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- EMDB-38420: Cryo-EM structure of human insulin receptor bound to 4 IGF-I, con... -
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Open data
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Basic information
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Title | Cryo-EM structure of human insulin receptor bound to 4 IGF-I, conformation 3 | |||||||||
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![]() | MEMBRANE PROTEIN | |||||||||
Function / homology | ![]() glycolate metabolic process / muscle hypertrophy / negative regulation of oocyte development / insulin-like growth factor binding protein complex / insulin-like growth factor ternary complex / positive regulation of trophectodermal cell proliferation / prostate gland stromal morphogenesis / positive regulation of type B pancreatic cell proliferation / positive regulation of glycoprotein biosynthetic process / type II pneumocyte differentiation ...glycolate metabolic process / muscle hypertrophy / negative regulation of oocyte development / insulin-like growth factor binding protein complex / insulin-like growth factor ternary complex / positive regulation of trophectodermal cell proliferation / prostate gland stromal morphogenesis / positive regulation of type B pancreatic cell proliferation / positive regulation of glycoprotein biosynthetic process / type II pneumocyte differentiation / neuronal dense core vesicle lumen / proteoglycan biosynthetic process / regulation of establishment or maintenance of cell polarity / chondroitin sulfate proteoglycan biosynthetic process / myotube cell development / positive regulation of transcription regulatory region DNA binding / negative regulation of neuroinflammatory response / Signaling by Type 1 Insulin-like Growth Factor 1 Receptor (IGF1R) / skeletal muscle satellite cell maintenance involved in skeletal muscle regeneration / bone mineralization involved in bone maturation / positive regulation of cell growth involved in cardiac muscle cell development / IRS-related events triggered by IGF1R / negative regulation of vascular associated smooth muscle cell apoptotic process / positive regulation of cerebellar granule cell precursor proliferation / exocytic vesicle / lung vasculature development / regulation of female gonad development / cerebellar granule cell precursor proliferation / positive regulation of myoblast proliferation / positive regulation of meiotic cell cycle / lung lobe morphogenesis / positive regulation of myelination / negative regulation of androgen receptor signaling pathway / cell activation / insulin-like growth factor II binding / positive regulation of developmental growth / glial cell differentiation / positive regulation of calcineurin-NFAT signaling cascade / male sex determination / insulin receptor complex / prostate gland growth / transmembrane receptor protein tyrosine kinase activator activity / insulin-like growth factor I binding / positive regulation of protein-containing complex disassembly / type B pancreatic cell proliferation / insulin receptor activity / mammary gland development / exocrine pancreas development / alphav-beta3 integrin-IGF-1-IGF1R complex / myoblast differentiation / cell surface receptor signaling pathway via STAT / positive regulation of Ras protein signal transduction / regulation of nitric oxide biosynthetic process / positive regulation of insulin-like growth factor receptor signaling pathway / dendritic spine maintenance / cargo receptor activity / positive regulation