Rare ribosomal RNA sequences from archaea stabilize the bacterial ribosome

Author:

Nissley Amos J1ORCID,Penev Petar I2ORCID,Watson Zoe L3ORCID,Banfield Jillian F245ORCID,Cate Jamie H D12367ORCID

Affiliation:

1. Department of Chemistry, University of California , Berkeley , Berkeley , CA  94720, USA

2. Innovative Genomics Institute, University of California , Berkeley , Berkeley , CA  94720, USA

3. California Institute for Quantitative Biosciences, University of California , Berkeley , Berkeley , CA  94720, USA

4. Earth and Planetary Science, University of California , Berkeley , Berkeley , CA  94720, USA

5. Environmental Science, University of California , Berkeley , Berkeley , CA  94720, USA

6. Department of Molecular and Cell Biology, University of California , Berkeley , Berkeley , CA  94720, USA

7. Molecular Biophysics and Integrated Bioimaging Division, Lawrence Berkeley National Laboratory , Berkeley , CA  94720, USA

Abstract

AbstractThe ribosome serves as the universally conserved translator of the genetic code into proteins and supports life across diverse temperatures ranging from below freezing to above 120°C. Ribosomes are capable of functioning across this wide range of temperatures even though the catalytic site for peptide bond formation, the peptidyl transferase center, is nearly universally conserved. Here we find that Thermoproteota, a phylum of thermophilic Archaea, substitute cytidine for uridine at large subunit rRNA positions 2554 and 2555 (Escherichia coli numbering) in the A loop, immediately adjacent to the binding site for the 3′-end of A-site tRNA. We show by cryo-EM that E. coli ribosomes with uridine to cytidine mutations at these positions retain the proper fold and post-transcriptional modification of the A loop. Additionally, these mutations do not affect cellular growth, protect the large ribosomal subunit from thermal denaturation, and increase the mutational robustness of nucleotides in the peptidyl transferase center. This work identifies sequence variation across archaeal ribosomes in the peptidyl transferase center that likely confers stabilization of the ribosome at high temperatures and develops a stable mutant bacterial ribosome that can act as a scaffold for future ribosome engineering efforts.

Funder

NSF Center for Genetically Encoded Materials (C-GEM

NIH

Innovative Genomics Institute

Chan Zuckerberg Biohub

Publisher

Oxford University Press (OUP)

Subject

Genetics

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