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Open data
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Basic information
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Title | Cryo-EM structure of human OGT-OGA complex | |||||||||
![]() | Human OGT-OGA Complex Conformer I | |||||||||
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![]() | O-GlcNAc transferase / O-GlcNAcase / Complex / Mutual inhibition / TRANSFERASE / TRANSFERASE-HYDROLASE complex | |||||||||
Function / homology | ![]() negative regulation of non-canonical inflammasome complex assembly / glycoprotein metabolic process / protein N-acetylglucosaminyltransferase complex / hyalurononglucosaminidase activity / regulation of insulin receptor signaling pathway / protein O-acetylglucosaminyltransferase activity / protein O-GlcNAc transferase / N-acetylglucosamine metabolic process / positive regulation of transcription from RNA polymerase II promoter by glucose / protein O-GlcNAcase ...negative regulation of non-canonical inflammasome complex assembly / glycoprotein metabolic process / protein N-acetylglucosaminyltransferase complex / hyalurononglucosaminidase activity / regulation of insulin receptor signaling pathway / protein O-acetylglucosaminyltransferase activity / protein O-GlcNAc transferase / N-acetylglucosamine metabolic process / positive regulation of transcription from RNA polymerase II promoter by glucose / protein O-GlcNAcase / protein deglycosylation / [protein]-3-O-(N-acetyl-D-glucosaminyl)-L-serine/L-threonine O-N-acetyl-alpha-D-glucosaminase activity / acetylglucosaminyltransferase activity / glycoprotein catabolic process / regulation of Rac protein signal transduction / regulation of necroptotic process / negative regulation of stem cell population maintenance / protein O-linked glycosylation / NSL complex / regulation of glycolytic process / RIPK1-mediated regulated necrosis / regulation of gluconeogenesis / regulation of synapse assembly / Formation of WDR5-containing histone-modifying complexes / regulation of neurotransmitter receptor localization to postsynaptic specialization membrane / Sin3-type complex / positive regulation of stem cell population maintenance / phosphatidylinositol-3,4,5-trisphosphate binding / hemopoiesis / positive regulation of proteolysis / histone acetyltransferase complex / positive regulation of lipid biosynthetic process / mitophagy / response to nutrient / negative regulation of proteasomal ubiquitin-dependent protein catabolic process / negative regulation of protein ubiquitination / positive regulation of TORC1 signaling / negative regulation of cell migration / positive regulation of translation / beta-N-acetylglucosaminidase activity / cell projection / cellular response to glucose stimulus / circadian regulation of gene expression / Regulation of necroptotic cell death / chromatin DNA binding / negative regulation of transforming growth factor beta receptor signaling pathway / response to insulin / mitochondrial membrane / protein processing / UCH proteinases / HATs acetylate histones / positive regulation of cold-induced thermogenesis / chromatin organization / apoptotic process / regulation of transcription by RNA polymerase II / positive regulation of DNA-templated transcription / glutamatergic synapse / negative regulation of transcription by RNA polymerase II / signal transduction / positive regulation of transcription by RNA polymerase II / protein-containing complex / nucleoplasm / identical protein binding / nucleus / membrane / plasma membrane / cytosol Similarity search - Function | |||||||||
Biological species | ![]() | |||||||||
Method | single particle reconstruction / cryo EM / Resolution: 3.92 Å | |||||||||
![]() | Lu P / Liu Y / Yu H / Gao H | |||||||||
Funding support | ![]()
