Suppr超能文献

前病毒HIV全基因组和pol基因特异性锌指核酸酶:靶向HIV基因治疗的可用性

Proviral HIV-genome-wide and pol-gene specific zinc finger nucleases: usability for targeted HIV gene therapy.

作者信息

Wayengera Misaki

机构信息

Unit of Genetics, Genomics & Theoretical Biology, Dept of Pathology, School of Biomedical Science, College of Health Sciences, Makerere University, P O Box 7072 Kampala, Uganda.

出版信息

Theor Biol Med Model. 2011 Jul 22;8:26. doi: 10.1186/1742-4682-8-26.

Abstract

BACKGROUND

Infection with HIV, which culminates in the establishment of a latent proviral reservoir, presents formidable challenges for ultimate cure. Building on the hypothesis that ex-vivo or even in-vivo abolition or disruption of HIV-gene/genome-action by target mutagenesis or excision can irreversibly abrogate HIV's innate fitness to replicate and survive, we previously identified the isoschizomeric bacteria restriction enzymes (REases) AcsI and ApoI as potent cleavers of the HIV-pol gene (11 and 9 times in HIV-1 and 2, respectively). However, both enzymes, along with others found to cleave across the entire HIV-1 genome, slice (SX) at palindromic sequences that are prevalent within the human genome and thereby pose the risk of host genome toxicity. A long-term goal in the field of R-M enzymatic therapeutics has thus been to generate synthetic restriction endonucleases with longer recognition sites limited in specificity to HIV. We aimed (i) to assemble and construct zinc finger arrays and nucleases (ZFN) with either proviral-HIV-pol gene or proviral-HIV-1 whole-genome specificity respectively, and (ii) to advance a model for pre-clinically testing lentiviral vectors (LV) that deliver and transduce either ZFN genotype.

METHODS AND RESULTS

First, we computationally generated the consensus sequences of (a) 114 dsDNA-binding zinc finger (Zif) arrays (ZFAs or ZifHIV-pol) and (b) two zinc-finger nucleases (ZFNs) which, unlike the AcsI and ApoI homeodomains, possess specificity to >18 base-pair sequences uniquely present within the HIV-pol gene (ZifHIV-polFN). Another 15 ZFNs targeting >18 bp sequences within the complete HIV-1 proviral genome were constructed (ZifHIV-1FN). Second, a model for constructing lentiviral vectors (LVs) that deliver and transduce a diploid copy of either ZifHIV-polFN or ZifHIV-1FN chimeric genes (termed LV- 2xZifHIV-polFN and LV- 2xZifHIV-1FN, respectively) is proposed. Third, two preclinical models for controlled testing of the safety and efficacy of either of these LVs are described using active HIV-infected TZM-bl reporter cells (HeLa-derived JC53-BL cells) and latent HIV-infected cell lines.

CONCLUSION

LV-2xZifHIV-polFN and LV- 2xZifHIV-1FN may offer the ex-vivo or even in-vivo experimental opportunity to halt HIV replication functionally by directly abrogating HIV-pol-gene-action or disrupting/excising over 80% of the proviral HIV DNA from latently infected cells.

摘要

背景

感染HIV最终会形成潜伏的前病毒库,这给彻底治愈带来了巨大挑战。基于体外甚至体内通过靶向诱变或切除消除或破坏HIV基因/基因组作用可不可逆地消除HIV复制和生存的固有适应性这一假设,我们之前鉴定出同裂酶细菌限制酶(REases)AcsI和ApoI是HIV - pol基因的有效切割酶(在HIV - 1和HIV - 2中分别切割11次和9次)。然而,这两种酶以及其他被发现可切割整个HIV - 1基因组的酶,会在人类基因组中普遍存在的回文序列处切割(SX),从而带来宿主基因组毒性风险。因此,R - M酶疗法领域的一个长期目标是生成具有仅限于HIV的更长识别位点的合成限制性内切核酸酶。我们的目标是:(i)分别组装和构建具有前病毒HIV - pol基因特异性或前病毒HIV - 1全基因组特异性的锌指阵列和核酸酶(ZFN),以及(ii)推进一种用于临床前测试递送和转导任一ZFN基因型的慢病毒载体(LV)的模型。

方法与结果

首先,我们通过计算生成了(a)114个双链DNA结合锌指(Zif)阵列(ZFA或ZifHIV - pol)和(b)两种锌指核酸酶(ZFN)的共有序列,与AcsI和ApoI同源结构域不同,它们对HIV - pol基因中独特存在的>18个碱基对的序列具有特异性(ZifHIV - polFN)。还构建了另外15种靶向完整HIV - 1前病毒基因组中>18 bp序列的ZFN(ZifHIV - 1FN)。其次,提出了一种构建慢病毒载体(LV)的模型,该载体可递送和转导ZifHIV - polFN或ZifHIV - 1FN嵌合基因的二倍体拷贝(分别称为LV - 2xZifHIV - polFN和LV - 2xZifHIV - 1FN)。第三,描述了两种临床前模型,用于使用活跃感染HIV的TZM - bl报告细胞(源自HeLa的JC53 - BL细胞)和潜伏感染HIV的细胞系对任一LV的安全性和有效性进行对照测试。

结论

LV - 2xZifHIV - polFN和LV - 2xZifHIV - 1FN可能提供体外甚至体内实验机会,通过直接消除HIV - pol基因作用或从潜伏感染细胞中破坏/切除超过80%的前病毒HIV DNA,在功能上阻止HIV复制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c999/3152896/be2bee0d00fb/1742-4682-8-26-1.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验