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Meurs, R.

Publications and source records attributed to Meurs, R..

2 recordsLinked to original sources

An in vitro assay of MCTS1-DENR-dependent re-initiation and ribosome profiling uncover the activity of MCTS2 and distinct function of eIF2D

Ribosomes scanning from the mRNA 5' cap to the start codon may initiate at upstream open reading frames (uORFs), decreasing protein biosynthesis. Termination at a uORF can lead to re-initiation, where the 40S subunit resumes scanning and initiates another translation event downstream. In mammals, the noncanonical translation factors MCTS1-DENR participate in re-initiation at specific uORFs, but knowledge of other trans-acting factors and uORF features influencing re-initiation is limited. Here, we describe a cell-free re-initiation assay using HeLa cell lysates. Comparing in vivo and in vitro re-initiation activities on uORF-containing model reporters, we validate that MCTS1-DENR-dependent re-initiation is accurately recapitulated in vitro. Using this system and ribosome profiling in cultured cells, we found that knockdown of the homolog eIF2D causes widespread gene expression deregulation unrelated to uORF translation, suggesting distinct functions from MCTS1-DENR. Additionally, we identified MCTS2, encoded by a retrogene copy of Mcts1, as an alternative DENR partner that promotes re-initiation in vitro, providing a plausible explanation for the striking clinical differences associated with Denr vs. Mcts1 mutations in humans. Our findings on re-initiation and the new assay provide valuable insights and a powerful tool for future research on uORF features and trans-acting factors.

molecular biology↗

Drosophila cap-binding protein eiF4EHP promotes translation via a 3'UTR-dependent mechanism under hypoxia and contributes to fruit fly adaptation to oxygen variations

Hypoxia induces profound modifications in gene expression program enabling eukaryotic cells to adapt to lowered ATP supply resulting from the blockade of oxidative phosphorylation. One major consequence of oxygen deprivation is the massive repression of protein synthesis, leaving a limited set of mRNAs to be translated. D. melanogaster is strongly resistant to oxygen fluctuations, however the mechanisms allowing specific mRNA to be translated in hypoxia are still unknown. Here, we show that Ldh mRNA encoding lactate dehydrogenase is highly translated in hypoxia by a mechanism involving its 3 untranslated region. Furthermore, we identified the cap-binding protein eiF4HP as a main factor involved in 3UTR-dependent translation under hypoxia. In accordance with this observation, we show that eiF4EHP is necessary for Drosophila development under low oxygen concentrations and contributes to Drosophila mobility after hypoxic challenge. Altogether, our data bring new insight into mechanisms contributing to Drosophila adaptation to oxygen variations.

molecular biology↗