O'Keeffe Ahern Jonathan, Lara-Sáez Irene, Zhou Dezhong, Murillas Rodolfo, Bonafont Jose, Mencía Ángeles, García Marta, Manzanares Darío, Lynch Jennifer, Foley Ruth, Xu Qian, Sigen A, Larcher Fernando, Wang Wenxin
Charles Institute of Dermatology, University College Dublin, Dublin, Republic of Ireland.
Epithelial Biomedicine Division, Centro de Investigaciones Energéticas Medioambientales y Tecnológicas (CIEMAT), Madrid, Spain.
Gene Ther. 2022 Apr;29(3-4):157-170. doi: 10.1038/s41434-021-00282-6. Epub 2021 Aug 6.
Recent advances in molecular biology have led to the CRISPR revolution, but the lack of an efficient and safe delivery system into cells and tissues continues to hinder clinical translation of CRISPR approaches. Polymeric vectors offer an attractive alternative to viruses as delivery vectors due to their large packaging capacity and safety profile. In this paper, we have demonstrated the potential use of a highly branched poly(β-amino ester) polymer, HPAE-EB, to enable genomic editing via CRISPRCas9-targeted genomic excision of exon 80 in the COL7A1 gene, through a dual-guide RNA sequence system. The biophysical properties of HPAE-EB were screened in a human embryonic 293 cell line (HEK293), to elucidate optimal conditions for efficient and cytocompatible delivery of a DNA construct encoding Cas9 along with two RNA guides, obtaining 15-20% target genomic excision. When translated to human recessive dystrophic epidermolysis bullosa (RDEB) keratinocytes, transfection efficiency and targeted genomic excision dropped. However, upon delivery of CRISPR-Cas9 as a ribonucleoprotein complex, targeted genomic deletion of exon 80 was increased to over 40%. Our study provides renewed perspective for the further development of polymer delivery systems for application in the gene editing field in general, and specifically for the treatment of RDEB.
分子生物学的最新进展引发了CRISPR革命,但缺乏一种高效且安全的细胞和组织递送系统,这继续阻碍着CRISPR方法的临床转化。由于其较大的包装容量和安全性,聚合物载体作为递送载体为病毒提供了一种有吸引力的替代方案。在本文中,我们展示了一种高度支化的聚(β-氨基酯)聚合物HPAE-EB的潜在用途,通过双引导RNA序列系统,能够通过CRISPR-Cas9靶向切除COL7A1基因的第80外显子来实现基因组编辑。在人胚胎293细胞系(HEK293)中筛选了HPAE-EB的生物物理特性,以阐明高效且细胞相容地递送编码Cas9的DNA构建体以及两个RNA引导物的最佳条件,获得了15%-20%的目标基因组切除率。当应用于人类隐性营养不良性大疱性表皮松解症(RDEB)角质形成细胞时,转染效率和靶向基因组切除率下降。然而,当以核糖核蛋白复合物形式递送CRISPR-Cas9时,第80外显子的靶向基因组缺失增加到了40%以上。我们的研究为聚合物递送系统在基因编辑领域的进一步发展,特别是在RDEB治疗方面的应用提供了新的视角。