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Nanoparticles Deliver Triplex-forming PNAs for Site-specific Genomic Recombination in CD34+ Human Hematopoietic Progenitors

机译:纳米颗粒为CD34 +人类造血祖细胞中的特定位点基因重组提供三链体形成PNA。

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摘要

Triplex-forming peptide nucleic acids (PNAs) are powerful gene therapy agents that can enhance recombination of short donor DNAs with genomic DNA, leading to targeted and specific correction of disease-causing genetic mutations. Therapeutic use of PNAs is severely limited, however, by challenges in intracellular delivery, particularly in clinically relevant targets such as hematopoietic stem and progenitor cells. Here, we demonstrate efficient and nontoxic PNA-mediated recombination in human CD34+ cells using poly(lactic-co-glycolic acid) (PLGA) nanoparticles for intracellular oligonucleotide delivery. Treatment of progenitor cells with nanoparticles loaded with PNAs and DNAs targeting the β-globin locus led to levels of site-specific modification in the range of 0.5–1% in a single treatment, without detectable loss in cell viability, resulting in a 60-fold increase in modified and viable cells as compared to nucleofection. As well, the differentiation capacity of the progenitor cells treated with nanoparticles did not change relative to untreated progenitor cells, indicating that nanoparticles are safe and minimally disruptive delivery vectors for PNAs and DNAs to mediate gene modification in human primary cells. This is the first demonstration of the use of biodegradable nanoparticles to deliver genome-editing agents to human primary cells, and provides a strong rationale for systemic delivery of complex nucleic acid mixtures designed for gene correction.
机译:形成三链体的肽核酸(PNA)是功能强大的基因治疗剂,可以增强短供体DNA与基因组DNA的重组,从而有针对性地和特异性地纠正引起疾病的基因突变。然而,由于细胞内递送的挑战,特别是在临床相关靶标如造血干细胞和祖细胞中,PNA的治疗用途受到严格限制。在这里,我们展示了使用聚乳酸-乙醇酸(PLGA)纳米粒子进行细胞内寡核苷酸递送的人类CD34 +细胞中有效且无毒的PNA介导的重组。用载有PNA和靶向β-珠蛋白基因座的DNA的纳米颗粒处理祖细胞可导致单次处理中位点特异性修饰的水平在0.5-1%的范围内,而细胞活力却没有可检测到的损失,从而导致60-与核转染相比,修饰细胞和存活细胞增加了三倍。同样,相对于未处理的祖细胞,用纳米颗粒处理的祖细胞的分化能力没有改变,这表明纳米颗粒是安全的且对PNA和DNA具有最小破坏性的传递载体,可介导人类原代细胞的基因修饰。这是使用可生物降解的纳米颗粒向人类原代细胞递送基因组编辑剂的首次证明,并为系统性递送设计用于基因校正的复杂核酸混合物提供了强有力的理由。

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