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- EMDB-29267: Human nuclear pre-60S ribosomal subunit (State I3) - Composite map -
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Open data
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Basic information
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Title | Human nuclear pre-60S ribosomal subunit (State I3) - Composite map | |||||||||
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![]() | Pre-60S ribosomal subunit / Assembly intermediate / Ribosome / Nucleoprotein complex | |||||||||
Function / homology | ![]() rixosome complex / protein localization to nucleoplasm / Las1 complex / negative regulation of transcription of nucleolar large rRNA by RNA polymerase I / negative regulation of RNA polymerase II regulatory region sequence-specific DNA binding / positive regulation of protein localization to chromosome, telomeric region / regulation of RIG-I signaling pathway / basal RNA polymerase II transcription machinery binding / : / inner cell mass cell differentiation ...rixosome complex / protein localization to nucleoplasm / Las1 complex / negative regulation of transcription of nucleolar large rRNA by RNA polymerase I / negative regulation of RNA polymerase II regulatory region sequence-specific DNA binding / positive regulation of protein localization to chromosome, telomeric region / regulation of RIG-I signaling pathway / basal RNA polymerase II transcription machinery binding / : / inner cell mass cell differentiation / hematopoietic stem cell homeostasis / dendrite extension / preribosome binding / regulation of Notch signaling pathway / lamin filament / regulation of fatty acid biosynthetic process / PTK6 Expression / regulation of megakaryocyte differentiation / dynein axonemal particle / SUMO binding / positive regulation of protein sumoylation / miRNA-mediated post-transcriptional gene silencing / PeBoW complex / negative regulation of signal transduction by p53 class mediator / miRNA-mediated gene silencing by inhibition of translation / nuclear pre-replicative complex / stem cell division / eukaryotic 80S initiation complex / negative regulation of protein neddylation / blastocyst formation / positive regulation of protein K63-linked deubiquitination / negative regulation of formation of translation preinitiation complex / regulation of G1 to G0 transition / axial mesoderm development / protein localization to nucleolus / ribosomal protein import into nucleus / : / positive regulation of intrinsic apoptotic signaling pathway in response to DNA damage by p53 class mediator / regulation of translation involved in cellular response to UV / protein-DNA complex disassembly / 90S preribosome assembly / maturation of 5.8S rRNA from tricistronic rRNA transcript (SSU-rRNA, 5.8S rRNA, LSU-rRNA) / GAIT complex / A band / TORC2 complex binding / alpha-beta T cell differentiation / skeletal system morphogenesis / G1 to G0 transition / regulation of glycolytic process / middle ear morphogenesis / regulation of reactive oxygen species metabolic process / translation at presynapse / regulation of aerobic respiration / negative regulation of cell-cell adhesion / positive regulation of dendritic spine development / cytoplasmic side of rough endoplasmic reticulum membrane / maturation of 5.8S rRNA / regulation of cyclin-dependent protein serine/threonine kinase activity / negative regulation of ubiquitin protein ligase activity / stem cell population maintenance / response to aldosterone / homeostatic process / negative regulation of DNA replication / macrophage chemotaxis / mitotic G2 DNA damage checkpoint signaling / positive regulation of telomere maintenance / lung morphogenesis / ribosomal large subunit binding / Protein hydroxylation / preribosome, large subunit precursor / MLL1 complex / Peptide chain elongation / nuclear-transcribed mRNA catabolic process / Selenocysteine synthesis / negative regulation of mitotic cell cycle / positive regulation of signal transduction by p53 class mediator / Formation of a pool of free 40S subunits / Eukaryotic Translation Termination / ubiquitin ligase inhibitor activity / blastocyst development / Response of EIF2AK4 (GCN2) to amino acid deficiency / cellular response to estrogen stimulus / SRP-dependent cotranslational protein targeting to membrane / cellular response to actinomycin D / negative regulation of ubiquitin-dependent protein catabolic process / ribosomal large subunit export from nucleus / Viral mRNA Translation / : / Nonsense Mediated Decay (NMD) independent of the Exon Junction Complex (EJC) / protein localization to nucleus / GTP hydrolysis and joining of the 60S ribosomal subunit / L13a-mediated translational silencing of Ceruloplasmin expression / regulation of protein phosphorylation / somitogenesis / negative regulation of protein-containing complex assembly / Major pathway of rRNA processing in the nucleolus and cytosol / protein targeting / ribosomal subunit export from nucleus / ribonucleoprotein complex binding / protein-RNA complex assembly Similarity search - Function | |||||||||
