Fakhiri Julia, Schneider Marc A, Puschhof Jens, Stanifer Megan, Schildgen Verena, Holderbach Stefan, Voss Yannik, El Andari Jihad, Schildgen Oliver, Boulant Steeve, Meister Michael, Clevers Hans, Yan Ziying, Qiu Jianming, Grimm Dirk
Department of Infectious Diseases/Virology, Heidelberg University Hospital, Heidelberg, Germany.
BioQuant Center, University of Heidelberg, Heidelberg, Germany.
Mol Ther Methods Clin Dev. 2019 Jan 18;12:202-222. doi: 10.1016/j.omtm.2019.01.003. eCollection 2019 Mar 15.
Parvoviruses are highly attractive templates for the engineering of safe, efficient, and specific gene therapy vectors, as best exemplified by adeno-associated virus (AAV). Another candidate that currently garners increasing attention is human bocavirus 1 (HBoV1). Notably, HBoV1 capsids can cross-package recombinant (r)AAV2 genomes, yielding rAAV2/HBoV1 chimeras that specifically transduce polarized human airway epithelia (pHAEs). Here, we largely expanded the repertoire of rAAV/BoV chimeras, by assembling packaging plasmids encoding the capsid genes of four additional primate bocaviruses, HBoV2-4 and GBoV (Gorilla BoV). Capsid protein expression and efficient rAAV cross-packaging were validated by immunoblotting and qPCR, respectively. Interestingly, not only HBoV1 but also HBoV4 and GBoV transduced pHAEs as well as primary human lung organoids. Flow cytometry analysis of pHAEs revealed distinct cellular specificities between the BoV isolates, with HBoV1 targeting ciliated, club, and KRT5+ basal cells, whereas HBoV4 showed a preference for KRT5+ basal cells. Surprisingly, primary human hepatocytes, skeletal muscle cells, and T cells were also highly amenable to rAAV/BoV transduction. Finally, we adapted our pipeline for AAV capsid gene shuffling to all five BoV isolates. Collectively, our chimeric rAAV/BoV vectors and bocaviral capsid library represent valuable new resources to dissect BoV biology and to breed unique gene therapy vectors.
细小病毒是用于构建安全、高效且特异的基因治疗载体的极具吸引力的模板,腺相关病毒(AAV)就是最好的例证。目前另一个受到越来越多关注的候选病毒是人类博卡病毒1型(HBoV1)。值得注意的是,HBoV1衣壳可以交叉包装重组(r)AAV2基因组,产生能特异性转导极化人呼吸道上皮细胞(pHAEs)的rAAV2/HBoV1嵌合体。在这里,我们通过组装编码另外四种灵长类博卡病毒(HBoV2 - 4和GBoV,即大猩猩博卡病毒)衣壳基因的包装质粒,极大地扩展了rAAV/BoV嵌合体的种类。分别通过免疫印迹和qPCR验证了衣壳蛋白表达和高效的rAAV交叉包装。有趣的是,不仅HBoV1,HBoV4和GBoV也能转导pHAEs以及原代人肺类器官。对pHAEs的流式细胞术分析揭示了不同博卡病毒分离株之间不同的细胞特异性,HBoV1靶向纤毛细胞、棒状细胞和KRT5 + 基底细胞,而HBoV4则更倾向于KRT5 + 基底细胞。令人惊讶的是,原代人肝细胞、骨骼肌细胞和T细胞也对rAAV/BoV转导高度敏感。最后,我们将我们用于AAV衣壳基因改组的流程应用于所有五种博卡病毒分离株。总的来说,我们的嵌合rAAV/BoV载体和博卡病毒衣壳文库是剖析博卡病毒生物学特性和培育独特基因治疗载体的宝贵新资源。