of smooth muscle cell migration / insulin binding / growth hormone receptor signaling pathway / positive regulation of DNA binding / negative regulation of interleukin-1 beta production / adrenal gland development / neuronal cell body membrane / PTB domain binding / lung alveolus development / muscle organ development / cellular response to insulin-like growth factor stimulus / Signaling by Insulin receptor / IRS activation / positive regulation of cardiac muscle hypertrophy / branching morphogenesis of an epithelial tube / androgen receptor signaling pathway / prostate epithelial cord arborization involved in prostate glandular acinus morphogenesis / negative regulation of release of cytochrome c from mitochondria / type I pneumocyte differentiation / negative regulation of amyloid-beta formation / negative regulation of smooth muscle cell apoptotic process / positive regulation of respiratory burst / amyloid-beta clearance / positive regulation of activated T cell proliferation / inner ear development / myoblast proliferation / positive regulation of receptor internalization / regulation of embryonic development / insulin receptor substrate binding / negative regulation of tumor necrosis factor production / protein kinase activator activity / epithelial to mesenchymal transition / blood vessel remodeling / Synthesis, secretion, and deacylation of Ghrelin / epidermis development / activation of protein kinase B activity / positive regulation of glycogen biosynthetic process / Signal attenuation / positive regulation of osteoblast differentiation / SHC-related events triggered by IGF1R / postsynaptic modulation of chemical synaptic transmission / heart morphogenesis / transport across blood-brain barrier / phosphatidylinositol 3-kinase binding Similarity search - Function | |||||||||
Biological species | ![]() | |||||||||
Method | single particle reconstruction / cryo EM / Resolution: 5.0 Å | |||||||||
![]() | Xi Z | |||||||||
Funding support | ![]()
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![]() | ![]() Title: Cryo-EM structure of human insulin receptor bound to 4 IGF-I, conformation 3 Authors: Xi Z | |||||||||
History |
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Structure visualization
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Downloads & links
-EMDB archive
Map data | ![]() | 252.2 MB | ![]() | |
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Header (meta data) | ![]() ![]() | 17.3 KB 17.3 KB | Display Display | ![]() |
Images | ![]() | 124.5 KB | ||
Masks | ![]() | 512 MB | ![]() | |
Filedesc metadata | ![]() | 6.4 KB | ||
Others | ![]() ![]() | 475.2 MB 475.2 MB | ||
Archive directory | ![]() ![]() | HTTPS FTP |
-Validation report
Summary document | ![]() | 988.4 KB | Display | ![]() |
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Full document | ![]() | 988 KB | Display | |
Data in XML | ![]() | 18.7 KB | Display | |
Data in CIF | ![]() | 22.1 KB | Display | |
Arichive directory | ![]() ![]() | HTTPS FTP |
-Related structure data
Related structure data | ![]() 8xkmMC 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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Voxel size | X=Y=Z: 0.66 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 : The complex of insulin receptor with 4 IGF-I
Entire | Name: The complex of insulin receptor with 4 IGF-I |
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Components |
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-Supramolecule #1: The complex of insulin receptor with 4 IGF-I
