[English] 日本語

- EMDB-0047: Cryo-EM reconstruction of yeast 80S ribosome in complex with mRNA... -
+
Open data
-
Basic information
Entry | ![]() | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
Title | Cryo-EM reconstruction of yeast 80S ribosome in complex with mRNA, tRNA and eEF2 (GMPPCP/sordarin) | |||||||||
![]() | ||||||||||
![]() |
| |||||||||
Function / homology | ![]() Peptide chain elongation / Synthesis of diphthamide-EEF2 / positive regulation of translational elongation / maturation of SSU-rRNA from tricistronic rRNA transcript (SSU-rRNA, LSU-rRNA,5S) / Negative regulators of DDX58/IFIH1 signaling / negative regulation of glucose mediated signaling pathway / positive regulation of translational fidelity / RMTs methylate histone arginines / Protein methylation / mTORC1-mediated signalling ...Peptide chain elongation / Synthesis of diphthamide-EEF2 / positive regulation of translational elongation / maturation of SSU-rRNA from tricistronic rRNA transcript (SSU-rRNA, LSU-rRNA,5S) / Negative regulators of DDX58/IFIH1 signaling / negative regulation of glucose mediated signaling pathway / positive regulation of translational fidelity / RMTs methylate histone arginines / Protein methylation / mTORC1-mediated signalling / Protein hydroxylation / ribosome-associated ubiquitin-dependent protein catabolic process / GDP-dissociation inhibitor activity / positive regulation of nuclear-transcribed mRNA catabolic process, deadenylation-dependent decay / pre-mRNA 5'-splice site binding / Formation of the ternary complex, and subsequently, the 43S complex / Translation initiation complex formation / Ribosomal scanning and start codon recognition / preribosome, small subunit precursor / cleavage in ITS2 between 5.8S rRNA and LSU-rRNA of tricistronic rRNA transcript (SSU-rRNA, 5.8S rRNA, LSU-rRNA) / nonfunctional rRNA decay / response to cycloheximide / Major pathway of rRNA processing in the nucleolus and cytosol / mRNA destabilization / SRP-dependent cotranslational protein targeting to membrane / GTP hydrolysis and joining of the 60S ribosomal subunit / negative regulation of translational frameshifting / Nonsense Mediated Decay (NMD) independent of the Exon Junction Complex (EJC) / Nonsense Mediated Decay (NMD) enhanced by the Exon Junction Complex (EJC) / negative regulation of mRNA splicing, via spliceosome / Formation of a pool of free 40S subunits / preribosome, large subunit precursor / L13a-mediated translational silencing of Ceruloplasmin expression / endonucleolytic cleavage to generate mature 3'-end of SSU-rRNA from (SSU-rRNA, 5.8S rRNA, LSU-rRNA) / regulation of amino acid metabolic process / translational elongation / ribosomal large subunit export from nucleus / 90S preribosome / G-protein alpha-subunit binding / positive regulation of protein kinase activity / Ub-specific processing proteases / translation elongation factor activity / ribosomal subunit export from nucleus / endonucleolytic cleavage in ITS1 to separate SSU-rRNA from 5.8S rRNA and LSU-rRNA from tricistronic rRNA transcript (SSU-rRNA, 5.8S rRNA, LSU-rRNA) / regulation of translational fidelity / protein-RNA complex assembly / translational termination / maturation of LSU-rRNA / ribosomal small subunit export from nucleus / translation regulator activity / Neutrophil degranulation / rescue of stalled ribosome / DNA-(apurinic or apyrimidinic site) endonuclease activity / cellular response to amino acid starvation / ribosome assembly / maturation of LSU-rRNA from tricistronic rRNA transcript (SSU-rRNA, 5.8S rRNA, LSU-rRNA) / ribosomal large subunit biogenesis / maturation of SSU-rRNA from tricistronic rRNA transcript (SSU-rRNA, 5.8S rRNA, LSU-rRNA) / protein kinase C binding / maturation of SSU-rRNA / small-subunit processome / translational initiation / macroautophagy / maintenance of translational fidelity / modification-dependent protein catabolic process / protein tag activity / cytoplasmic