Department of Pathology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania.
Department of Surgery and Science, Graduate School of Medical Sciences, Kyushu University, Fukuoka, Japan.
Semin Liver Dis. 2022 Nov;42(4):413-422. doi: 10.1055/a-1934-5404. Epub 2022 Aug 31.
Although the underlying cause may vary across countries and demographic groups, liver disease is a major cause of morbidity and mortality globally. Orthotopic liver transplantation is the only definitive treatment for liver failure but is limited by the lack of donor livers. The development of drugs that prevent the progression of liver disease and the generation of alternative liver constructs for transplantation could help alleviate the burden of liver disease. Bioengineered livers containing human induced pluripotent stem cell (iPSC)-derived liver cells are being utilized to study liver disease and to identify and test potential therapeutics. Moreover, bioengineered livers containing pig hepatocytes and endothelial cells have been shown to function and survive after transplantation into pig models of liver failure, providing preclinical evidence toward future clinical applications. Finally, bioengineered livers containing human iPSC-derived liver cells have been shown to function and survive after transplantation in rodents but require considerable optimization and testing prior to clinical use. In conclusion, bioengineered livers have emerged as a suitable tool for modeling liver diseases and as a promising alternative graft for clinical transplantation. The integration of novel technologies and techniques for the assembly and analysis of bioengineered livers will undoubtedly expand future applications in basic research and clinical transplantation.
尽管各国和各人群的潜在病因可能不同,但肝脏疾病仍是导致全球发病率和死亡率的主要原因之一。原位肝移植是治疗肝衰竭的唯一有效方法,但受到供体肝脏缺乏的限制。开发可预防肝病进展和生成替代肝移植构建体的药物可能有助于减轻肝病负担。含有人诱导多能干细胞(iPSC)衍生肝细胞的生物工程肝脏正被用于研究肝脏疾病以及鉴定和测试潜在的治疗方法。此外,已经证明含有猪肝细胞和内皮细胞的生物工程肝脏在移植到肝衰竭的猪模型后能够发挥功能并存活,为未来的临床应用提供了临床前证据。最后,含有人 iPSC 衍生肝细胞的生物工程肝脏在啮齿动物体内移植后能够发挥功能并存活,但在临床应用之前需要进行大量的优化和测试。总之,生物工程肝脏已成为模拟肝脏疾病的一种合适工具,并且作为一种有前途的临床移植替代物。新型技术和技术的整合,用于生物工程肝脏的组装和分析,无疑将扩展其在基础研究和临床移植中的未来应用。