6gzz Citations

Cryo-EM structure of the hibernating Thermus thermophilus 100S ribosome reveals a protein-mediated dimerization mechanism.

OpenAccess logo Nat Commun 9 4179 (2018)
Related entries: 6gzq, 6gzx

Cited: 21 times
EuropePMC logo PMID: 30301898

Abstract

In response to cellular stresses bacteria conserve energy by dimerization of ribosomes into inactive hibernating 100S ribosome particles. Ribosome dimerization in Thermus thermophilus is facilitated by hibernation-promoting factor (TtHPF). In this study we demonstrate high sensitivity of Tt100S formation to the levels of TtHPF and show that a 1:1 ratio leads to optimal dimerization. We report structures of the T. thermophilus 100S ribosome determined by cryo-electron microscopy to average resolutions of 4.13 Å and 4.57 Å. In addition, we present a 3.28 Å high-resolution cryo-EM reconstruction of a 70S ribosome from a hibernating ribosome dimer and reveal a role for the linker region connecting the TtHPF N- and C-terminal domains in translation inhibition by preventing Shine-Dalgarno duplex formation. Our work demonstrates that species-specific differences in the dimerization interface govern the overall conformation of the 100S ribosome particle and that for Thermus thermophilus no ribosome-ribosome interactions are involved in the interface.

Reviews citing this publication (7)

  1. Stress response as implemented by hibernating ribosomes: a structural overview. Matzov D, Bashan A, Yap MF, Yonath A. FEBS J 286 3558-3565 (2019)
  2. The diversity of Shine-Dalgarno sequences sheds light on the evolution of translation initiation. Wen JD, Kuo ST, Chou HD. RNA Biol 18 1489-1500 (2021)
  3. Ribosome hibernation: a new molecular framework for targeting nonreplicating persisters of mycobacteria. Li Y, Sharma MR, Koripella RK, Banavali NK, Agrawal RK, Ojha AK. Microbiology (Reading) 167 (2021)
  4. Ribosomal Hibernation-Associated Factors in Escherichia coli. Maki Y, Yoshida H. Microorganisms 10 33 (2021)
  5. Amyloidogenic Peptides: New Class of Antimicrobial Peptides with the Novel Mechanism of Activity. Galzitskaya OV, Kurpe SR, Panfilov AV, Glyakina AV, Grishin SY, Kochetov AP, Deryusheva EI, Machulin AV, Kravchenko SV, Domnin PA, Surin AK, Azev VN, Ermolaeva SA. Int J Mol Sci 23 5463 (2022)
  6. Ribosome profiling enhances understanding of mycobacterial translation. Sawyer EB, Cortes T. Front Microbiol 13 976550 (2022)
  7. The Discovery of Ribosomal Protein bL31 from Escherichia coli: A Long Story Revisited. Wada A, Ueta M, Wada C. Int J Mol Sci 24 3445 (2023)

Articles citing this publication (14)