Supramolecule | Name: The complex of insulin receptor with 4 IGF-I / type: complex / ID: 1 / Parent: 0 / Macromolecule list: all |
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Source (natural) | Organism: ![]() |
-Macromolecule #1: Isoform Short of Insulin receptor
Macromolecule | Name: Isoform Short of Insulin receptor / type: protein_or_peptide / ID: 1 / Number of copies: 2 / Enantiomer: LEVO |
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Source (natural) | Organism: ![]() |
Molecular weight | Theoretical: 155.329094 KDa |
Recombinant expression | Organism: ![]() |
Sequence | String: MATGGRRGAA AAPLLVAVAA LLLGAAGHLY PGEVCPGMDI RNNLTRLHEL ENCSVIEGHL QILLMFKTRP EDFRDLSFPK LIMITDYLL LFRVYGLESL KDLFPNLTVI RGSRLFFNYA LVIFEMVHLK ELGLYNLMNI TRGSVRIEKN NELCYLATID W SRILDSVE ...String: MATGGRRGAA AAPLLVAVAA LLLGAAGHLY PGEVCPGMDI RNNLTRLHEL ENCSVIEGHL QILLMFKTRP EDFRDLSFPK LIMITDYLL LFRVYGLESL KDLFPNLTVI RGSRLFFNYA LVIFEMVHLK ELGLYNLMNI TRGSVRIEKN NELCYLATID W SRILDSVE DNYIVLNKDD NEECGDICPG TAKGKTNCPA TVINGQFVER CWTHSHCQKV CPTICKSHGC TAEGLCCHSE CL GNCSQPD DPTKCVACRN FYLDGRCVET CPPPYYHFQD WRCVNFSFCQ DLHHKCKNSR RQGCHQYVIH NNKCIPECPS GYT MNSSNL LCTPCLGPCP KVCHLLEGEK TIDSVTSAQE LRGCTVINGS LIINIRGGNN LAAELEANLG LIEEISGYLK IRRS YALVS LSFFRKLRLI RGETLEIGNY SFYALDNQNL RQLWDWSKHN LTITQGKLFF HYNPKLCLSE IHKMEEVSGT KGRQE RNDI ALKTNGDQAS CENELLKFSY IRTSFDKILL RWEPYWPPDF RDLLGFMLFY KEAPYQNVTE FDGQDACGSN SWTVVD IDP PLRSNDPKSQ NHPGWLMRGL KPWTQYAIFV KTLVTFSDER RTYGAKSDII YVQTDATNPS VPLDPISVSN SSSQIIL KW KPPSDPNGNI THYLVFWERQ AEDSELFELD YCLKGLKLPS RTWSPPFESE DSQKHNQSEY EDSAGECCSC PKTDSQIL K ELEESSFRKT FEDYLHNVVF VPRPSRKRRS LGDVGNVTVA VPTVAAFPNT SSTSVPTSPE EHRPFEKVVN KESLVISGL RHFTGYRIEL QACNQDTPEE RCSVAAYVSA RTMPEAKADD IVGPVTHEIF ENNVVHLMWQ EPKEPNGLIV LYEVSYRRYG DEELHLCVS RKHFALERGC RLRGLSPGNY SVRIRATSLA GNGSWTEPTY FYVTDYLDVP SNIAKIIIGP LIFVFLFSVV I GSIYLFLR KRQPDGPLGP LYASSNPEYL SASDVFPCSV YVPDEWEVSR EKITLLRELG QGSFGMVYEG NARDIIKGEA ET RVAVKTV NESASLRERI EFLNEASVMK GFTCHHVVRL LGVVSKGQPT LVVMELMAHG DLKSYLRSLR PEAENNPGRP PPT LQEMIQ MAAEIADGMA YLNAKKFVHR DLAARNCMVA HDFTVKIGDF GMTRDIYETD YYRKGGKGLL PVRWMAPESL KDGV FTTSS DMWSFGVVLW EITSLAEQPY QGLSNEQVLK FVMDGGYLDQ PDNCPERVTD LMRMCWQFNP KMRPTFLEIV NLLKD DLHP SFPEVSFFHS EENKAPESEE LEMEFEDMEN VPLDRSSHCQ REEAGGRDGG SSLGFKRSYE EHIPYTHMNG GKKNGR ILT LPRSNPS UniProtKB: Insulin receptor |
-Macromolecule #2: Insulin-like growth factor I
Macromolecule | Name: Insulin-like growth factor I / type: protein_or_peptide / ID: 2 / Number of copies: 4 / Enantiomer: LEVO |
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Source (natural) | Organism: ![]() |
Molecular weight | Theoretical: 21.88132 KDa |
Recombinant expression | Organism: ![]() ![]() |
Sequence | String: MGKISSLPTQ LFKCCFCDFL KVKMHTMSSS HLFYLALCLL TFTSSATAGP ETLCGAELVD ALQFVCGDRG FYFNKPTGYG SSSRRAPQT GIVDECCFRS CDLRRLEMYC APLKPAKSAR SVRAQRHTDM PKTQKYQPPS TNKNTKSQRR KGWPKTHPGG E QKEGTEAS ...String: MGKISSLPTQ LFKCCFCDFL KVKMHTMSSS HLFYLALCLL TFTSSATAGP ETLCGAELVD ALQFVCGDRG FYFNKPTGYG SSSRRAPQT GIVDECCFRS CDLRRLEMYC APLKPAKSAR SVRAQRHTDM PKTQKYQPPS TNKNTKSQRR KGWPKTHPGG E QKEGTEAS LQIRGKKKEQ RREIGSRNAE CRGKKGK UniProtKB: Insulin-like growth factor 1 |
-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: 7.4 |
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Vitrification | Cryogen name: ETHANE |
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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: 5.0 µm / Nominal defocus min: 1.2 µm |
Experimental equipment | ![]() Model: Titan Krios / Image courtesy: FEI Company |