bioRxiv Science⌕ Search

Biology subjects

Brekker, M. A.

Publications and source records attributed to Brekker, M. A..

2 recordsLinked to original sources

eIF4E3 drives translation of viral mRNAs with short 5' UTRs

Eukaryotic cells express three paralogs of the cap-binding protein eIF4E, yet the functions of the less-studied family members remain poorly understood. Here we demonstrate that eIF4E3, a paralog whose expression is tissue-restricted and whose activity is insensitive to inhibition by eIF4E-binding proteins (4EBPs), drives efficient translation of viral mRNAs with short 5 untranslated regions (UTRs). Many negative-strand RNA viruses (NSVs), including vesicular stomatitis virus (VSV), respiratory syncytial virus (RSV), and influenza A virus (IAV), produce mRNAs with extremely short 5UTRs that are incompatible with canonical cap-dependent scanning translation initiation. Using an auxin-inducible degron (AID) system to acutely deplete endogenous eukaryotic initiation factors during active viral infection, we demonstrate that translation of these short-UTR viral mRNAs occurs independently of eIF4E1, the canonical cap-binding protein, while remaining dependent on eIF4E3. In contrast, Ebola virus (EBOV), whose mRNAs bear long, structured 5UTRs, remains eIF4E1-dependent, implicating 5UTR length and structural complexity as cis determinants of eIF4E paralog selectivity. During VSV infection, 4EBP dephosphorylation sequesters eIF4E1 and broadly suppresses host cap-dependent translation. Because eIF4E3 escapes 4EBP-mediated regulation and preferentially engages short, unstructured 5UTRs, it is uniquely positioned to sustain viral protein synthesis under these conditions. These findings reveal that VSV exploits a cellular paralog-switching mechanism by co-opting eIF4E3 to maintain viral translation when canonical eIF4F activity is suppressed and establish eIF4E3 as a proviral factor whose tissue-restricted expression in the lung may influence susceptibility to clinically important respiratory pathogens.

molecular biology↗

Proteolytic dissection of eIF4G reveals the closed-loop mRNP as an architecture for translation repression.

Formation of a "closed-loop" mRNP, in which the 5' cap and 3' poly(A) tail are bridged by eIF4E-eIF4G-PABP interactions, has long been proposed to drive efficient translation initiation. Direct tests of this model in mammalian cells have remained elusive. Using auxin-inducible degron (AID) technology to acutely deplete eIF4G1, we find that global translation is only partially reduced and recovers without restoration of eIF4G1 levels. We identify eIF4G3 as an underappreciated contributor to basal translation that buffers translational output upon eIF4G1 loss without increased protein expression, explaining the modest defects observed in prior RNAi-based studies. Systematic replacement of eIF4G1 with defined cleavage products and interaction mutants reveals that PABP binding by eIF4G1 is dispensable for bulk translation initiation: the central caspase-3 cleavage fragment of eIF4G1 (casp3-cpM), which lacks the PABP-interaction domain, fully rescues global protein synthesis, and acute depletion of both major cytoplasmic PABP paralogs primarily destabilizes mRNAs rather than impairing initiation. In contrast, the N-terminal enteroviral 2A cleavage product (2A-cpN) is a potent, dominant translational repressor that requires simultaneous eIF4E and PABP engagement to form a dead-end closed-loop mRNP that sequesters initiation factors without enabling 43S recruitment. These findings reveal that the eIF4G-PABP closed-loop architecture is not required for productive initiation but can be actively co-opted for translational silencing. This explains why viral eIF4G cleavage, but not factor depletion, produces near-complete translational shutoff. The modular architecture of eIF4G enables diametrically opposing translational outcomes through selective proteolytic processing.

molecular biology↗