Sternopygus macrurus electric organ transcriptome and cell size exhibit insensitivity to short-term electrical inactivity

Q Medicine
Robert Güth , Matthew Pinch , Manoj P. Samanta , Alexander Chaidez , Graciela A. Unguez
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引用次数: 4

Abstract

Electrical activity is an important regulator of cellular function and gene expression in electrically excitable cell types. In the weakly electric teleost fish Sternopygus macrurus, electrocytes, i.e., the current-producing cells of the electric organ, derive from a striated muscle lineage. Mature electrocytes are larger than muscle fibers, do not contain sarcomeres, and are driven continuously at frequencies higher than those exerted on muscle cells. Previous work showed that the removal of electrical activity by spinal cord transection (ST) for two and five weeks led to an upregulation of some sarcomeric proteins and a decrease in electrocyte size. To test whether changes in gene transcription preceded these phenotypic changes, we determined the sensitivity of electrocyte gene expression to electrical inactivity periods of two and five days after ST. Whole tissue gene expression profiles using deep RNA sequencing showed minimal alterations in the levels of myogenic transcription factor and sarcomeric transcripts after either ST period. Moreover, while analysis of differentially expressed genes showed a transient upregulation of genes associated with proteolytic mechanisms at two days and an increase in mRNA levels of cytoskeletal genes at five days after electrical silencing, electrocyte size was not affected. Electrical inactivity also resulted in the downregulation of genes that were classified into enriched clusters associated with functions of axon migration and synapse structure. Overall, these data demonstrate that unlike tissues in the myogenic lineage in other vertebrate species, regulation of gene transcription and cell size in the muscle-like electrocytes of S. macrurus is highly insensitive to short-term electrical inactivity. Moreover, together with data obtained from control and long-term ST studies, the present data suggest that neural input might influence post-transcriptional processes to affect the mature electrocyte phenotype.

Abstract Image

胸巨鱼的电器官转录组和细胞大小对短期电不活动不敏感
在电兴奋型细胞中,电活动是细胞功能和基因表达的重要调节因子。在弱电硬骨鱼胸骨巨鱼(Sternopygus marrurus)中,电细胞,即电器官的电流产生细胞,来自横纹肌谱系。成熟的电细胞比肌纤维大,不含肌节,并且以比施加在肌肉细胞上的频率更高的频率连续驱动。先前的研究表明,通过脊髓横断(ST)去除2周和5周的电活动导致一些肌肉蛋白的上调和电细胞大小的减小。为了测试基因转录的变化是否先于这些表型变化,我们测定了ST后2天和5天电不活动期电细胞基因表达的敏感性。使用深度RNA测序的整个组织基因表达谱显示,在ST后的任何一个时期,肌源性转录因子和肉瘤转录物的水平都有微小的变化。此外,虽然对差异表达基因的分析显示,在电沉默后的第2天,与蛋白水解机制相关的基因出现了短暂的上调,而在第5天,细胞骨架基因的mRNA水平有所增加,但电细胞的大小并未受到影响。电不活动也导致基因下调,这些基因被归类为与轴突迁移和突触结构功能相关的富集簇。总的来说,这些数据表明,与其他脊椎动物的肌源性谱系不同,大鼠肌样电细胞的基因转录和细胞大小调节对短期电不活动高度不敏感。此外,结合从对照和长期ST研究中获得的数据,目前的数据表明,神经输入可能影响转录后过程,从而影响成熟电细胞表型。
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来源期刊
Journal of Physiology-Paris
Journal of Physiology-Paris 医学-神经科学
CiteScore
2.02
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Each issue of the Journal of Physiology (Paris) is specially commissioned, and provides an overview of one important area of neuroscience, delivering review and research papers from leading researchers in that field. The content will interest both those specializing in the experimental study of the brain and those working in interdisciplinary fields linking theory and biological data, including cellular neuroscience, mathematical analysis of brain function, computational neuroscience, biophysics of brain imaging and cognitive psychology.
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