stress granule / rRNA processing / ribosome biogenesis / protein-folding chaperone binding / ribosome binding / ribosomal small subunit biogenesis / ribosomal small subunit assembly / small ribosomal subunit / 5S rRNA binding / ribosomal large subunit assembly / cytosolic small ribosomal subunit / large ribosomal subunit rRNA binding / small ribosomal subunit rRNA binding / Hydrolases; Acting on acid anhydrides; Acting on GTP to facilitate cellular and subcellular movement / cytosolic large ribosomal subunit / cytoplasmic translation / negative regulation of translation / rRNA binding / protein ubiquitination / ribosome / structural constituent of ribosome / G protein-coupled receptor signaling pathway / translation / ribonucleoprotein complex / negative regulation of gene expression / response to antibiotic / GTPase activity / mRNA binding / ubiquitin protein ligase binding / GTP binding / nucleolus / mitochondrion / RNA binding / zinc ion binding Similarity search - Function | |||||||||
Biological species | ![]() ![]() ![]() ![]() | |||||||||
Method | single particle reconstruction / cryo EM / Resolution: 4.4 Å | |||||||||
![]() | Pellegrino S / Demeshkina N / Mancera-Martinez E / Melnikov S / Simonetti A / Myasnikov A / Yusupov M / Yusupova G / Hashem Y | |||||||||
![]() | ![]() Title: Structural Insights into the Role of Diphthamide on Elongation Factor 2 in mRNA Reading-Frame Maintenance. Authors: Simone Pellegrino / Natalia Demeshkina / Eder Mancera-Martinez / Sergey Melnikov / Angelita Simonetti / Alexander Myasnikov / Marat Yusupov / Gulnara Yusupova / Yaser Hashem / ![]() ![]() Abstract: One of the most critical steps of protein biosynthesis is the coupled movement of mRNA, which encodes genetic information, with tRNAs on the ribosome. In eukaryotes, this process is catalyzed by a ...One of the most critical steps of protein biosynthesis is the coupled movement of mRNA, which encodes genetic information, with tRNAs on the ribosome. In eukaryotes, this process is catalyzed by a conserved G-protein, the elongation factor 2 (eEF2), which carries a unique post-translational modification, called diphthamide, found in all eukaryotic species. Here we present near-atomic resolution cryo-electron microscopy structures of yeast 80S ribosome complexes containing mRNA, tRNA and eEF2 trapped in different GTP-hydrolysis states which provide further structural insights into the role of diphthamide in the mechanism of translation fidelity in eukaryotes. | |||||||||
History |
|
-
Structure visualization
Structure viewer | EM map: ![]() ![]() ![]() |
---|---|
Supplemental images |
-
Downloads & links
-EMDB archive
Map data | ![]() | 25.1 MB | ![]() | |
---|---|---|---|---|
Header (meta data) | ![]() ![]() | 107.2 KB 107.2 KB | Display Display | ![]() |
Images | ![]() | 275.2 KB | ||
Archive directory | ![]() ![]() | HTTPS FTP |
-Validation report
Summary document | ![]() | 266.6 KB | Display | ![]() |
---|---|---|---|---|
Full document | ![]() | 265.7 KB | Display | |
Data in XML | ![]() | 6.6 KB | Display | |
Arichive directory | ![]() ![]() | HTTPS FTP |
-Related structure data
Related structure data | ![]() 6gq1MC ![]() 0048C ![]() 0049C ![]() 0055C ![]() 6gqbC ![]() 6gqvC C: citing same article ( M: atomic model generated by this map |
---|---|
Similar structure data |
-
Links
EMDB pages | ![]() ![]() |
---|---|
Related items in Molecule of the Month |
-
Map
File | ![]() | ||||||||||||||||||||||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Projections & slices | Image control
Images are generated by Spider. | ||||||||||||||||||||||||||||||||||||
Voxel size | X=Y=Z: 1.1 Å | ||||||||||||||||||||||||||||||||||||
Density |
| ||||||||||||||||||||||||||||||||||||
Symmetry | Space group: 1 | ||||||||||||||||||||||||||||||||||||
Details | EMDB XML:
|
-Supplemental data
-
Sample components
+Entire : 80S ribosome in complex with mRNA, tRNA and eEF2 in presence of n...
