rRNA expansion segment 27Lb modulates the factor recruitment capacity of the yeast ribosome and shapes the proteome
Author(s) -
Vaishnavi Shankar,
Robert Rauscher,
Julia Reuther,
Walid H. Gharib,
Miriam Koch,
Norbert Polacek
Publication year - 2020
Publication title -
nucleic acids research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.008
H-Index - 537
eISSN - 1362-4954
pISSN - 0305-1048
DOI - 10.1093/nar/gkaa003
Subject(s) - biology , proteostasis , ribosome , ribosomal rna , ribosomal protein , translation (biology) , protein biosynthesis , saccharomyces cerevisiae , proteome , eukaryotic large ribosomal subunit , eukaryotic small ribosomal subunit , eukaryotic ribosome , genetics , computational biology , microbiology and biotechnology , 18s ribosomal rna , messenger rna , yeast , rna , gene
Fine-tuned regulation of protein biosynthesis is crucial for cellular fitness and became even more vital when cellular and organismal complexity increased during the course of evolution. In order to cope with this augmented demand for translation control, eukaryal ribosomes have gained extensions both at the ribosomal protein and rRNA levels. Here we analyze the functional role of ES27L, an rRNA expansion segment in the large ribosomal subunit of Saccharomyces cerevisiae. Deletion of the b-arm of this expansion segment, called ES27Lb, did not hamper growth during optimal conditions, thus demonstrating that this 25S rRNA segment is not inherently crucial for ribosome functioning. However, reductive stress results in retarded growth and rendered unique protein sets prone to aggregation. Lack of ES27Lb negatively affects ribosome-association of known co-translational N-terminal processing enzymes which in turn contributes to the observed protein aggregation. Likely as a compensatory response to these challenges, the truncated ribosomes showed re-adjusted translation of specific sets of mRNAs and thus fine-tune the translatome in order to re-establish proteostasis. Our study gives comprehensive insight into how a highly conserved eukaryal rRNA expansion segment defines ribosomal integrity, co-translational protein maturation events and consequently cellular fitness.
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