Section on Protein Biosynthesis, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, MD 20892, USA.
Section on Structural and Chemical Biology of Membrane Proteins, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, MD 20892, USA.
Mol Cell. 2021 Oct 7;81(19):3904-3918.e6. doi: 10.1016/j.molcel.2021.07.020. Epub 2021 Aug 9.
Polyamines, small organic polycations, are essential for cell viability, and their physiological levels are homeostatically maintained by post-transcriptional regulation of key biosynthetic enzymes. In addition to de novo synthesis, cells can also take up polyamines; however, identifying cellular polyamine transporters has been challenging. Here we show that the S. cerevisiae HOL1 mRNA is under translational control by polyamines, and we reveal that the encoded membrane transporter Hol1 is a high-affinity polyamine transporter and is required for yeast growth under limiting polyamine conditions. Moreover, we show that polyamine inhibition of the translation factor eIF5A impairs translation termination at a Pro-Ser-stop motif in a conserved upstream open reading frame on the HOL1 mRNA to repress Hol1 synthesis under conditions of elevated polyamines. Our findings reveal that polyamine transport, like polyamine biosynthesis, is under translational autoregulation by polyamines in yeast, highlighting the extensive control cells impose on polyamine levels.
多胺是一类小分子有机聚阳离子,对于细胞存活至关重要,其生理水平通过关键生物合成酶的转录后调控得以维持。除从头合成外,细胞还可以摄取多胺;然而,鉴定细胞多胺转运蛋白一直具有挑战性。在这里,我们表明 S. cerevisiae 的 HOL1 mRNA 受到多胺的翻译调控,并且我们揭示了编码的膜转运蛋白 Hol1 是一种高亲和力的多胺转运蛋白,并且在限制多胺条件下酵母生长是必需的。此外,我们表明多胺抑制翻译因子 eIF5A 会在 HOL1 mRNA 上的保守上游开放阅读框中的 Pro-Ser- 终止密码子处损害翻译终止,从而在多胺水平升高的情况下抑制 Hol1 合成。我们的发现表明,多胺转运与多胺生物合成一样,在酵母中受到多胺的翻译自调控,这突出了细胞对多胺水平的广泛控制。