+Supramolecule #1: 80S ribosome in complex with mRNA, tRNA and eEF2 in presence of n...
+Supramolecule #2: 80S ribosome
+Supramolecule #3: RNA
+Macromolecule #1: Saccharomyces cerevisiae S288C 35S pre-ribosomal RNA (RDN37-1), m...
+Macromolecule #2: 5.8S ribosomal RNA
+Macromolecule #3: 5S ribosomal RNA
+Macromolecule #47: 18S ribosomal RNA
+Macromolecule #81: Transfer RNA - Phe
+Macromolecule #82: Messenger RNA
+Macromolecule #4: 60S acidic ribosomal protein P0
+Macromolecule #5: 60S ribosomal protein L12-A
+Macromolecule #6: 60S ribosomal protein L2-A
+Macromolecule #7: 60S ribosomal protein L3
+Macromolecule #8: 60S ribosomal protein L4-A
+Macromolecule #9: 60S ribosomal protein L5
+Macromolecule #10: 60S ribosomal protein L6-A
+Macromolecule #11: 60S ribosomal protein L7-A
+Macromolecule #12: 60S ribosomal protein L8-A
+Macromolecule #13: 60S ribosomal protein L9-A
+Macromolecule #14: 60S ribosomal protein L10
+Macromolecule #15: 60S ribosomal protein L11-B
+Macromolecule #16: 60S ribosomal protein L13-A
+Macromolecule #17: 60S ribosomal protein L14-A
+Macromolecule #18: 60S ribosomal protein L15-A
+Macromolecule #19: 60S ribosomal protein L16-A
+Macromolecule #20: 60S ribosomal protein L17-A
+Macromolecule #21: 60S ribosomal protein L18-A
+Macromolecule #22: 60S ribosomal protein L19-A
+Macromolecule #23: 60S ribosomal protein L20-A
+Macromolecule #24: 60S ribosomal protein L21-A
+Macromolecule #25: 60S ribosomal protein L22-A
+Macromolecule #26: 60S ribosomal protein L23-A
+Macromolecule #27: 60S ribosomal protein L24-A
+Macromolecule #28: 60S ribosomal protein L25
+Macromolecule #29: 60S ribosomal protein L26-A
+Macromolecule #30: 60S ribosomal protein L27-A
+Macromolecule #31: 60S ribosomal protein L28
+Macromolecule #32: 60S ribosomal protein L29
+Macromolecule #33: 60S ribosomal protein L30
+Macromolecule #34: 60S ribosomal protein L31-A
+Macromolecule #35: 60S ribosomal protein L32
+Macromolecule #36: 60S ribosomal protein L33-A
+Macromolecule #37: 60S ribosomal protein L34-A
+Macromolecule #38: 60S ribosomal protein L35-A
+Macromolecule #39: 60S ribosomal protein L36-A
+Macromolecule #40: 60S ribosomal protein L37-A
+Macromolecule #41: 60S ribosomal protein L38
+Macromolecule #42: 60S ribosomal protein L39
+Macromolecule #43: Ubiquitin-60S ribosomal protein L40
+Macromolecule #44: 60S ribosomal protein L41-B
+Macromolecule #45: 60S ribosomal protein L42-A
+Macromolecule #46: 60S ribosomal protein L43-A
+Macromolecule #48: 40S ribosomal protein S0-A
+Macromolecule #49: 40S ribosomal protein S1-A
+Macromolecule #50: 40S ribosomal protein S2
+Macromolecule #51: 40S ribosomal protein S3
+Macromolecule #52: 40S ribosomal protein S4-A
+Macromolecule #53: 40S ribosomal protein S5
+Macromolecule #54: 40S ribosomal protein S6-A
+Macromolecule #55: 40S ribosomal protein S7-A
