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1
Delivering on the promise of gene editing for cystic fibrosis.
Genes Dis. 2018 Nov 25;6(2):97-108. doi: 10.1016/j.gendis.2018.11.005. eCollection 2019 Jun.
2
Validation of a CRISPR-Mediated CFTR Correction Strategy for Preclinical Translation in Pigs.
Hum Gene Ther. 2019 Sep;30(9):1101-1116. doi: 10.1089/hum.2019.074. Epub 2019 Jun 18.
3
Potential of helper-dependent Adenoviral vectors in CRISPR-cas9-mediated lung gene therapy.
Cell Biosci. 2021 Jul 23;11(1):145. doi: 10.1186/s13578-021-00662-w.
4
A sheep model of cystic fibrosis generated by CRISPR/Cas9 disruption of the CFTR gene.
JCI Insight. 2018 Oct 4;3(19):123529. doi: 10.1172/jci.insight.123529.
5
Innovative Therapeutic Strategies for Cystic Fibrosis: Moving Forward to CRISPR Technique.
Front Pharmacol. 2018 Apr 20;9:396. doi: 10.3389/fphar.2018.00396. eCollection 2018.
6
Transcriptome Profiling and Molecular Therapeutic Advances in Cystic Fibrosis: Recent Insights.
Genes (Basel). 2019 Feb 26;10(3):180. doi: 10.3390/genes10030180.
7
On the Corner of Models and Cure: Gene Editing in Cystic Fibrosis.
Front Pharmacol. 2021 Apr 27;12:662110. doi: 10.3389/fphar.2021.662110. eCollection 2021.
8
Powerful tools for genetic modification: Advances in gene editing.
Pediatr Pulmonol. 2017 Nov;52(S48):S15-S20. doi: 10.1002/ppul.23791. Epub 2017 Sep 27.
9
Animal and model systems for studying cystic fibrosis.
J Cyst Fibros. 2018 Mar;17(2S):S28-S34. doi: 10.1016/j.jcf.2017.09.001. Epub 2017 Sep 19.
10
Phenotypic Characterization and Comparison of Cystic Fibrosis Rat Models Generated Using CRISPR/Cas9 Gene Editing.
Am J Pathol. 2020 May;190(5):977-993. doi: 10.1016/j.ajpath.2020.01.009. Epub 2020 Feb 18.

引用本文的文献

1
Harnessing bacterial immunity: CRISPR-Cas system as a versatile tool in combating pathogens and revolutionizing medicine.
Front Cell Infect Microbiol. 2025 May 30;15:1588446. doi: 10.3389/fcimb.2025.1588446. eCollection 2025.
3
Artificial intelligence-guided design of lipid nanoparticles for pulmonary gene therapy.
Nat Biotechnol. 2024 Dec 10. doi: 10.1038/s41587-024-02490-y.
4
A W1282X cystic fibrosis mouse allows the study of pharmacological and gene-editing therapeutics to restore CFTR function.
J Cyst Fibros. 2025 Jan;24(1):164-174. doi: 10.1016/j.jcf.2024.10.008. Epub 2024 Nov 12.
5
Current and future therapeutic approaches of CFTR and airway dysbiosis in an era of personalized medicine.
J Family Med Prim Care. 2024 Jun;13(6):2200-2208. doi: 10.4103/jfmpc.jfmpc_1085_23. Epub 2024 Jun 14.
7
Nanomaterials-assisted gene editing and synthetic biology for optimizing the treatment of pulmonary diseases.
J Nanobiotechnology. 2024 Jun 18;22(1):343. doi: 10.1186/s12951-024-02627-w.
8
In vivo editing of lung stem cells for durable gene correction in mice.
Science. 2024 Jun 14;384(6701):1196-1202. doi: 10.1126/science.adk9428. Epub 2024 Jun 13.
10
Combinatorial development of nebulized mRNA delivery formulations for the lungs.
Nat Nanotechnol. 2024 Mar;19(3):364-375. doi: 10.1038/s41565-023-01548-3. Epub 2023 Nov 20.

本文引用的文献

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Cystic Fibrosis Gene Therapy: Looking Back, Looking Forward.
Genes (Basel). 2018 Nov 7;9(11):538. doi: 10.3390/genes9110538.
2
VX-659-Tezacaftor-Ivacaftor in Patients with Cystic Fibrosis and One or Two Phe508del Alleles.
N Engl J Med. 2018 Oct 25;379(17):1599-1611. doi: 10.1056/NEJMoa1807119. Epub 2018 Oct 18.
3
VX-445-Tezacaftor-Ivacaftor in Patients with Cystic Fibrosis and One or Two Phe508del Alleles.
N Engl J Med. 2018 Oct 25;379(17):1612-1620. doi: 10.1056/NEJMoa1807120. Epub 2018 Oct 18.
4
Base editing: precision chemistry on the genome and transcriptome of living cells.
Nat Rev Genet. 2018 Dec;19(12):770-788. doi: 10.1038/s41576-018-0059-1.
5
In utero CRISPR-mediated therapeutic editing of metabolic genes.
Nat Med. 2018 Oct;24(10):1513-1518. doi: 10.1038/s41591-018-0184-6. Epub 2018 Oct 8.
6
A limited number of double-strand DNA breaks is sufficient to delay cell cycle progression.
Nucleic Acids Res. 2018 Nov 2;46(19):10132-10144. doi: 10.1093/nar/gky786.
7
CRISPR-Cas guides the future of genetic engineering.
Science. 2018 Aug 31;361(6405):866-869. doi: 10.1126/science.aat5011.
8
Gene editing restores dystrophin expression in a canine model of Duchenne muscular dystrophy.
Science. 2018 Oct 5;362(6410):86-91. doi: 10.1126/science.aau1549. Epub 2018 Aug 30.

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