CFTR mRNA-Based Gene Therapy for Cystic Fibrosis: A Mutation-Agnostic Strategy to Restore Ion Transport Function

囊性纤维化 遗传增强 囊性纤维化跨膜传导调节器 插入突变 信使核糖核酸 细胞疗法 生物信息学 医学 伊瓦卡夫托 突变 生物 基因传递 细胞生物学 离子运输机 功能(生物学) 计算生物学 癌症研究 突变 基因 呼吸上皮 电穿孔 离子通道 粘液 免疫学 增强剂 氯离子通道 表面活性蛋白C 免疫系统 基因组编辑 基因表达 转基因 化学 气道 基因靶向
作者
Jayendra Kumar,Mehetre Dattatraya Martand,Arpan Kumar Tripathi,PN Agarwal,Hitesh Kumar,Shamim Khan,Shadab Ali
出处
期刊:Current Gene Therapy [Bentham Science Publishers]
卷期号:26
标识
DOI:10.2174/0115665232413980251103133741
摘要

Cystic fibrosis is a severe autosomal recessive disorder caused by mutations in the CFTR gene, leading to dysfunctional chloride ion transport across epithelial cells. This results in the accumulation of thick, sticky mucus, primarily affecting the lungs, pancreas, and gastrointestinal tract, leading to chronic respiratory infections and progressive lung damage. Although CFTR modulators have significantly improved outcomes for some patients, their efficacy is limited to specific mutations, leaving many without adequate treatment. CFTR-mRNA-based gene therapy serves as an advantageous therapeutic method for all mutations, independent of the treatment target. Through synthetic CFTR mRNA delivery to epithelial cells using this method, the cells can synthesize the functional CFTR protein required for proper ion transport and mucus hydration. mRNA therapy avoids nuclear entry and genomic integration, reducing the risk of insertional mutagenesis and long-term genetic alterations. Lipid nanoparticles, together with other non-viral delivery carriers, demonstrate significant potential to protect mRNA structures and enhance their ability to enter cells while promoting protein production. Research conducted using animal models has revealed that mRNA therapy leads to the successful restoration of CFTR function, accompanied by improved airway hydration outcomes. Ongoing challenges exist for this therapy, as mRNA encounters instability issues while triggering immune reactions and requires constant dose delivery. Multiple scientific research fields are collaborating on mRNA engineering advancements, along with the development of delivery technologies and combination therapy strategies, to overcome existing obstacles. The study examines current therapeutic approaches while assessing delivery pathways and pharmaceutical advancements, as well as expected research directions regarding CFTR-mRNA therapy, which demonstrates potential to treat all Cystic fibrosis patients through a single, comprehensive treatment.
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