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![]() | ![]() Title: Cryo-EM structure of human O-GlcNAcylation enzyme pair OGT-OGA complex. Authors: Ping Lu / Yusong Liu / Maozhou He / Ting Cao / Mengquan Yang / Shutao Qi / Hongtao Yu / Haishan Gao / ![]() Abstract: O-GlcNAcylation is a conserved post-translational modification that attaches N-acetyl glucosamine (GlcNAc) to myriad cellular proteins. In response to nutritional and hormonal signals, O- ...O-GlcNAcylation is a conserved post-translational modification that attaches N-acetyl glucosamine (GlcNAc) to myriad cellular proteins. In response to nutritional and hormonal signals, O-GlcNAcylation regulates diverse cellular processes by modulating the stability, structure, and function of target proteins. Dysregulation of O-GlcNAcylation has been implicated in the pathogenesis of cancer, diabetes, and neurodegeneration. A single pair of enzymes, the O-GlcNAc transferase (OGT) and O-GlcNAcase (OGA), catalyzes the addition and removal of O-GlcNAc on over 3,000 proteins in the human proteome. However, how OGT selects its native substrates and maintains the homeostatic control of O-GlcNAcylation of so many substrates against OGA is not fully understood. Here, we present the cryo-electron microscopy (cryo-EM) structures of human OGT and the OGT-OGA complex. Our studies reveal that OGT forms a functionally important scissor-shaped dimer. Within the OGT-OGA complex structure, a long flexible OGA segment occupies the extended substrate-binding groove of OGT and positions a serine for O-GlcNAcylation, thus preventing OGT from modifying other substrates. Conversely, OGT disrupts the functional dimerization of OGA and occludes its active site, resulting in the blocking of access by other substrates. This mutual inhibition between OGT and OGA may limit the futile O-GlcNAcylation cycles and help to maintain O-GlcNAc homeostasis. | |||||||||
History |
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Structure visualization
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Downloads & links
-EMDB archive
Map data | ![]() | 118 MB | ![]() | |
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Header (meta data) | ![]() ![]() | 20.8 KB 20.8 KB | Display Display | ![]() |
Images | ![]() | 123.3 KB | ||
Filedesc metadata | ![]() | 7.2 KB | ||
Others | ![]() ![]() | 118 MB 115.9 MB | ||
Archive directory | ![]() ![]() | HTTPS FTP |
-Validation report
Summary document | ![]() | 900 KB | Display | ![]() |
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Full document | ![]() | 899.6 KB | Display | |
Data in XML | ![]() | 13.9 KB | Display | |
Data in CIF | ![]() | 16.4 KB | Display | |
Arichive directory | ![]() ![]() | HTTPS FTP |
-Related structure data
Related structure data | ![]() 7yehMC ![]() 7yeaC M: atomic model generated by this map C: citing same article ( |
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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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Annotation | Human OGT-OGA Complex Conformer I | ||||||||||||||||||||
Voxel size | X=Y=Z: 0.8389 Å | ||||||||||||||||||||
Density |
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Symmetry | Space group: 1 | ||||||||||||||||||||
Details | EMDB XML:
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-Supplemental data
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Sample components
-Entire : Cryo-EM structure of human OGT-OGA complex
Entire | Name: Cryo-EM structure of human OGT-OGA complex |
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Components |
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-Supramolecule #1: Cryo-EM structure of human OGT-OGA complex
Supramolecule | Name: Cryo-EM structure of human OGT-OGA complex / type: complex / ID: 1 / Parent: 0 / Macromolecule list: #1-#2 |
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Source (natural) | Organism: ![]() |
Molecular weight | Theoretical: 400 KDa |
-Macromolecule #1: UDP-N-acetylglucosamine--peptide N-acetylglucosaminyltransferase ...
