Kwon Seong Gyu, Kwon Yang Woo, Lee Tae Wook, Park Gyu Tae, Kim Jae Ho
1Department of Physiology, Pusan National University School of Medicine, Yangsan, 50612 Gyeongsangnam-do Republic of Korea.
2Research Institute of Convergence Biomedical Science and Technology, Pusan National University Yangsan Hospital, Yangsan, 50612 Republic of Korea.
Biomater Res. 2018 Dec 19;22:36. doi: 10.1186/s40824-018-0148-4. eCollection 2018.
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.
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.
The combination of stem cell and tissue engineering techniques overcomes the limitations of stem cells in therapy of human diseases, and presents a new path toward regeneration of injured tissues.
组织再生包括将特定类型的细胞或细胞产物输送到受损组织或器官,以恢复组织和器官功能。自干细胞移植能够克服患者自体组织移植的局限性以来,干细胞疗法备受关注;然而,它在治疗疾病方面并不完美。为克服与干细胞疗法相关的障碍,人们开发了组织工程技术。干细胞技术与组织工程相结合的发展开辟了生产工程化组织替代物的新途径。多项研究表明,组织工程与干细胞技术的这种结合可提高移植干细胞的细胞活力、分化能力及治疗效果。
可用于组织再生的干细胞包括间充质干细胞、胚胎干细胞和诱导多能干细胞。单独将干细胞移植到受损组织中,由于移植细胞的活力差和再生活性降低,治疗效果较低。在本综述中,我们将讨论生物医学工程的进展,包括支架、生物材料和组织工程技术,以克服干细胞治疗效果低的问题并治疗人类疾病。
干细胞与组织工程技术的结合克服了干细胞在人类疾病治疗中的局限性,并为受损组织的再生提供了一条新途径。