Biological species | ![]() ![]() | |||||||||
Method | single particle reconstruction / cryo EM / Resolution: 2.89 Å | |||||||||
![]() | Vanden Broeck A / Klinge S | |||||||||
Funding support | European Union, ![]()
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![]() | ![]() Title: Principles of human pre-60 biogenesis. Authors: Arnaud Vanden Broeck / Sebastian Klinge / ![]() Abstract: During the early stages of human large ribosomal subunit (60) biogenesis, an ensemble of assembly factors establishes and fine-tunes the essential RNA functional centers of pre-60 particles by an ...During the early stages of human large ribosomal subunit (60) biogenesis, an ensemble of assembly factors establishes and fine-tunes the essential RNA functional centers of pre-60 particles by an unknown mechanism. Here, we report a series of cryo-electron microscopy structures of human nucleolar and nuclear pre-60 assembly intermediates at resolutions of 2.5 to 3.2 angstroms. These structures show how protein interaction hubs tether assembly factor complexes to nucleolar particles and how guanosine triphosphatases and adenosine triphosphatase couple irreversible nucleotide hydrolysis steps to the installation of functional centers. Nuclear stages highlight how a conserved RNA-processing complex, the rixosome, couples large-scale RNA conformational changes with pre-ribosomal RNA processing by the RNA degradation machinery. Our ensemble of human pre-60 particles provides a rich foundation with which to elucidate the molecular principles of ribosome formation. | |||||||||
History |
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Structure visualization
Supplemental images |
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Downloads & links
-EMDB archive
Map data | ![]() | 134.1 MB | ![]() | |
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Header (meta data) | ![]() ![]() | 89.3 KB 89.3 KB | Display Display | ![]() |
FSC (resolution estimation) | ![]() | 15.9 KB | Display | ![]() |
Images | ![]() | 180.2 KB | ||
Masks | ![]() | 421.9 MB | ![]() | |
Others | ![]() ![]() | 391.2 MB 391.2 MB | ||
Archive directory | ![]() ![]() | HTTPS FTP |
-Validation report
Summary document | ![]() | 1.2 MB | Display | ![]() |
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Full document | ![]() | 1.2 MB | Display | |
Data in XML | ![]() | 25.1 KB | Display | |
Data in CIF | ![]() | 32.7 KB | Display | |
Arichive directory | ![]() ![]() | HTTPS FTP |
-Related structure data
Related structure data | ![]() 8fl4MC ![]() 8fkpC ![]() 8fkqC ![]() 8fkrC ![]() 8fksC ![]() 8fktC ![]() 8fkuC ![]() 8fkvC ![]() 8fkwC ![]() 8fkxC ![]() 8fkyC ![]() 8fkzC ![]() 8fl0C ![]() 8fl2C ![]() 8fl3C ![]() 8fl6C ![]() 8fl7C ![]() 8fl9C ![]() 8flaC ![]() 8flbC ![]() 8flcC ![]() 8fldC ![]() 8fleC ![]() 8flfC C: citing same article ( M: atomic model generated by this map |
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Similar structure data | Similarity search - Function & homology ![]() |
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Links
EMDB pages | ![]() ![]() |
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Related items in Molecule of the Month |
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Map
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Projections & slices | Image control
Images are generated by Spider. | ||||||||||||||||||||||||||||||||||||
Voxel size | X=Y=Z: 1.072 Å | ||||||||||||||||||||||||||||||||||||
Density |
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Symmetry | Space group: 1 | ||||||||||||||||||||||||||||||||||||
Details | EMDB XML:
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-Supplemental data
-Mask #1
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Density Histograms |
-Half map: #2
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Density Histograms |
-Half map: #1
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Projections & Slices |
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Density Histograms |
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Sample components
+Entire : Human nuclear pre-60S ribosomal subunit (State I3)