Macromolecule | Name: UDP-N-acetylglucosamine--peptide N-acetylglucosaminyltransferase 110 kDa subunit type: protein_or_peptide / ID: 1 / Number of copies: 2 / Enantiomer: LEVO / EC number: protein O-GlcNAc transferase |
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Source (natural) | Organism: ![]() |
Molecular weight | Theoretical: 117.953414 KDa |
Recombinant expression | Organism: ![]() ![]() |
Sequence | String: MASSVGNVAD STEPTKRMLS FQGLMELAHR EYQAGDFEAA ERHCMQLWRQ EPDNTGVLLL LSSIHFECRR LDRSAHFSTL AIKQNPLLA EAYSNLGNVY KERGQLQEAI EHYRHALRLK PDFIDGYINL AAALVAAGDM EGAVQAYVSA LQYNPDLYCV R SDLGNLLK ...String: MASSVGNVAD STEPTKRMLS FQGLMELAHR EYQAGDFEAA ERHCMQLWRQ EPDNTGVLLL LSSIHFECRR LDRSAHFSTL AIKQNPLLA EAYSNLGNVY KERGQLQEAI EHYRHALRLK PDFIDGYINL AAALVAAGDM EGAVQAYVSA LQYNPDLYCV R SDLGNLLK ALGRLEEAKA CYLKAIETQP NFAVAWSNLG CVFNAQGEIW LAIHHFEKAV TLDPNFLDAY INLGNVLKEA RI FDRAVAA YLRALSLSPN HAVVHGNLAC VYYEQGLIDL AIDTYRRAIE LQPHFPDAYC NLANALKEKG SVAEAEDCYN TAL RLCPTH ADSLNNLANI KREQGNIEEA VRLYRKALEV FPEFAAAHSN LASVLQQQGK LQEALMHYKE AIRISPTFAD AYSN MGNTL KEMQDVQGAL QCYTRAIQIN PAFADAHSNL ASIHKDSGNI PEAIASYRTA LKLKPDFPDA YCNLAHCLQI VCDWT DYDE RMKKLVSIVA DQLEKNRLPS VHPHHSMLYP LSHGFRKAIA ERHGNLCLDK INVLHKPPYE HPKDLKLSDG RLRVGY VSS DFGNHPTSHL MQSIPGMHNP DKFEVFCYAL SPDDGTNFRV KVMAEANHFI DLSQIPCNGK AADRIHQDGI HILVNMN GY TKGARNELFA LRPAPIQAMW LGYPGTSGAL FMDYIITDQE TSPAEVAEQY SEKLAYMPHT FFIGDHANMF PHLKKKAV I DFKSNGHIYD NRIVLNGIDL KAFLDSLPDV KIVKMKCPDG GDNADSSNTA LNMPVIPMNT IAEAVIEMIN RGQIQITIN GFSISNGLAT TQINNKAATG EEVPRTIIVT TRSQYGLPED AIVYCNFNQL YKIDPSTLQM WANILKRVPN SVLWLLRFPA VGEPNIQQY AQNMGLPQNR IIFSPVAPKE EHVRRGQLAD VCLDTPLCNG HTTGMDVLWA GTPMVTMPGE TLASRVAASQ L TCLGCLEL IAKNRQEYED IAVKLGTDLE YLKKVRGKVW KQRISSPLFN TKQYTMELER LYLQMWEHYA AGNKPDHMIK PV EVTESAH HHHHH UniProtKB: UDP-N-acetylglucosamine--peptide N-acetylglucosaminyltransferase 110 kDa subunit |
-Macromolecule #2: Protein O-GlcNAcase
Macromolecule | Name: Protein O-GlcNAcase / type: protein_or_peptide / ID: 2 / Number of copies: 2 / Enantiomer: LEVO / EC number: protein O-GlcNAcase |
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Source (natural) | Organism: ![]() |
Molecular weight | Theoretical: 103.020906 KDa |
Recombinant expression | Organism: ![]() ![]() |
Sequence | String: MVQKESQATL EERESELSSN PAASAGASLE PPAAPAPGED NPAGAGGAAV AGAAGGARRF LCGVVEGFYG RPWVMEQRKE LFRRLQKWE LNTYLYAPKD DYKHRMFWRE MYSVEEAEQL MTLISAAREY EIEFIYAISP GLDITFSNPK EVSTLKRKLD Q VSQFGCRS ...String: MVQKESQATL EERESELSSN PAASAGASLE PPAAPAPGED NPAGAGGAAV AGAAGGARRF LCGVVEGFYG RPWVMEQRKE LFRRLQKWE LNTYLYAPKD DYKHRMFWRE MYSVEEAEQL MTLISAAREY EIEFIYAISP GLDITFSNPK EVSTLKRKLD Q VSQFGCRS FALLFDDIDH NMCAADKEVF SSFAHAQVSI TNEIYQYLGE PETFLFCPTE YCGTFCYPNV SQSPYLRTVG EK LLPGIEV LWTGPKVVSK EIPVESIEEV SKIIKRAPVI WDNIHANDYD QKRLFLGPYK GRSTELIPRL KGVLTNPNCE FEA NYVAIH TLATWYKSNM