Milland Julie, Christiansen Dale, Lazarus Brooke D, Taylor Simon G, Xing Pei Xiang, Sandrin Mauro S
The Austin Research Institute, Austin Health, Heidelberg, Australia.
J Immunol. 2006 Feb 15;176(4):2448-54. doi: 10.4049/jimmunol.176.4.2448.
The production of homozygous pigs with a disruption in the GGTA1 gene, which encodes alpha1,3galactosyltransferase (alpha1,3GT), represented a critical step toward the clinical reality of xenotransplantation. Unexpectedly, the predicted complete elimination of the immunogenic Galalpha(1,3)Gal carbohydrate epitope was not observed as Galalpha(1,3)Gal staining was still present in tissues from GGTA1(-/-) animals. This shows that, contrary to previous dogma, alpha1,3GT is not the only enzyme able to synthesize Galalpha(1,3)Gal. As iGb3 synthase (iGb3S) is a candidate glycosyltransferase, we cloned iGb3S cDNA from GGTA1(-/-) mouse thymus and confirmed mRNA expression in both mouse and pig tissues. The mouse iGb3S gene exhibits alternative splicing of exons that results in a markedly different cytoplasmic tail compared with the rat gene. Transfection of iGb3S cDNA resulted in high levels of cell surface Galalpha(1,3)Gal synthesized via the isoglobo series pathway, thus demonstrating that mouse iGb3S is an additional enzyme capable of synthesizing the xenoreactive Galalpha(1,3)Gal epitope. Galalpha(1,3)Gal synthesized by iGb3S, in contrast to alpha1,3GT, was resistant to down-regulation by competition with alpha1,2fucosyltransferase. Moreover, Galalpha(1,3)Gal synthesized by iGb3S was immunogenic and elicited Abs in GGTA1 (-/-) mice. Galalpha(1,3)Gal synthesized by iGb3S may affect survival of pig transplants in humans, and deletion of this gene, or modification of its product, warrants consideration.
编码α1,3-半乳糖基转移酶(α1,3GT)的GGTA1基因发生破坏的纯合猪的产生,是异种移植临床应用的关键一步。出乎意料的是,并未观察到如预期的免疫原性Galα(1,3)Gal碳水化合物表位完全消除,因为在GGTA1(-/-)动物的组织中仍存在Galα(1,3)Gal染色。这表明,与先前的观点相反,α1,3GT不是唯一能够合成Galα(1,3)Gal的酶。由于异球蛋白三糖合酶(iGb3S)是一种候选糖基转移酶,我们从GGTA1(-/-)小鼠胸腺中克隆了iGb3S cDNA,并证实其在小鼠和猪组织中均有mRNA表达。小鼠iGb3S基因表现出外显子的可变剪接,导致其胞质尾与大鼠基因明显不同。转染iGb3S cDNA导致通过异球蛋白系列途径合成高水平的细胞表面Galα(1,3)Gal,从而证明小鼠iGb3S是另一种能够合成异种反应性Galα(1,3)Gal表位的酶。与α1,3GT相反,iGb3S合成的Galα(1,3)Gal对与α1,2-岩藻糖基转移酶竞争导致的下调具有抗性。此外,iGb3S合成的Galα(1,3)Gal具有免疫原性,并在GGTA1 (-/-)小鼠中引发抗体。iGb3S合成的Galα(1,3)Gal可能影响猪移植器官在人体中的存活,因此考虑删除该基因或修饰其产物是有必要的。