Center of Regenerative Medicine of Barcelona, Doctor Aiguader 88, Barcelona, Spain.
J Cardiovasc Transl Res. 2011 Apr;4(2):121-30. doi: 10.1007/s12265-010-9233-3. Epub 2010 Nov 19.
Reprogramming of pig somatic cells to induced pluripotent stem cells provides a tremendous advance in the field of regenerative medicine since the pig represents an ideal large animal model for the preclinical testing of emerging cell therapies. However, the current generation of pig-induced pluripotent stem cells (piPSCs) require the use of time-consuming and laborious retroviral or lentiviral transduction approaches, in order to ectopically express the pluripotency-associated transcription factors Oct4, Sox2, Klf4 and c-Myc, in the presence of feeder cells. Here, we describe a simple method to produce piPSC with a single transfection of a CAG-driven polycistronic plasmid expressing Oct4, Sox2, Klf4, c-Myc and a green fluorescent protein (GFP) reporter gene, in gelatine-coated plates, with or without feeder cells. In our system, the derivation of piPSCs from adult pig ear fibroblasts on a gelatine coating showed a higher efficiency and rate of reprogramming when compared with three consecutive retroviral transductions of a similar polycistronic construct. Our piPSCs expressed the classical embryonic stem cell markers, exhibit a stable karyotype and formed teratomas. Moreover, we also developed a simple method to generate in vitro spontaneous beating cardiomiocyte-like cells from piPSCs. Overall, our preliminary results set the bases for the massive production of xeno-free and integration-free piPSCs and provide a powerful tool for the preclinical application of iPSC technology in a large animal setting.
猪体细胞重编程为诱导多能干细胞(iPSCs)在再生医学领域取得了巨大进展,因为猪是临床前测试新兴细胞疗法的理想大型动物模型。然而,目前的猪诱导多能干细胞(piPSCs)需要使用耗时费力的逆转录病毒或慢病毒转导方法,在饲养细胞存在的情况下异位表达多能性相关转录因子 Oct4、Sox2、Klf4 和 c-Myc。在这里,我们描述了一种简单的方法,即在明胶包被的平板上用 CAG 驱动的多顺反子质粒进行单次转染,该质粒表达 Oct4、Sox2、Klf4、c-Myc 和绿色荧光蛋白(GFP)报告基因,产生 piPSC,有或没有饲养细胞。在我们的系统中,与类似的多顺反子构建体的连续三次逆转录病毒转导相比,来自成年猪耳成纤维细胞的 piPSC 的衍生显示出更高的效率和重编程率。我们的 piPSC 表达了经典的胚胎干细胞标志物,具有稳定的核型,并形成畸胎瘤。此外,我们还开发了一种从 piPSC 体外生成自发搏动心肌细胞样细胞的简单方法。总体而言,我们的初步结果为大量生产无动物源性和无整合的 piPSC 奠定了基础,并为 iPSC 技术在大动物临床前应用提供了有力工具。