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异种移植供体猪的基因修饰的生理基础。

Physiological basis for xenotransplantation from genetically modified pigs to humans.

机构信息

United Therapeutics Corporation, Silver Spring, Maryland, United States.

Imperial College London, London, United Kingdom.

出版信息

Physiol Rev. 2024 Jul 1;104(3):1409-1459. doi: 10.1152/physrev.00041.2023. Epub 2024 Mar 22.

Abstract

The collective efforts of scientists over multiple decades have led to advancements in molecular and cellular biology-based technologies including genetic engineering and animal cloning that are now being harnessed to enhance the suitability of pig organs for xenotransplantation into humans. Using organs sourced from pigs with multiple gene deletions and human transgene insertions, investigators have overcome formidable immunological and physiological barriers in pig-to-nonhuman primate (NHP) xenotransplantation and achieved prolonged pig xenograft survival. These studies informed the design of Revivicor's (Revivicor Inc, Blacksburg, VA) genetically engineered pigs with 10 genetic modifications (10 GE) (including the inactivation of 4 endogenous porcine genes and insertion of 6 human transgenes), whose hearts and kidneys have now been studied in preclinical human xenotransplantation models with brain-dead recipients. Additionally, the first two clinical cases of pig-to-human heart xenotransplantation were recently performed with hearts from this 10 GE pig at the University of Maryland. Although this review focuses on xenotransplantation of hearts and kidneys, multiple organs, tissues, and cell types from genetically engineered pigs will provide much-needed therapeutic interventions in the future.

摘要

几十年来,科学家们的共同努力推动了基于分子和细胞生物学的技术进步,包括基因工程和动物克隆,这些技术现在正被用于提高猪器官对人类异种移植的适用性。研究人员使用经过多次基因缺失和人类转基因插入的猪的器官,克服了猪到非人灵长类动物(NHP)异种移植中的免疫和生理障碍,实现了猪异种移植物的长期存活。这些研究为 Revivicor 公司(Revivicor Inc,弗吉尼亚州布莱克斯堡)设计的具有 10 种基因修饰(10GE)的基因工程猪提供了信息,这些基因修饰包括 4 种内源性猪基因的失活和 6 种人类转基因的插入,其心脏和肾脏已在脑死亡供体的临床前人类异种移植模型中进行了研究。此外,马里兰大学最近使用来自这种 10GE 猪的心脏完成了首例两例猪到人的心脏异种移植临床案例。虽然这篇综述重点关注心脏和肾脏的异种移植,但来自基因工程猪的多种器官、组织和细胞类型将在未来提供急需的治疗干预措施。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd65/11390123/5bdda4f94e93/prv-00041-2023r01.jpg

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