NGVRKDVVMT DSEDSTVSIQ IKLENEGSDE DIETDVLYSP QMALKLALTE WLQEFGVPHQ YSSR QVAHS GAKASVVDGT PLVAAPSLNA TTVVTTVYQE PIMSQGAALS GEPTTLTKEE EKKQPDEEPM DMVVEKQEET DHKND NQIL SEIVEAKMAE ELKPMDTDKE SIAESKSPEM SMQEDCISDI APMQTDEQTN KEQFVPGPNE KPLYTAEPVT LEDLQL LAD LFYLPYEHGP KGAQMLREFQ WLRANSSVVS VNCKGKDSEK IEEWRSRAAK FEEMCGLVMG MFTRLSNCAN RTILYDM YS YVWDIKSIMS MVKSFVQWLG CRSHSSAQFL IGDQEPWAFR GGLAGEFQRL LPIDGANDLF FQPPPLTPTS KVYTIRPY F PKDEASVYKI CREMYDDGVG LPFQSQPDLI GDKLVGGLLS LSLDYCFVLE DEDGICGYAL GTVDVTPFIK KCKISWIPF MQEKYTKPNG DKELSEAEKI MLSFHEEQEV LPETFLANFP SLIKMDIHKK VTDPSVAKSM MACLLSSLKA NGSRGAFCEV RPDDKRILE FYSKLGCFEI AKMEGFPKDV VILGRSL UniProtKB: Protein O-GlcNAcase |
-Macromolecule #3: URIDINE-5'-DIPHOSPHATE
Macromolecule | Name: URIDINE-5'-DIPHOSPHATE / type: ligand / ID: 3 / Number of copies: 1 / Formula: UDP |
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Molecular weight | Theoretical: 404.161 Da |
Chemical component information | ![]() ChemComp-UDP: |
-Macromolecule #4: 2-acetamido-2-deoxy-beta-D-glucopyranose
Macromolecule | Name: 2-acetamido-2-deoxy-beta-D-glucopyranose / type: ligand / ID: 4 / Number of copies: 1 / Formula: NAG |
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Molecular weight | Theoretical: 221.208 Da |
Chemical component information | ![]() ChemComp-NAG: |
-Experimental details
-Structure determination
Method | cryo EM |
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![]() | single particle reconstruction |
Aggregation state | particle |
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Sample preparation
Concentration | 5 mg/mL |
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Buffer | pH: 7.5 |
Grid | Model: Quantifoil R1.2/1.3 / Material: COPPER / Mesh: 300 / Pretreatment - Type: GLOW DISCHARGE / Pretreatment - Time: 60 sec. |
Vitrification | Cryogen name: ETHANE / Chamber humidity: 100 % / Chamber temperature: 277 K |
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Electron microscopy
Microscope | FEI TITAN KRIOS |
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Image recording | Film or detector model: GATAN K3 (6k x 4k) / Average electron dose: 50.0 e/Å2 |
Electron beam | Acceleration voltage: 300 kV / Electron source: ![]() |
Electron optics | Illumination mode: FLOOD BEAM / Imaging mode: BRIGHT FIELD / Nominal defocus max: 2.3000000000000003 µm / Nominal defocus min: 1.3 µm |
Sample stage | Specimen holder model: FEI TITAN KRIOS AUTOGRID HOLDER / Cooling holder cryogen: NITROGEN |
Experimental equipment | ![]() Model: Titan Krios / Image courtesy: FEI Company |
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Image processing
-Atomic model buiding 1
Initial model |
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Refinement | Space: REAL / Protocol: RIGID BODY FIT / Overall B value: 146 | ||||||||
Output model | ![]() PDB-7yeh: |