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Codon identity regulates mRNA stability and translation efficiency during the maternal‐to‐zygotic transition

机译:密码子同一性在母体-合子过渡过程中调节mRNA稳定性和翻译效率。

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摘要

Cellular transitions require dramatic changes in gene expression that are supported by regulated mRNA decay and new transcription. The maternal‐to‐zygotic transition is a conserved developmental progression during which thousands of maternal mRNAs are cleared by post‐transcriptional mechanisms. Although some maternal mRNAs are targeted for degradation by microRNAs, this pathway does not fully explain mRNA clearance. We investigated how codon identity and translation affect mRNA stability during development and homeostasis. We show that the codon triplet contains translation‐dependent regulatory information that influences transcript decay. Codon composition shapes maternal mRNA clearance during the maternal‐to‐zygotic transition in zebrafish, Xenopus, mouse, and Drosophila, and gene expression during homeostasis across human tissues. Some synonymous codons show consistent stabilizing or destabilizing effects, suggesting that amino acid composition influences mRNA stability. Codon composition affects both polyadenylation status and translation efficiency. Thus, the ribosome interprets two codes within the mRNA: the genetic code which specifies the amino acid sequence and a conserved “codon optimality code” that shapes mRNA stability and translation efficiency across vertebrates.
机译:细胞转变需要基因表达的显着变化,并受到调控的mRNA衰变和新转录的支持。母体向合子的过渡是保守的发育过程,在此过程中,转录后机制清除了成千上万的母体mRNA。尽管某些母体mRNA被microRNA降解,但该途径不能完全解释mRNA的清除。我们调查了密码子的身份和翻译如何影响发育和体内稳态过程中的mRNA稳定性。我们表明,密码子三联体包含影响转录物衰变的依赖翻译的调控信息。在斑马鱼,非洲爪蟾,小鼠和果蝇的母体-合子转变过程中,密码子组成决定了母体mRNA的清除,并在整个人体组织的稳态过程中影响了基因表达。一些同义密码子显示出稳定的稳定作用或去稳定作用,表明氨基酸组成会影响mRNA的稳定性。密码子组成会影响聚腺苷酸化状态和翻译效率。因此,核糖体解释了mRNA内的两个密码:指定氨基酸序列的遗传密码和影响整个脊椎动物的mRNA稳定性和翻译效率的保守的“密码子最优密码”。

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