CRISPR 介导的巨碱基规模转基因删除,产生功能性单拷贝全长人源化 DMD 小鼠模型。

IF 4.4 1区 生物学 Q1 BIOLOGY
Yu C J Chey, Mark A Corbett, Jayshen Arudkumar, Sandra G Piltz, Paul Q Thomas, Fatwa Adikusuma
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引用次数: 0

摘要

背景:开发针对杜氏肌营养不良症(DMD)的序列特异性精准治疗方法(如 CRISPR 基因编辑疗法)需要序列人源化动物模型,以便将测试策略直接转化为临床治疗。目前可用的含有全长人类 DMD 基因的整合转基因小鼠模型 Tg(DMD)72Thoen/J (hDMDTg),发现每个基因座有两个尾对尾方向的转基因拷贝,不能准确模拟 DMD 基因的真实(单)拷贝数。在测试 CRISPR 治疗编辑结果时,这种重复也会使分析变得复杂,因为在两个转基因的切割位点之间可能会发生较大的基因改变和重排:为了解决这个问题,我们对 hDMDTg 小鼠进行了长读纳米孔测序,以更好地了解重复转基因的结构。随后,我们通过 CRISPR 基因显微注射对其中一个转基因进行了巨碱基删除,从而产生了单拷贝、全长、人源化 DMD 转基因小鼠模型(hDMDTgSc)。功能、分子和组织学特性分析表明,剩余的单个人类转基因保留了其功能,并能挽救内源性小鼠 Dmd 基因敲除引起的肌营养不良表型:我们独特的 hDMDTgSc 小鼠模型模拟了 DMD 基因的真实拷贝数,有可能被用于进一步生成 DMD 疾病模型,从而更好地进行临床前评估和开发序列特异性 CRISPR 疗法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CRISPR-mediated megabase-scale transgene de-duplication to generate a functional single-copy full-length humanized DMD mouse model.

Background: The development of sequence-specific precision treatments like CRISPR gene editing therapies for Duchenne muscular dystrophy (DMD) requires sequence humanized animal models to enable the direct clinical translation of tested strategies. The current available integrated transgenic mouse model containing the full-length human DMD gene, Tg(DMD)72Thoen/J (hDMDTg), has been found to have two copies of the transgene per locus in a tail-to-tail orientation, which does not accurately simulate the true (single) copy number of the DMD gene. This duplication also complicates analysis when testing CRISPR therapy editing outcomes, as large genetic alterations and rearrangements can occur between the cut sites on the two transgenes.

Results: To address this, we performed long read nanopore sequencing on hDMDTg mice to better understand the structure of the duplicated transgenes. Following that, we performed a megabase-scale deletion of one of the transgenes by CRISPR zygotic microinjection to generate a single-copy, full-length, humanized DMD transgenic mouse model (hDMDTgSc). Functional, molecular, and histological characterisation shows that the single remaining human transgene retains its function and rescues the dystrophic phenotype caused by endogenous murine Dmd knockout.

Conclusions: Our unique hDMDTgSc mouse model simulates the true copy number of the DMD gene, and can potentially be used for the further generation of DMD disease models that would be better suited for the pre-clinical assessment and development of sequence specific CRISPR therapies.

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来源期刊
BMC Biology
BMC Biology 生物-生物学
CiteScore
7.80
自引率
1.90%
发文量
260
审稿时长
3 months
期刊介绍: BMC Biology is a broad scope journal covering all areas of biology. Our content includes research articles, new methods and tools. BMC Biology also publishes reviews, Q&A, and commentaries.
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