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Reengineering a transmembrane protein to treat muscular dystrophy using exon skipping

机译:使用外显子跳跃技术改造跨膜蛋白以治疗肌营养不良症

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Exon skipping uses antisense oligonucleotides as a treatment for genetic diseases. The antisense oligonucleotides used for exon skipping are designed to bypass premature stop codons in the target RNA and restore reading frame disruption. Exon skipping is currently being tested in humans with dystrophin gene mutations who have Duchenne muscular dystrophy. For Duchenne muscular dystrophy, the rationale for exon skipping derived from observations in patients with naturally occurring dystrophin gene mutations that generated internally deleted but partially functional dystrophin proteins. We have now expanded the potential for exon skipping by testing whether an internal, in-frame truncation of a transmembrane protein γ-sarcoglycan is functional. We generated an internally truncated γ-sarcoglycan protein that we have termed Mini-Gamma by deleting a large portion of the extracellular domain. Mini-Gamma provided functional and pathological benefits to correct the loss of γ-sarcoglycan in a Drosophila model, in heterologous cell expression studies, and in transgenic mice lacking γ-sarcoglycan. We generated a cellular model of human muscle disease and showed that multiple exon skipping could be induced in RNA that encodes a mutant human γ-sarcoglycan. Since Mini-Gamma represents removal of 4 of the 7 coding exons in γ-sarcoglycan, this approach provides a viable strategy to treat the majority of patients with γ-sarcoglycan gene mutations.
机译:外显子跳跃使用反义寡核苷酸作为遗传疾病的治疗方法。用于外显子跳跃的反义寡核苷酸被设计为绕过靶RNA中的过早终止密码子并恢复阅读框的破坏。目前正在对患有Duchenne肌营养不良症的肌营养不良蛋白基因突变的人类进行外显子跳跃测试。对于Duchenne肌营养不良症,外显子跳跃的基本原理来自对自然产生的肌营养不良蛋白基因突变患者产生的内部缺失但部分功能性肌营养不良蛋白蛋白的观察。现在,我们通过测试跨膜蛋白γ-糖聚糖的内部框内截短是否具有功能,扩大了外显子跳过的潜力。我们通过删除大部分胞外域产生了一种内部截断的γ-糖聚糖蛋白,我们将其称为Mini-Gamma。在果蝇模型,异源细胞表达研究和缺乏γ-糖聚糖的转基因小鼠中,Mini-Gamma提供了功能和病理学益处以纠正γ-糖聚糖的损失。我们生成了人类肌肉疾病的细胞模型,并表明可以在编码突变型人γ-糖聚糖的RNA中诱导多个外显子跳跃。由于Mini-Gamma代表去除了γ-糖聚糖中7个编码外显子中的4个,因此该方法为治疗大多数具有γ-糖聚糖基因突变的患者提供了可行的策略。

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