Study / S8UCB95F12020-07-27

Decoding mRNA translatability and stability from the 5′ UTR

Longfei Jia, Yuanhui Mao, Quanquan Ji, Devin Dersh, Jonathan W. Yewdell et al.

About this study

Precise control of protein synthesis by engineering sequence elements in 5′ untranslated regions (5′ UTRs) remains a fundamental challenge. To accelerate our understanding of the cis-regulatory code embedded in 5′ UTRs, we devised massively parallel reporter assays from a synthetic messenger RNA library composed of over one million 5′ UTR variants. A completely randomized 10-nucleotide sequence preceding an upstream open reading frame (uORF) and downstream GFP drives a broad range of translational outputs and mRNA stability in mammalian cells. While efficient translation protects mRNA from degradation, uORF translation triggers mRNA decay in a UPF1-dependent manner. We also identified translational inhibitory elements with G-quadruplexes as marks for mRNA decay in P-bodies. Unexpectedly, an unstructured A-rich element in 5′ UTRs destabilizes mRNAs in the absence of translation, although it enables cap-independent translation. Our results not only identify diverse sequence features of 5′ UTRs that control mRNA translatability, but they also reveal ribosome-dependent and ribosome-independent mRNA-surveillance pathways.

Full author list & citation

Longfei Jia, Yuanhui Mao, Quanquan Ji, Devin Dersh, Jonathan W. Yewdell, Shu-Bing Qian. Decoding mRNA translatability and stability from the 5′ UTR. 2020-07-27. https://doi.org/10.1038/s41594-020-0465-x

Experiments 2

E2V1SA75J

5′-UTR uORF translation by polysome fractionation and FACS gating

A synthetic mRNA MPRA library containing randomized 10-nt 5′ UTR sequences was tested in HEK293-Kb cells with a functional m7G-capped reporter and a non-functional ApppG-capped control. The table integrates input-library, ribosome-fractionation, ApppG fractionation, and 25D1/GFP FACS-gate sequence counts with RPM-normalized and transparent ratio-based measures.

5' UTR / Translation Efficiency MPRA (MPTA)Human
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E9IYJXBZ2

5′-UTR mRNA stability time courses under functional and non-functional caps

The same synthetic randomized 10-nt 5′ UTR mRNA library was followed through functional m7G-capped in-vivo and in-vitro decay time courses, with an ApppG-capped in-vivo control arm. The table provides deposited counts/RPM, transparent time-point log2 changes, and author-reported half-life values where the source workbook reports them.

5' UTR / Translation Efficiency MPRA (MPTA)Human
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Raw source data 21 files

Original supplemental and deposited inputs retained for this study. Download files individually or together as a ZIP; nested folders are preserved. Source reuse terms apply, and sequencing reads may be omitted.

Download all 21 files (ZIP)41594_2020_465_MOESM10_ESM.xlsx41594_2020_465_MOESM11_ESM.xlsx41594_2020_465_MOESM12_ESM.xlsx41594_2020_465_MOESM13_ESM.xlsx41594_2020_465_MOESM14_ESM.xlsx41594_2020_465_MOESM15_ESM.xlsx41594_2020_465_MOESM16_ESM.xlsx41594_2020_465_MOESM17_ESM.xlsx41594_2020_465_MOESM18_ESM.xlsx41594_2020_465_MOESM3_ESM.xlsx41594_2020_465_MOESM4_ESM.xlsx41594_2020_465_MOESM5_ESM.xlsx41594_2020_465_MOESM6_ESM.xlsx41594_2020_465_MOESM7_ESM.xlsx41594_2020_465_MOESM8_ESM.xlsx41594_2020_465_MOESM9_ESM.xlsxbiorxiv_2020.03.13.990887v1_source.xmlGSE145046_family.soft.gzGSE145046_filelist.txtGSE145046_RAW.tarREADME.txt

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