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首页> 外文期刊>Metallomics. integrated biometal science >Multimodal LA-ICP-MS and nanoSIMS imaging enables copper mapping within photoreceptor megamitochondria in a zebrafish model of Menkes disease
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Multimodal LA-ICP-MS and nanoSIMS imaging enables copper mapping within photoreceptor megamitochondria in a zebrafish model of Menkes disease

机译:多模式La-ICP-MS和纳米斯米斯成像使Zebrafish Meants Zebrafish疾病模型中的光感受器兆米菌属中的铜映射

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Copper is essential for eukaryotic life, and animals must acquire this nutrient through the diet and distribute it to cells and organelles for proper function of biological targets. Indeed, mutations in the central copper exporter ATP7A contribute to a spectrum of diseases, including Menkes disease, with symptoms ranging from neurodegeneration to lax connective tissue. As such, a better understanding of the fundamental impacts of ATP7A mutations on in vivo copper distributions is of relevance to those affected by these diseases. Here we combine metal imaging and optical imaging techniques at a variety of spatial resolutions to identify tissues and structures with altered copper levels in the Calamity(gw71) zebrafish model of Menkes disease. Rapid profiling of tissue slices with LA-ICP-MS identified reduced copper levels in the brain, neuroretina, and liver of Menkes fish compared to control specimens. High resolution nanoSIMS imaging of the neuroretina, combined with electron and confocal microscopies, identified the megamitochondria of photoreceptors as loci of copper accumulation in wildtype fish, with lower levels of megamitochondrial copper observed in Calamity(gw71) zebrafish. Interestingly, this localized copper decrease does not result in impaired photoreceptor development or altered megamitochondrial morphology, suggesting the prioritization of copper at sufficient levels for maintaining essential mitochondrial functions. Together, these data establish the Calamity(gw71) zebrafish as an optically transparent in vivo model for the study of neural copper misregulation, illuminate a role for the ATP7A copper exporter in trafficking copper to the neuroretina, and highlight the utility of combining multiple imaging techniques for studying metals in whole organism settings with spatial resolution.
机译:铜对真核生命至关重要,动物必须通过饮食获得这种营养素,并将其分配给细胞和细胞器,以适当的生物靶标。实际上,中央铜出口商ATP7A中的突变有助于一种疾病,包括男性疾病,症状范围从神经变性到疏松疏松结缔组织。因此,更好地理解ATP7A突变对体内铜分布的根本影响与这些疾病影响的人有关。在这里,我们将金属成像和光学成像技术与各种空间分辨率相结合,以识别群体(GW71)斑马鱼类疾病斑马鱼模型的铜水位改变的组织和结构。与La-ICP-MS的组织切片的快速分析确定了与对照样本相比,Meankes Firs的脑,神经内膜和肝脏的铜水平降低。高分辨率Neuroretina的成像,与电子和共聚焦显微镜相结合,将光感受器的兆蒙特摄像机鉴定为野生型鱼中的铜积累的基因座,较低的巨型铜型肿块(GW71)斑马鱼。有趣的是,这种局部铜减少不会导致感光体发育或改变的兆粒细胞形态受损,表明铜的优先化以足够的水平维持基本的线粒体功能。这些数据在一起建立了灾难(GW71)斑马鱼作为神经铜误导研究的体内模型中的光学透明,照亮了ATP7A铜出口国在贩运铜到神经内部的作用,并突出了组合多重成像技术的效用用于使用空间分辨率研究整个生物体环境中的金属。

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