Directed Evolution of AAV9 for Efficient Gene Expression in Cardiomyocytes In Vitro and In Vivo.

IF 3.9 3区 医学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Human gene therapy Pub Date : 2025-02-01 Epub Date: 2025-01-24 DOI:10.1089/hum.2024.126
Leonard Hüttermann, Lena C Schröder, Prithviraj M V Shetty, Timo Jonker, Susanne S Hille, Anca Kliesow Remes, Andrea Matzen, Arie R Boender, Dirk Grimm, Derk Frank, Gerard J J Boink, Thomas Eschenhagen, Dennis Schade, Oliver J Müller
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引用次数: 0

Abstract

Adeno-associated viral (AAV) vectors are increasingly used for preclinical and clinical cardiac gene therapy approaches. However, gene transfer to cardiomyocytes poses a challenge due to differences between AAV serotypes in terms of expression efficiency in vitro and in vivo. For example, AAV9 vectors work well in rodent heart muscle cells in vivo but not in cultivated neonatal rat ventricular cardiomyocytes (NRVCMs), necessitating the use of AAV6 vectors for in vitro studies. Therefore, we aimed to develop an AAV that could efficiently express genes in NRVCMs, human engineered heart tissue (hEHT), and mammalian hearts. The production of AAV6 vectors results in lower yields compared with AAV9. Hence, we used random AAV9 peptide libraries and selected variants on NRVCMs at the vector genome and RNA levels in parallel. The enriched library variants were characterized using high-throughput analysis of barcoded variants, followed by individual validation of the most promising candidates. Interestingly, we found striking differences in NRVCM transduction and gene expression patterns of the AAV capsid variants depending on the selection strategy. AAV variants selected based on the vector genome level enabled the highest transduction but were outperformed by AAVs selected on the RNA level in terms of expression efficiency. In addition, we identified a new AAV9 capsid variant that not only allowed significantly higher gene expression in NRVCMs compared with AAV6 but also enabled similar gene expression in murine hearts as AAV9 wild-type vectors after being intravenously injected into mice. Moreover, the novel variant facilitated significantly higher gene expression in hEHT compared with AAV9. Therefore, this AAV variant could streamline preclinical gene therapy studies of myocardial diseases by eliminating the need for using different AAVs for NRVCMs, hEHT, and mice.

体外和体内AAV9基因在心肌细胞高效表达的定向进化
腺相关病毒(AAV)载体越来越多地用于临床前和临床心脏基因治疗方法。然而,由于AAV血清型在体外和体内表达效率的差异,基因转移到心肌细胞面临挑战。例如,AAV9载体在体内啮齿动物心肌细胞中表现良好,但在培养的新生大鼠心室心肌细胞(NRVCMs)中表现不佳,因此需要使用AAV6载体进行体外研究。因此,我们的目标是开发一种能够在nrvcm、人工程心脏组织(hEHT)和哺乳动物心脏中高效表达基因的AAV。与AAV9相比,AAV6载体的产量较低。因此,我们使用随机的AAV9肽库,并在载体基因组和RNA水平上选择NRVCMs上的变体。利用条形码变体的高通量分析对富集的文库变体进行表征,然后对最有希望的候选基因进行个体验证。有趣的是,我们发现不同选择策略的AAV衣壳变异在NRVCM转导和基因表达模式上存在显著差异。基于载体基因组水平选择的AAV变体能够实现最高的转导,但在表达效率方面,RNA水平选择的AAV变体表现更好。此外,我们发现了一种新的AAV9衣壳变体,与AAV6相比,它不仅在nrvcm中的基因表达水平显著提高,而且在小鼠心脏中,经静脉注射后,其基因表达与AAV9野生型载体相似。此外,与AAV9相比,新变异在hEHT中的基因表达显著增加。因此,该AAV变体可以通过消除对nrvcm、hEHT和小鼠使用不同AAV的需要,简化心肌疾病的临床前基因治疗研究。
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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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