+Supramolecule #1: Human nuclear pre-60S ribosomal subunit (State I3)
+Macromolecule #1: 60S ribosomal protein L12
+Macromolecule #2: 60S ribosomal protein L10a
+Macromolecule #3: Ribosomal biogenesis protein LAS1L
+Macromolecule #7: 60S ribosomal protein L11
+Macromolecule #8: 60S ribosomal protein L13
+Macromolecule #9: 60S ribosomal protein L13a
+Macromolecule #10: 60S ribosomal protein L14
+Macromolecule #11: 60S ribosomal protein L15
+Macromolecule #12: 60S ribosomal protein L17
+Macromolecule #13: 60S ribosomal protein L18
+Macromolecule #14: 60S ribosomal protein L18a
+Macromolecule #15: 60S ribosomal protein L19
+Macromolecule #16: 60S ribosomal protein L21
+Macromolecule #17: 60S ribosomal protein L22
+Macromolecule #18: 60S ribosomal protein L23
+Macromolecule #19: 60S ribosomal protein L23a
+Macromolecule #20: 60S ribosomal protein L26
+Macromolecule #21: 60S ribosomal protein L27
+Macromolecule #22: 60S ribosomal protein L27a
+Macromolecule #23: 60S ribosomal protein L28
+Macromolecule #24: 60S ribosomal protein L3
+Macromolecule #25: 60S ribosomal protein L30
+Macromolecule #26: 60S ribosomal protein L31
+Macromolecule #27: 60S ribosomal protein L32
+Macromolecule #28: 60S ribosomal protein L34
+Macromolecule #29: 60S ribosomal protein L35
+Macromolecule #30: 60S ribosomal protein L35a
+Macromolecule #31: 60S ribosomal protein L36
+Macromolecule #32: 60S ribosomal protein L37
+Macromolecule #33: 60S ribosomal protein L37a
+Macromolecule #34: 60S ribosomal protein L38
+Macromolecule #35: 60S ribosomal protein L39
+Macromolecule #36: Guanine nucleotide-binding protein-like 3
+Macromolecule #37: Nucleolar GTP-binding protein 2
+Macromolecule #38: Ribosome biogenesis protein NSA2 homolog
+Macromolecule #39: Notchless protein homolog 1
+Macromolecule #40: Protein LLP homolog
+Macromolecule #41: Ribosome biogenesis protein NOP53
+Macromolecule #42: Zinc finger protein 593
+Macromolecule #43: Protein SDA1 homolog
+Macromolecule #44: Testis-expressed protein 10
+Macromolecule #45: WD repeat-containing protein 18
+Macromolecule #46: Proline-, glutamic acid- and leucine-rich protein 1
+Macromolecule #47: Coiled-coil domain-containing protein 86
+Macromolecule #48: 60S ribosomal protein L4
+Macromolecule #49: 60S ribosomal protein L5
+Macromolecule #50: 60S ribosomal protein L6
+Macromolecule #51: 60S ribosomal protein L7
+Macromolecule #52: 60S ribosomal protein L7a
+Macromolecule #53: 60S ribosomal protein L8
+Macromolecule #54: 60S ribosomal protein L9
+Macromolecule #55: 60S ribosomal protein L7-like 1
+Macromolecule #56: Eukaryotic translation initiation factor 6
+Macromolecule #57: Pescadillo homolog
+Macromolecule #58: mRNA turnover protein 4 homolog
+Macromolecule #59: GTP-binding protein 4
+Macromolecule #60: Probable ribosome biogenesis protein RLP24
+Macromolecule #4: 5.8S rRNA
+Macromolecule #5: 28S rRNA
+Macromolecule #6: 5S rRNA
+Macromolecule #61: MAGNESIUM ION
+Macromolecule #62: ZINC ION
+Macromolecule #63: GUANOSINE-5'-TRIPHOSPHATE
+Macromolecule #64: POTASSIUM ION
+Macromolecule #65: GUANOSINE-5'-DIPHOSPHATE
-Experimental details
-Structure determination
Method | cryo EM |
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![]() | single particle reconstruction |
Aggregation state | particle |
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Sample preparation
Buffer | pH: 7.6 |
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Grid | Model: Quantifoil R3.5/1 / Material: GOLD / Mesh: 400 / Support film - Material: CARBON / Support film - topology: CONTINUOUS / Support film - Film thickness: 2 / Pretreatment - Type: GLOW DISCHARGE / Pretreatment - Time: 30 sec. |
Vitrification | Cryogen name: ETHANE / Chamber humidity: 95 % / Chamber temperature: 283 K / Instrument: FEI VITROBOT MARK IV Details: Four applications with manual blotting before last blotting with the vitrobot.. |
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Electron microscopy
Microscope | FEI TITAN KRIOS |
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Specialist optics | Energy filter - Slit width: 20 eV |
Image recording | Film or detector model: GATAN K3 (6k x 4k) / Number grids imaged: 4 / Number real images: 172699 / Average exposure time: 2.0 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 / Nominal defocus max: 2.5 µm / Nominal defocus min: 0.5 µm / Nominal magnification: 64000 |
Experimental equipment | ![]() Model: Titan Krios / Image courtesy: FEI Company |
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Image processing
-Atomic model buiding 1
Refinement | Space: REAL |
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Output model | ![]() PDB-8fl4: |