Large-scale tethered function assays identify factors that regulate mRNA stability and translation. 2020

En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
Department of Cellular and Molecular Medicine, University of California, San Diego, La Jolla, CA, USA.

The molecular functions of the majority of RNA-binding proteins (RBPs) remain unclear, highlighting a major bottleneck to a full understanding of gene expression regulation. Here, we develop a plasmid resource of 690 human RBPs that we subject to luciferase-based 3'-untranslated-region tethered function assays to pinpoint RBPs that regulate RNA stability or translation. Enhanced UV-cross-linking and immunoprecipitation of these RBPs identifies thousands of endogenous mRNA targets that respond to changes in RBP level, recapitulating effects observed in tethered function assays. Among these RBPs, the ubiquitin-associated protein 2-like (UBAP2L) protein interacts with RNA via its RGG domain and cross-links to mRNA and rRNA. Fusion of UBAP2L to RNA-targeting CRISPR-Cas9 demonstrates programmable translational enhancement. Polysome profiling indicates that UBAP2L promotes translation of target mRNAs, particularly global regulators of translation. Our tethering survey allows rapid assignment of the molecular activity of proteins, such as UBAP2L, to specific steps of mRNA metabolism.

UI MeSH Term Description Entries
D008156 Luciferases Enzymes that oxidize certain LUMINESCENT AGENTS to emit light (PHYSICAL LUMINESCENCE). The luciferases from different organisms have evolved differently so have different structures and substrates. Luciferase
D011132 Polyribosomes A multiribosomal structure representing a linear array of RIBOSOMES held together by messenger RNA; (RNA, MESSENGER); They represent the active complexes in cellular protein synthesis and are able to incorporate amino acids into polypeptides both in vivo and in vitro. (From Rieger et al., Glossary of Genetics: Classical and Molecular, 5th ed) Polysomes,Polyribosome,Polysome
D011994 Recombinant Proteins Proteins prepared by recombinant DNA technology. Biosynthetic Protein,Biosynthetic Proteins,DNA Recombinant Proteins,Recombinant Protein,Proteins, Biosynthetic,Proteins, Recombinant DNA,DNA Proteins, Recombinant,Protein, Biosynthetic,Protein, Recombinant,Proteins, DNA Recombinant,Proteins, Recombinant,Recombinant DNA Proteins,Recombinant Proteins, DNA
D002352 Carrier Proteins Proteins that bind or transport specific substances in the blood, within the cell, or across cell membranes. Binding Proteins,Carrier Protein,Transport Protein,Transport Proteins,Binding Protein,Protein, Carrier,Proteins, Carrier
D002460 Cell Line Established cell cultures that have the potential to propagate indefinitely. Cell Lines,Line, Cell,Lines, Cell
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D001665 Binding Sites The parts of a macromolecule that directly participate in its specific combination with another molecule. Combining Site,Binding Site,Combining Sites,Site, Binding,Site, Combining,Sites, Binding,Sites, Combining
D014176 Protein Biosynthesis The biosynthesis of PEPTIDES and PROTEINS on RIBOSOMES, directed by MESSENGER RNA, via TRANSFER RNA that is charged with standard proteinogenic AMINO ACIDS. Genetic Translation,Peptide Biosynthesis, Ribosomal,Protein Translation,Translation, Genetic,Protein Biosynthesis, Ribosomal,Protein Synthesis, Ribosomal,Ribosomal Peptide Biosynthesis,mRNA Translation,Biosynthesis, Protein,Biosynthesis, Ribosomal Peptide,Biosynthesis, Ribosomal Protein,Genetic Translations,Ribosomal Protein Biosynthesis,Ribosomal Protein Synthesis,Synthesis, Ribosomal Protein,Translation, Protein,Translation, mRNA,mRNA Translations
D014466 Ultraviolet Rays That portion of the electromagnetic spectrum immediately below the visible range and extending into the x-ray frequencies. The longer wavelengths (near-UV or biotic or vital rays) are necessary for the endogenous synthesis of vitamin D and are also called antirachitic rays; the shorter, ionizing wavelengths (far-UV or abiotic or extravital rays) are viricidal, bactericidal, mutagenic, and carcinogenic and are used as disinfectants. Actinic Rays,Black Light, Ultraviolet,UV Light,UV Radiation,Ultra-Violet Rays,Ultraviolet Light,Ultraviolet Radiation,Actinic Ray,Light, UV,Light, Ultraviolet,Radiation, UV,Radiation, Ultraviolet,Ray, Actinic,Ray, Ultra-Violet,Ray, Ultraviolet,Ultra Violet Rays,Ultra-Violet Ray,Ultraviolet Black Light,Ultraviolet Black Lights,Ultraviolet Radiations,Ultraviolet Ray
D016366 Open Reading Frames A sequence of successive nucleotide triplets that are read as CODONS specifying AMINO ACIDS and begin with an INITIATOR CODON and end with a stop codon (CODON, TERMINATOR). ORFs,Protein Coding Region,Small Open Reading Frame,Small Open Reading Frames,sORF,Unassigned Reading Frame,Unassigned Reading Frames,Unidentified Reading Frame,Coding Region, Protein,Frame, Unidentified Reading,ORF,Open Reading Frame,Protein Coding Regions,Reading Frame, Open,Reading Frame, Unassigned,Reading Frame, Unidentified,Region, Protein Coding,Unidentified Reading Frames

Related Publications

En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
April 1997, Methods (San Diego, Calif.),
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
July 2006, Virus research,
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
April 2017, Journal of biochemistry,
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
November 2002, Biochemical Society transactions,
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
January 2006, Methods in molecular biology (Clifton, N.J.),
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
January 2019, Advances in experimental medicine and biology,
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
November 2021, iScience,
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
June 2023, Annual review of biochemistry,
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
January 2013, Methods in molecular biology (Clifton, N.J.),
En-Ching Luo, and Jason L Nathanson, and Frederick E Tan, and Joshua L Schwartz, and Jonathan C Schmok, and Archana Shankar, and Sebastian Markmiller, and Brian A Yee, and Shashank Sathe, and Gabriel A Pratt, and Duy B Scaletta, and Yuanchi Ha, and David E Hill, and Stefan Aigner, and Gene W Yeo
December 2014, Plant molecular biology,
Copied contents to your clipboard!