首页> 外文期刊>eLife journal >Sam68 promotes self-renewal and glycolytic metabolism in mouse neural progenitor cells by modulating Aldh1a3 pre-mRNA 3'-end processing
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Sam68 promotes self-renewal and glycolytic metabolism in mouse neural progenitor cells by modulating Aldh1a3 pre-mRNA 3'-end processing

机译:Sam68通过调节Aldh1a3 pre-mRNA 3'-end处理来促进小鼠神经祖细胞的自我更新和糖酵解代谢

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Neurons develop from cells called neural progenitors. These cells can either divide to produce more progenitor cells or develop into specific types of neurons. These two activities – known as self-renewal and differentiation – must be balanced to produce the right number of specialized neurons, without depleting the pool of progenitor cells. The self-renewal and differentiation of progenitor cells is balanced by essentially regulating which genes are active, or expressed, within the cells. In the first step of gene expression, the genetic instructions are copied to form a molecule of pre-messenger RNA (or pre-mRNA for short). Each pre-mRNA molecule is then processed to produce a final product that can be translated into protein. Importantly, two copies of the same pre-mRNA may sometimes be processed in different ways, which allows multiple proteins to be produced from a single gene. RNA-binding proteins control pre-mRNA processing. The expression of one such protein, called Sam68, oscillates during the development of the nervous system, such that its expression peaks when there is intense production of new neurons and then declines. However, it was not known whether Sam68 actually helps neurons to develop. La Rosa et al. have now analysed the role of Sam68 in the developing brain of mice. The experiments confirmed that Sam68 is highly expressed in neural progenitor cells and showed that its levels dictate the cell’s fate high expression encourages a cell to self-renew, while low expression triggers it to develop into a specialized neuron. Further investigation revealed that Sam68 works by promoting the expression of a metabolic enzyme called Aldehyde Dehydrogenase 1A3 or ALDH1A3. This enzyme promotes the release of energy from molecules of glucose via a process known as anaerobic glycolysis. La Rosa et al. found that cells that lack Sam68 make a truncated version of the pre-mRNA encoding ALDH1A3. This truncated pre-mRNA encodes a shortened version of the enzyme that is inactive. Further experiments confirmed that Sam68 normally prevents this from happening by binding to the pre-mRNA and processing it to produce the full-length, working version of the ALDH1A3 enzyme. Also, La Rosa et al. found that progenitor cells need working ALDH1A3 to keep them dividing, and to stop them from developing into specialized neurons too soon. Finally, because the processing of pre-RNA plays a major role in brain development, problems with this process often lead to intellectual disabilities and neurodegenerative diseases, such as autism spectrum disorder and amyotrophic lateral sclerosis. The next step following on from these new findings will be to investigate whether defects in Sam68 contribute to such conditions and, if so, to look for ways to counteract these defects.
机译:神经元从称为神经祖细胞的细胞发育而来。这些细胞可以分裂产生更多的祖细胞,也可以发育成特定类型的神经元。必须平衡这两项活动(称为自我更新和分化),以产生正确数量的特化神经元,而不会耗尽祖细胞库。祖细胞的自我更新和分化可通过基本调节哪些基因在细胞内活跃或表达而达到平衡。在基因表达的第一步,复制遗传指令以形成前信使RNA(或简称为pre-mRNA)分子。然后处理每个前mRNA分子以产生可以翻译成蛋白质的最终产物。重要的是,有时可能会以不同的方式处理相同前mRNA的两个拷贝,从而可以从单个基因中产生多种蛋白质。 RNA结合蛋白控制前mRNA加工。一种名为Sam68的蛋白质的表达在神经系统发育过程中振荡,因此当大量产生新的神经元时,其表达达到峰值,然后下降。但是,尚不清楚Sam68是否真正帮助神经元发育。拉罗莎等。现在已经分析了Sam68在小鼠大脑发育中的作用。实验证实,Sam68在神经祖细胞中高表达,并表明其水平决定了细胞的命运。高表达会促使细胞自我更新,而低表达会促使其发展成专门的神经元。进一步的研究表明,Sam68通过促进称为醛脱氢酶1A3或ALDH1A3的代谢酶的表达起作用。该酶通过称为厌氧糖酵解的过程促进葡萄糖分子释放能量。拉罗莎等。发现缺少Sam68的细胞可形成编码ALDH1A3的pre-mRNA的截短版本。这种截短的前mRNA编码的是无活性酶的缩短版本。进一步的实验证实,Sam68通常通过与前mRNA结合并对其进行加工以产生全长,工作形式的ALDH1A3酶来阻止这种情况的发生。此外,拉罗莎等。发现祖细胞需要工作的ALDH1A3才能保持分裂,并阻止它们过早发育成专门的神经元。最后,由于前RNA的加工在大脑发育中起着重要作用,因此该过程中的问题通常会导致智力障碍和神经退行性疾病,例如自闭症谱系障碍和肌萎缩性侧索硬化症。从这些新发现中得出的下一步将是调查Sam68中的缺陷是否导致这种情况,如果是,则寻找解决这些缺陷的方法。

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