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When mRNA meets gene editing

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摘要 The critical challenge of gene therapy lies in delivering gene editing agents.Compared with DNA,while RNA is less stable and more accessible to degrade,it comes with the benefit of lower off-target effects since permanent insertion is not involved.This review focuses on mRNA-based delivery of gene editing agents,highlighting novel mRNA delivery systems.To provide context,a comparison is made between three main gene editing agents:programmable nucleases,base editors,and prime editors.The potential of Cas\pi and transposons is also discussed in this review.Additionally,a summary of four main barriers to mRNAbased in vivo delivery is provided.Furthermore,this review detailedly introduced different delivery systems,both viral(lentivirus)and non-viral vectors(genome editing via oviductal nucleic acids delivery,lipid nanoparticles,polymer-based nanoparticles,viruslike-particles,extracellular vesicles,and migrasome).Each delivery strategy is assessed by comparing its advantages and disadvantages to offer a comprehensive and objective overview of the delivery system.Moreover,we emphasized the vital role of the protein corona as a critical regulator for nanodelivery.Ultimately,we concluded the challenges of mRNA-based gene editing strategies(RNA stability,targeting,potential immunogenicity,cytotoxicity,heterogeneity,and rational design).The purpose of this review is to guide further research and provide a comprehensive analysis of mRNA-based in vivo delivery of gene editing agents in this promising field.
出处 《Nano Research》 SCIE EI CSCD 2024年第8期7337-7356,共20页 纳米研究(英文版)
基金 supported by the National Key R&D Program of China(No.2018YFA0901700) the National Natural Science Foundation of China(No.22278241) a grant from the Institute Guo Qiang,Tsinghua University(No.2021GQG1016) the Department of Chemical Engineering-iBHE Joint Cooperation Fund.
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  • 1Schneider FH, Smith AD, Winkler H. Secretion from the adrenal medulla: biochemical evidence for exoeytosis. Br J Pharmaeol Chemother 1967, 31:94-104.
  • 2Nagasawa J, Douglas WW, Schulz RA. Ultrastructural evi- dence of secretion by exocytosis and of synaptie-vesicle for- mation in posterior pituitary glands. Nature 1970, 227:407- 409.
  • 3Trams EG, Lauter C J, Salem N, Heine U. Exfoliation of membrane ecto-enzymes in the form of micro-vesicles. Bio- ehim Biophys Acta 1981, 645:63-70.
  • 4Johnstone RM, Adam M, Hammond JR, Orr L, Turbide C. vesicle formation during reticulocyte maturation - association of plasma-membrane activities with released vesicles (exo- somes). JBiol Chem 1987, 262:9412-9420.
  • 5Kowal J, Tkach M, Th6ry C. Biogenesis and secretion of exo- somes. Curr Opin Cell Biol 2014, 29:116-125.
  • 6Porter KR, Claude A, Fullam EF. A study of tissue culture cells by electron microscopy - methods and preliminary ob- servations. J Exp Med 1945, 81:233-246.
  • 7Taylor AC, Robbins E. Observations on microextensions from the surface of isolated vertebrate cells. Dev Biol 1963, 6:660- 673.
  • 8Rantala JK, Pouwels J, Pellinen T, et al. SHARPIN is an en- dogenous inhibitor of betal-integrin activation. Mol Biol Cell 2011, 22:1315-1324.
  • 9Eleniste PP, Huang S, Wayakanon K, Largura HW, Bruzzaniti A. Osteoblast differentiation and migration are regulated by dynamin GTPase activity. Int J Biochem Cell Bio12014, 46:9- 18.
  • 10Duxbury MS, Ashley SW, Whang EE. Inhibition of pancreatic adenocarcinoma cellular invasiveness by blebbistatin: a novel myosin II inhibitor. Biochem Biophys Res Commun 2004, 313:992-997.

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