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Biomimetic Mineralization-Based CRISPR/Cas9 Ribonucleoprotein Nanoparticles for Gene Editing

机译:基于仿生矿化的CRISPR / CAS9核糖核蛋白纳米粒子用于基因编辑

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摘要

Delivery of the CRISPR/Cas9 ribonucleoprotein (RNP) complex has provided an alternative strategy for the regulation of CRISPR functions, offering a transient and DNA-free means for genomic editing. Chemical methods of delivering the RNPs via nanocomplexes have the potential to address these delivery problems for efficiency, safety, and packaging capacity. Here, we developed a biomimetic mineralization-mediated strategy for efficient DNA-free genome editing by using CRISPR/Cas9 RNPs. We found that the RNPs have the ability to form the biomimetic mineralized RNP nanoparticles (Bm-RNP NPs) quickly in situ and can be effectively delivered into the fungal protoplast cells. Biomimetic mineralization can maintain the natural function of Cas9 protein and protect the sgRNA activity. At the same time, the encapsulated RNPs can be effectively released into the cytoplasm, and the Sytalone dehydratase (SDH) gene can be edited in a targeted manner. Except for phenotypic defects, molecular detections indicated that the delivery of Bm-RNP NPs achieved 20% genomic editing for Magnaporthe oryzae compared to RNPs alone. Moreover, the Bm-RNP NP-mediated editing of the SDH gene significantly affects the appressorium-mediated penetration and invasive growth in M. oryzae. Our system has the advantages of being cheap, fast, and effective, without the traditional transformation process, suggesting the potential application of this DNA-free gene-editing strategy in different organisms.
机译:饮用CRISPR / CAS9核糖核酸蛋白(RNP)复合物提供了用于调节CRISPR功能的替代策略,为基因组编辑提供瞬态和无DNA的手段。通过纳米复合物输送RNP的化学方法具有解决这些输送问题的效率,安全和包装能力。在这里,我们开发了一种通过使用CRISPR / CAS9 RNPS的有效DNA基因组编辑的仿生矿化介导的策略。我们发现RNP能够快速地形成仿生矿化的RNP纳米颗粒(BM-RNP NPS),可以有效地递送到真菌原生质体细胞中。仿生矿化可以维持Cas9蛋白的自然功能并保护SGRNA活性。同时,可以有效地释放到细胞质中的包封的RNP,并且可以以靶向方式编辑sytalone脱水酶(SDH)基因。除了表型缺陷外,分子检测表明,与单独的RNP相比,BM-RNP NPS的递送达到Magnaporthe Oryzae的20%基因组编辑。此外,SDH基因的BM-RNP NP介导的编辑显着影响M. Oryzae中的孕术介导的渗透和侵袭性生长。无需传统的转化过程,我们的系统具有便宜,快速,有效,表明在不同生物中潜在地应用该DNA的基因编辑策略。

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