bioRxiv ScienceSearch

Biology subjects

Fenzl, K.

Publications and source records attributed to Fenzl, K..

2 recordsLinked to original sources

Nα-terminal acetylation of proteins by NatA and NatB serves distinct physiological roles in Saccharomyces cerevisiae

SO_SCPLOWUMMARYC_SCPLOWN-terminal (Nt)-acetylation is a highly prevalent co-translational protein modification in eukaryotes, catalyzed by at least five Nt-acetyltransferases (Nat) with differing specificities. Nt-acetylation has been implicated in protein quality control but its broad biological significance remains elusive. We investigated the roles of the two major Nats of S. cerevisiae, NatA and NatB, by performing transcriptome, translatome and proteome profiling of natA{Delta} and natB{Delta} mutants. Our results do not support a general role of Nt-acetylation in protein degradation but reveal an unexpected range of Nat-specific phenotypes. NatA is implicated in systemic adaptation control, as natA{Delta} mutants display altered expression of transposons, sub-telomeric genes, pheromone response genes and nuclear genes encoding mitochondrial ribosomal proteins. NatB predominantly affects protein folding, as natB{Delta} mutants accumulate protein aggregates, induce stress responses and display reduced fitness in absence of the ribosome-associated chaperone Ssb. These phenotypic differences indicate that controlling Nat activities may serve to elicit distinct cellular responses.

molecular biology

Selective 40S footprinting reveals that scanning ribosomes remain cap-tethered in human cells

Translation regulation occurs largely during initiation. Currently, translation initiation can be studied in vitro, but these systems lack features present in vivo and on endogenous mRNAs. Here we develop selective 40S footprinting for visualizing initiating 40S ribosomes on endogenous mRNAs in vivo. It pinpoints where on an mRNA initiation factors join the ribosome to act, and where they leave. We discover that in human cells most scanning ribosomes remain attached to the 5 cap. Consequently, only one ribosome scans a 5UTR at a time, and 5UTR length affects translation efficiency. We discover that eIF3B, eIF4G1 and eIF4E remain on translating 80S ribosomes with a decay half-length of [~]12 codons. Hence ribosomes retain these initiation factors while translating short upstream Open Reading Frames (uORFs), providing an explanation for how ribosomes can re-initiate translation after uORFs in humans. This method will be of use for studying translation initiation mechanisms in vivo.\n\nHIGHLIGHTSO_LISelective 40S FPing visualizes regulation of translation initiation on mRNAs in vivo\nC_LIO_LIScanning ribosomes are cap-tethered in human cells\nC_LIO_LIOnly one ribosome scans a 5UTR at a time in human cells\nC_LIO_LIRibosomes retain eIFs during early translation, allowing reinitiation after uORFs\nC_LI

molecular biology