Development of a Molecularly Stable Gene Therapy Vector for the Treatment of RPGR-Associated X-Linked Retinitis Pigmentosa.

IF 4 3区 医学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Human gene therapy Pub Date : 2019-08-01 DOI:10.1089/hum.2018.244
Joseph C Giacalone, Jeaneen L Andorf, Qihong Zhang, Erin R Burnight, Dalyz Ochoa, Austin J Reutzel, Malia M Collins, Val C Sheffield, Robert F Mullins, Ian C Han, Edwin M Stone, Budd A Tucker
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Abstract

In a screen of 1,000 consecutively ascertained families, we recently found that mutations in the gene RPGR are the third most common cause of all inherited retinal disease. As the two most frequent disease-causing genes, ABCA4 and USH2A, are far too large to fit into clinically relevant adeno-associated virus (AAV) vectors, RPGR is an obvious early target for AAV-based ocular gene therapy. In generating plasmids for this application, we discovered that those containing wild-type RPGR sequence, which includes the highly repetitive low complexity region ORF15, were extremely unstable (i.e., they showed consistent accumulation of genomic changes during plasmid propagation). To develop a stable RPGR gene transfer vector, we used a bioinformatics approach to identify predicted regions of genomic instability within ORF15 (i.e., potential non-B DNA conformations). Synonymous substitutions were made in these regions to reduce the repetitiveness and increase the molecular stability while leaving the encoded amino acid sequence unchanged. The resulting construct was subsequently packaged into AAV serotype 5, and the ability to drive transcript expression and functional protein production was demonstrated via subretinal injection in rat and pull-down assays, respectively. By making synonymous substitutions within the repetitive region of RPGR, we were able to stabilize the plasmid and subsequently generate a clinical-grade gene transfer vector (IA-RPGR). Following subretinal injection in rat, we demonstrated that the augmented transcript was expressed at levels similar to wild-type constructs. By performing in vitro pull-down experiments, we were able to show that IA-RPGR protein product retained normal protein binding properties (i.e., analysis revealed normal binding to PDE6D, INPP5E, and RPGRIP1L). In summary, we have generated a stable RPGR gene transfer vector capable of producing functional RPGR protein, which will facilitate safety and toxicity studies required for progression to an Investigational New Drug application.

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开发用于治疗 RPGR 相关 X 遗传性视网膜色素变性的分子稳定基因治疗载体。
最近,我们在对 1,000 个连续确定的家族进行筛选时发现,RPGR 基因突变是所有遗传性视网膜疾病的第三大常见病因。由于两个最常见的致病基因 ABCA4 和 USH2A 体积太大,无法装入临床相关的腺相关病毒(AAV)载体,因此 RPGR 显然是基于 AAV 的眼部基因治疗的早期靶点。在为这一应用生成质粒的过程中,我们发现含有野生型 RPGR 序列(包括高度重复的低复杂性区域 ORF15)的质粒极不稳定(即在质粒繁殖过程中基因组变化不断累积)。为了开发稳定的 RPGR 基因转移载体,我们使用生物信息学方法确定了 ORF15 中预测的基因组不稳定区域(即潜在的非 B 型 DNA 构象)。我们在这些区域进行了同义替换,以减少重复性并提高分子稳定性,同时保持编码的氨基酸序列不变。随后,将得到的构建体包装到 AAV 血清型 5 中,并通过大鼠视网膜下注射和牵引实验分别证明了其驱动转录本表达和功能蛋白产生的能力。通过在 RPGR 的重复区进行同义替换,我们稳定了质粒,随后生成了临床级基因转移载体(IA-RPGR)。大鼠视网膜下注射后,我们证实增强转录本的表达水平与野生型构建体相似。通过体外牵引实验,我们能够证明 IA-RPGR 蛋白产物保留了正常的蛋白结合特性(即,分析显示与 PDE6D、INPP5E 和 RPGRIP1L 的结合正常)。总之,我们已经生成了一种稳定的 RPGR 基因转移载体,它能够产生功能性 RPGR 蛋白,这将有助于进行新药研究申请所需的安全性和毒性研究。
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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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