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Efficient Intracellular Delivery of Crispr-Cas9 Ribonucleoproteins Using Dendrimer Nanoparticles for Robust Genomic Editing

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CRISPR-Cas9, a flexible and efficient genome editing technology, is currently limited by the challenge of delivering the large ribonucleoprotein complex intracellularly and into the nucleus. Existing delivery techniques/vectors are limited by their toxicity, immunogenicity, and lack of specific cell-targeting ability. This study presents a dendrimer construct that shows promise in overcoming these limitations. We covalently conjugated S. pyogenes Cas9-2NLS (Cas9-nuclear localization sequence) endonuclease to a hydroxyl PAMAM dendrimer through a glutathione-sensitive disulfide linker via highly specific inverse Diels-alder click reaction (IEDDA), and a single guide RNA (sgRNA) was complexed to the Cas9-dendrimer conjugate nano-construct (D-Cas9). D-Cas9- RNP produces robust genomic deletion in vitro of GFP in HEK293 cells (~100%) and VEGF in a human pigmental epithelium cell line (ARPE-19) (20%). The uptake of the D-Cas9-RNP constructs on similar timescales as small molecules highlights the robustness of the biophysical mechanisms enabling the dendrimer to deliver payloads as large as Cas9. This promising approach, combined with recent advances in dendrimer delivery technologies in the clinic, may lead to non-toxic, highly efficient in vitro and in vivo genome editing.
Title: Efficient Intracellular Delivery of Crispr-Cas9 Ribonucleoproteins Using Dendrimer Nanoparticles for Robust Genomic Editing
Description:
CRISPR-Cas9, a flexible and efficient genome editing technology, is currently limited by the challenge of delivering the large ribonucleoprotein complex intracellularly and into the nucleus.
Existing delivery techniques/vectors are limited by their toxicity, immunogenicity, and lack of specific cell-targeting ability.
This study presents a dendrimer construct that shows promise in overcoming these limitations.
We covalently conjugated S.
pyogenes Cas9-2NLS (Cas9-nuclear localization sequence) endonuclease to a hydroxyl PAMAM dendrimer through a glutathione-sensitive disulfide linker via highly specific inverse Diels-alder click reaction (IEDDA), and a single guide RNA (sgRNA) was complexed to the Cas9-dendrimer conjugate nano-construct (D-Cas9).
D-Cas9- RNP produces robust genomic deletion in vitro of GFP in HEK293 cells (~100%) and VEGF in a human pigmental epithelium cell line (ARPE-19) (20%).
The uptake of the D-Cas9-RNP constructs on similar timescales as small molecules highlights the robustness of the biophysical mechanisms enabling the dendrimer to deliver payloads as large as Cas9.
This promising approach, combined with recent advances in dendrimer delivery technologies in the clinic, may lead to non-toxic, highly efficient in vitro and in vivo genome editing.

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