Summary information and primary citation
- PDB-id
-
7zod;
DSSR-derived features in text and
JSON formats; DNAproDB
- Class
- ribosome
- Method
- cryo-EM (2.56 Å)
- Summary
- 70s e. coli ribosome with an extended ul23 loop from
candidatus marinimicrobia
- Reference
-
Ahn M, Wlodarski T, Mitropoulou A, Chan SHS, Sidhu H,
Plessa E, Becker TA, Budisa N, Waudby CA, Beckmann R,
Cassaignau AME, Cabrita LD, Christodoulou J (2022):
"Modulating
co-translational protein folding by rational design and
ribosome engineering." Nat Commun,
13, 4243. doi: 10.1038/s41467-022-31906-z.
- Abstract
- Co-translational folding is a fundamental process for
the efficient biosynthesis of nascent polypeptides that
emerge through the ribosome exit tunnel. To understand how
this process is modulated by the shape and surface of the
narrow tunnel, we have rationally engineered three exit
tunnel protein loops (uL22, uL23 and uL24) of the 70S
ribosome by CRISPR/Cas9 gene editing, and studied the
co-translational folding of an immunoglobulin-like filamin
domain (FLN5). Our thermodynamics measurements employing
<sub>19</sub>F/<sub>15</sub>N/methyl-TROSY
NMR spectroscopy together with cryo-EM and molecular
dynamics simulations reveal how the variations in the
lengths of the loops present across species exert their
distinct effects on the free energy of FLN5 folding. A
concerted interplay of the uL23 and uL24 loops is
sufficient to alter co-translational folding energetics,
which we highlight by the opposite folding outcomes
resulting from their extensions. These subtle modulations
occur through a combination of the steric effects relating
to the shape of the tunnel, the dynamic interactions
between the ribosome surface and the unfolded nascent
chain, and its altered exit pathway within the vestibule.
These results illustrate the role of the exit tunnel
structure in co-translational folding, and provide
principles for how to remodel it to elicit a desired
folding outcome.