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硒蛋白N相关先天性肌病的斑马鱼和细胞模型展现出新型胚胎和代谢表型。

Zebrafish and cellular models of SELENON-Congenital myopathy exhibit novel embryonic and metabolic phenotypes.

作者信息

Barraza-Flores Pamela, Moghadaszadeh Behzad, Lee Won, Isaac Biju, Sun Liang, Hickey Emily T, Rockowitz Shira, Sliz Piotr, Beggs Alan H

机构信息

Division of Genetics and Genomics, The Manton Center for Orphan Disease Research, Boston Children's Hospital, Harvard Medical School, Boston, MA, USA.

Research Computing, Information Technology Department, Boston Children's Hospital, Boston, MA, USA.

出版信息

Skelet Muscle. 2025 Mar 15;15(1):7. doi: 10.1186/s13395-025-00376-4.

Abstract

BACKGROUND

SELENON-Congenital Myopathy (SELENON-CM) is a rare congenital myopathy caused by mutations of the SELENON gene characterized by axial muscle weakness and progressive respiratory insufficiency. Muscle histopathology may be non-specific, but commonly includes multiminicores or a dystrophic pattern. The SELENON gene encodes selenoprotein N (SelN), a selenocysteine-containing redox enzyme located in the endo/sarcoplasmic reticulum membrane where it colocalizes with mitochondria-associated membranes. However, the molecular mechanism(s) by which SelN deficiency cause SELENON-CM remain poorly understood. A hurdle is the lack of cellular and animal models that show easily assayable phenotypes.

METHODS

Using CRISPR-Cas9 we generated three zebrafish models of SELENON-CM, which were then studied by spontaneous coiling, hatching, and activity assays. We also performed selenon coexpression analysis using a single cell RNAseq zebrafish embryo-atlas. SelN-deficient myoblasts were generated and assayed for glutathione, reactive oxygen species, carbonylation, and nytrosylation levels. Finally, we tested Selenon-deficient myoblasts' metabolism using a Seahorse cell respirometer.

RESULTS

We report deep-phenotyping of SelN-deficient zebrafish and muscle cells. SelN-deficient zebrafish exhibit changes in embryonic muscle function and swimming activity in larvae. Analysis of single cell RNAseq data in a zebrafish embryo-atlas revealed coexpression of selenon and genes involved in the glutathione redox pathway. SelN-deficient zebrafish and mouse myoblasts exhibit altered glutathione and redox homeostasis, as well as abnormal patterns of energy metabolism, suggesting roles for SelN in these functions.

CONCLUSIONS

These data demonstrate a role for SelN in zebrafish early development and myoblast metabolism and provide a basis for cellular and animal model assays for SELENON-CM.

摘要

背景

硒蛋白N相关先天性肌病(SELENON-CM)是一种由SELENON基因突变引起的罕见先天性肌病,其特征为轴性肌无力和进行性呼吸功能不全。肌肉组织病理学可能不具有特异性,但通常包括多微小核或营养不良模式。SELENON基因编码硒蛋白N(SelN),这是一种含硒半胱氨酸的氧化还原酶,位于内质网/肌浆网膜中,与线粒体相关膜共定位。然而,SelN缺乏导致SELENON-CM的分子机制仍知之甚少。一个障碍是缺乏具有易于检测表型的细胞和动物模型。

方法

我们使用CRISPR-Cas9技术构建了三种SELENON-CM斑马鱼模型,然后通过自发卷曲、孵化和活性测定对其进行研究。我们还使用单细胞RNA测序斑马鱼胚胎图谱进行了硒蛋白N共表达分析。生成了缺乏SelN的成肌细胞,并检测了其谷胱甘肽、活性氧、羰基化和亚硝基化水平。最后,我们使用海马细胞呼吸仪测试了缺乏硒蛋白N的成肌细胞的代谢情况。

结果

我们报告了缺乏SelN的斑马鱼和肌肉细胞的深度表型分析。缺乏SelN的斑马鱼在胚胎期肌肉功能和幼体游泳活动方面出现变化。对斑马鱼胚胎图谱中的单细胞RNA测序数据进行分析,揭示了硒蛋白N与参与谷胱甘肽氧化还原途径的基因共表达。缺乏SelN的斑马鱼和成肌细胞表现出谷胱甘肽和氧化还原稳态改变,以及能量代谢异常模式,表明SelN在这些功能中发挥作用。

结论

这些数据证明了SelN在斑马鱼早期发育和成肌细胞代谢中的作用,并为SELENON-CM的细胞和动物模型检测提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dca0/11909958/04cfca804797/13395_2025_376_Fig1_HTML.jpg

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