JAG1 overexpression partially rescues muscle function in a zebrafish model of duchenne muscular dystrophy.

IF 2.9 4区 生物学 Q1 EDUCATION & EDUCATIONAL RESEARCH
Journal of Genetics Pub Date : 2025-01-01
Vishakha Nesari, Suresh Balakrishnan, Upendra Nongthomba
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引用次数: 0

Abstract

Duchenne muscular dystrophy (DMD) is a severe genetic disorder characterized by progressive muscle degeneration and loss of function due to the absence of dystrophin. In this study, we utilized a zebrafish model with a dmd gene knockout to explore the therapeutic potential of JAG1 overexpression in mitigating DMD-associated muscle dysfunction. Dystrophic zebrafish larvae displayed significant impairments in muscle function, evidenced by reduced swimming abilities, decreased birefringence, and disrupted β-dystroglycan localization, indicative of structural degeneration. Overexpression of JAG1, achieved via plasmid injection, partially restored muscle function, as reflected by improvements in stride length and total swimming distance. However, the structural integrity of slow oxidative muscle fibers remained largely unaffected, with a functional decline from 4 to 8 days post-fertilization (dpf) being more indicative of disease progression than structural changes. These findings suggest that the rescue effect of JAG1 overexpression may not be due to the preservation of slow oxidative fibers but rather through a mechanism that reduces susceptibility to contraction-induced injury. Notably, our study faced limitations related to the control of JAG1 expression levels and tissue specificity. Our results highlight the complexity of DMD pathology, where muscle structure and function do not always correlate, emphasizing the need for refined functional assays to better assess therapeutic outcomes. By incorporating functional recovery assessments at 8-10 dpf, zebrafish models can serve as more predictive preclinical tools, potentially enhancing the translational relevance of findings and reducing risks for patients in clinical trials. This study investigates how increasing the levels of a protein called JAG1 can help improve muscle function in a zebrafish model of DMD. By showing partial recovery of muscle activity, the findings suggest new therapeutic strategies that could potentially slow disease progression and improve patient outcomes.

在杜氏肌营养不良斑马鱼模型中,JAG1过表达可部分恢复肌肉功能。
杜氏肌营养不良症(DMD)是一种严重的遗传性疾病,其特征是由于缺乏肌营养不良蛋白而导致肌肉进行性变性和功能丧失。在这项研究中,我们利用dmd基因敲除的斑马鱼模型来探索JAG1过表达在缓解dmd相关肌肉功能障碍方面的治疗潜力。营养不良的斑马鱼幼虫表现出明显的肌肉功能损伤,游动能力下降,双折射下降,β-三磷酸腺苷定位紊乱,表明结构退化。通过质粒注射实现JAG1的过表达,部分恢复了肌肉功能,这反映在步幅和总游泳距离的改善上。然而,缓慢氧化肌纤维的结构完整性在很大程度上未受影响,受精后4至8天(dpf)的功能下降更能表明疾病进展,而不是结构变化。这些发现表明,JAG1过表达的拯救作用可能不是由于保存了缓慢的氧化纤维,而是通过一种降低收缩性损伤易感性的机制。值得注意的是,我们的研究在控制JAG1表达水平和组织特异性方面存在局限性。我们的研究结果强调了DMD病理的复杂性,其中肌肉结构和功能并不总是相关的,强调需要精确的功能分析来更好地评估治疗结果。通过纳入8-10 dpf的功能恢复评估,斑马鱼模型可以作为更具预测性的临床前工具,潜在地提高研究结果的转化相关性,并降低临床试验中患者的风险。这项研究调查了增加一种叫做JAG1的蛋白质的水平是如何帮助改善斑马鱼DMD模型的肌肉功能的。通过显示肌肉活动的部分恢复,研究结果提出了可能减缓疾病进展并改善患者预后的新治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Genetics
Journal of Genetics 生物-遗传学
CiteScore
3.10
自引率
0.00%
发文量
72
审稿时长
1 months
期刊介绍: The journal retains its traditional interest in evolutionary research that is of relevance to geneticists, even if this is not explicitly genetical in nature. The journal covers all areas of genetics and evolution,including molecular genetics and molecular evolution.It publishes papers and review articles on current topics, commentaries and essayson ideas and trends in genetics and evolutionary biology, historical developments, debates and book reviews. From 2010 onwards, the journal has published a special category of papers termed ‘Online Resources’. These are brief reports on the development and the routine use of molecular markers for assessing genetic variability within and among species. Also published are reports outlining pedagogical approaches in genetics teaching.
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