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The genotoxic potential of retroviral vectors is strongly modulated by vector design and integration site selection in a mouse model of HSC gene therapy

机译:在HSC基因治疗的小鼠模型中,逆转录病毒载体的遗传毒性潜力通过载体设计和整合位点选择来强烈调节。

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摘要

γ-Retroviral vectors (γRVs), which are commonly used in gene therapy, can trigger oncogenesis by insertional mutagenesis. Here, we have dissected the contribution of vector design and viral integration site selection (ISS) to oncogenesis using an in vivo genotoxicity assay based on transplantation of vector-transduced tumor-prone mouse hematopoietic stem/progenitor cells. By swapping genetic elements between γRV and lentiviral vectors (LVs), we have demonstrated that transcriptionally active long terminal repeats (LTRs) are major determinants of genotoxicity even when reconstituted in LVs and that self-inactivating (SIN) LTRs enhance the safety of γRVs. By comparing the genotoxicity of vectors with matched active LTRs, we were able to determine that substantially greater LV integration loads are required to approach the same oncogenic risk as γRVs. This difference in facilitating oncogenesis is likely to be explained by the observed preferential targeting of cancer genes by γRVs. This integration-site bias was intrinsic to γRVs, as it was also observed for SIN γRVs that lacked genotoxicity in our model. Our findings strongly support the use of SIN viral vector platforms and show that ISS can substantially modulate genotoxicity.
机译:基因治疗中常用的γ-逆转录病毒载体(γRVs)可通过插入诱变触发肿瘤发生。在这里,我们使用基于载体转导的易肿瘤小鼠造血干/祖细胞移植的体内遗传毒性试验,剖析了载体设计和病毒整合位点选择(ISS)对肿瘤发生的贡献。通过在γRV和慢病毒载体(LVs)之间交换遗传元件,我们证明了转录活性长末端重复序列(LTRs)是遗传毒性的主要决定因素,即使在LVs中重组也是如此,而自灭活(SIN)LTRs可以提高γRVs的安全性。通过比较具有匹配的活性LTR的载体的遗传毒性,我们能够确定需要更大的LV整合负荷才能达到与γRVs相同的致癌风险。观察到的γRVs优先靶向癌基因可能解释了促癌作用的差异。这种整合位点偏倚是γRV固有的,因为在我们的模型中也观察到了缺乏遗传毒性的SINγRV。我们的发现强烈支持SIN病毒载体平台的使用,并表明ISS可以实质上调节基因毒性。

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