Halting Recombinant Adeno-Associated Virus Transgene Expression Using mRNA-Lipid Nanoparticle-Delivered Meganucleases.

IF 3.9 3区 医学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Human gene therapy Pub Date : 2025-06-01 Epub Date: 2025-05-12 DOI:10.1089/hum.2025.011
Rubens Tavora, Lizhou Zhang, Mai H Tran, Hao Li, Dan O'Hagan, Andi Pan, Lorenzo Barrett, Joseph A Jablonski, Sonia Mediouni, Alexander Lopez, Zachary Comella, Charles Bailey, Hyeryun Choe, Michael Farzan, Susana T Valente
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引用次数: 0

Abstract

Recombinant adeno-associated virus (rAAV) vectors are increasingly preferred for in vivo gene therapy due to their broad tropism, low immunogenicity, and sustained transgene expression. Nevertheless, in cases of adverse reactions to these expressions, a method to suppress or permanently halt rAAV transgene activity could significantly enhance the safety of these vectors. To address this need, we employed meganucleases-highly specific DNA endonucleases with long recognition sequences. By placing meganuclease target sites within rAAV transgenes, we created a system in which targeted cleavage leads to controlled disruption of transgene expression. Utilizing a luciferase assay, we screened various meganucleases and identified I-AniI-Y2, I-BmoI, and I-PpoI as prime candidates due to their high cleavage efficiencies. By strategically placing multiple meganuclease target sequences within introns, as well as in the 5' and 3' untranslated regions (UTRs) of transgenes, we significantly enhanced the cleavage efficiency of these meganucleases, ensuring robust and targeted suppression of transgene expression. Finally, we employed an mRNA-loaded lipid nanoparticledelivery system to demonstrate the ability of meganucleases to robustly inhibit rAAV-mediated transgene expression in vitro. Our findings underscore the potential of meganucleases as a viable safety mechanism in rAAV gene therapies, marking a significant advance toward safer long-term gene therapy approaches.

利用mrna -脂质纳米颗粒递送的巨核酶停止重组腺相关病毒的转基因表达。
重组腺相关病毒(rAAV)载体由于其广泛的亲和性、低免疫原性和持续的转基因表达,在体内基因治疗中越来越受到青睐。然而,在对这些表达有不良反应的情况下,抑制或永久停止rAAV转基因活性的方法可以显著提高这些载体的安全性。为了满足这一需求,我们采用了巨核酶-具有长识别序列的高度特异性DNA内切酶。通过在rAAV转基因中放置巨核酶目标位点,我们创建了一个系统,在该系统中,靶向切割导致转基因表达的受控中断。利用荧光素酶测定,我们筛选了各种巨核酶,并确定了I-AniI-Y2、I-BmoI和I-PpoI作为主要候选酶,因为它们的切割效率很高。通过战略性地将多个巨核酶靶序列置于内含子内,以及转基因的5‘和3’非翻译区(UTRs),我们显著提高了这些巨核酶的切割效率,确保了对转基因表达的稳健和靶向抑制。最后,我们采用了一种装载mrna的脂质纳米颗粒递送系统来证明巨核酶在体外强有力地抑制raav介导的转基因表达的能力。我们的发现强调了巨核酶在rAAV基因治疗中作为一种可行的安全机制的潜力,标志着更安全的长期基因治疗方法取得了重大进展。
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来源期刊
Human gene therapy
Human gene therapy 医学-生物工程与应用微生物
CiteScore
6.50
自引率
4.80%
发文量
131
审稿时长
4-8 weeks
期刊介绍: Human Gene Therapy is the premier, multidisciplinary journal covering all aspects of gene therapy. The Journal publishes in-depth coverage of DNA, RNA, and cell therapies by delivering the latest breakthroughs in research and technologies. Human Gene Therapy provides a central forum for scientific and clinical information, including ethical, legal, regulatory, social, and commercial issues, which enables the advancement and progress of therapeutic procedures leading to improved patient outcomes, and ultimately, to curing diseases.
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