+Macromolecule #56: 40S ribosomal protein S8-A
+Macromolecule #57: 40S ribosomal protein S9-A
+Macromolecule #58: 40S ribosomal protein S10-A
+Macromolecule #59: 40S ribosomal protein S11-A
+Macromolecule #60: 40S ribosomal protein S12
+Macromolecule #61: 40S ribosomal protein S13
+Macromolecule #62: 40S ribosomal protein S14-B
+Macromolecule #63: 40S ribosomal protein S15
+Macromolecule #64: 40S ribosomal protein S16-A
+Macromolecule #65: 40S ribosomal protein S17-B
+Macromolecule #66: 40S ribosomal protein S18-A
+Macromolecule #67: 40S ribosomal protein S19-A
+Macromolecule #68: 40S ribosomal protein S20
+Macromolecule #69: 40S ribosomal protein S21-A
+Macromolecule #70: 40S ribosomal protein S22-A
+Macromolecule #71: 40S ribosomal protein S23-A
+Macromolecule #72: 40S ribosomal protein S24-A
+Macromolecule #73: 40S ribosomal protein S25-A
+Macromolecule #74: 40S ribosomal protein S26-B
+Macromolecule #75: 40S ribosomal protein S27-A
+Macromolecule #76: 40S ribosomal protein S28-A
+Macromolecule #77: 40S ribosomal protein S29-A
+Macromolecule #78: 40S ribosomal protein S30-A
+Macromolecule #79: Guanine nucleotide-binding protein subunit beta-like protein
+Macromolecule #80: Ubiquitin-40S ribosomal protein S31
+Macromolecule #83: Elongation factor 2
+Macromolecule #84: ZINC ION
+Macromolecule #85: [1R-(1.ALPHA.,3A.BETA.,4.BETA.,4A.BETA.,7.BETA.,7A.ALPHA.,8A.BETA...
+Macromolecule #86: PHOSPHOMETHYLPHOSPHONIC ACID GUANYLATE ESTER
-Experimental details
-Structure determination
Method | cryo EM |
---|---|
![]() | single particle reconstruction |
Aggregation state | particle |
-
Sample preparation
Buffer | pH: 7.5 Component:
| ||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|
Vitrification | Cryogen name: ETHANE / Chamber humidity: 100 % / Chamber temperature: 277 K / Instrument: FEI VITROBOT MARK IV / Details: blot force 4, blot waiting time 30 s. |
-
Electron microscopy
Microscope | FEI TITAN KRIOS |
---|---|
Image recording | Film or detector model: FEI FALCON II (4k x 4k) / Average exposure time: 1.5 sec. / Average electron dose: 60.0 e/Å2 |
Electron beam | Acceleration voltage: 300 kV / Electron source: ![]() |
Electron optics | Illumination mode: FLOOD BEAM / Imaging mode: BRIGHT FIELD |
Experimental equipment | ![]() Model: Titan Krios / Image courtesy: FEI Company |
-
Image processing
Startup model | Type of model: PDB ENTRY PDB model - PDB ID: |
---|---|
Final reconstruction | Applied symmetry - Point group: C1 (asymmetric) / Resolution.type: BY AUTHOR / Resolution: 4.4 Å / Resolution method: FSC 0.143 CUT-OFF / Software - Name: RELION / Number images used: 189700 |
Initial angle assignment | Type: MAXIMUM LIKELIHOOD |
Final angle assignment | Type: MAXIMUM LIKELIHOOD |
-Atomic model buiding 1
Refinement | Space: REAL / Protocol: OTHER |
---|---|
Output model | ![]() PDB-6gq1: |