapy has drawn considerable attention since transplantation of stem cells can overcome the limitations of autologous transplantation of patient's tissues; however, it is not perfect for treating diseases. To overcome the hurdles associated with stem cell therapy, tissue engineering techniques have been developed. Development of stem cell technology in combination with tissue engineering has opened new ways of producing engineered tissue substitutes. Several studies have shown that this combination of tissue engineering and stem cell technologies enhances cell viability, differentiation, and therapeutic efficacy of transplanted stem cells. MAIN BODY: Stem cells that can be used for tissue regeneration include mesenchymal stem cells, embryonic stem cells, and induced pluripotent stem cells. Transplantation of stem cells alone into injured tissues exhibited low therapeutic efficacy due to poor viability and diminished regenerative activity of transplanted cells. In this review, we will discuss the progress of biomedical engineering, including scaffolds, biomaterials, and tissue engineering techniques to overcome the low therapeutic efficacy of stem cells and to treat human diseases.Entities:
Keywords: Biomaterials; Nanoparticle; Stem cells; Tissue engineering; Tissue injury
Year: 2018 PMID: 30598836 PMCID: PMC6299977 DOI: 10.1186/s40824-018-0148-4
Source DB: PubMed Journal: Biomater Res ISSN: 1226-4601
Fig. 1Stem cell differentiation in response to specific ligands or growth factors
Fig. 2Stem cell engineering strategy
Fig. 33D bioprinting of stem cells