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PDB: 545 results

4KR3
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BU of 4kr3 by Molmil
Glycyl-tRNA synthetase mutant E71G in complex with tRNA-Gly
Descriptor: GLYCINE, Gly-tRNA-CCC, Glycine--tRNA ligase, ...
Authors:Qin, X, Hao, Z, Tian, Q, Zhang, Z, Zhou, C, Xie, W.
Deposit date:2013-05-16
Release date:2014-05-21
Last modified:2024-03-20
Method:X-RAY DIFFRACTION (3.235 Å)
Cite:Cocrystal Structures of Glycyl-tRNA Synthetase in Complex with tRNA Suggest Multiple Conformational States in Glycylation
J.Biol.Chem., 289, 2014
4KR2
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BU of 4kr2 by Molmil
Glycyl-tRNA synthetase in complex with tRNA-Gly
Descriptor: ADENOSINE MONOPHOSPHATE, Gly-tRNA-CCC, Glycine--tRNA ligase
Authors:Qin, X, Hao, Z, Tian, Q, Zhang, Z, Zhou, C, Xie, W.
Deposit date:2013-05-16
Release date:2014-05-21
Last modified:2023-11-08
Method:X-RAY DIFFRACTION (3.292 Å)
Cite:Cocrystal Structures of Glycyl-tRNA Synthetase in Complex with tRNA Suggest Multiple Conformational States in Glycylation
J.Biol.Chem., 289, 2014
4NFT
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BU of 4nft by Molmil
Crystal structure of human lnkH2B-h2A.Z-Anp32e
Descriptor: Acidic leucine-rich nuclear phosphoprotein 32 family member E, Histone H2B type 2-E, Histone H2A.Z
Authors:Shan, S, Pan, L, Mao, Z, Wang, W, Sun, J, Dong, Q, Liang, X, Ding, X, Chen, S, Dai, L, Zhang, Z, Zhu, B, Zhou, Z.
Deposit date:2013-11-01
Release date:2014-04-09
Last modified:2024-03-20
Method:X-RAY DIFFRACTION (2.61 Å)
Cite:Anp32e, a higher eukaryotic histone chaperone directs preferential recognition for H2A.Z
Cell Res., 24, 2014
4NSP
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BU of 4nsp by Molmil
Crystal structure of human ENDOV
Descriptor: Endonuclease V
Authors:Xie, W, Zhang, Z, Hao, Z.
Deposit date:2013-11-28
Release date:2014-09-10
Last modified:2023-09-20
Method:X-RAY DIFFRACTION (2.3 Å)
Cite:Structure of human endonuclease V as an inosine-specific ribonuclease.
Acta Crystallogr.,Sect.D, 70, 2014
5BPT
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BU of 5bpt by Molmil
Atomic-resolution structures of the APC/C subunits Apc4 and the Apc5 N-terminal domain
Descriptor: MGC81278 protein
Authors:Cronin, N, Yang, J, Zhang, Z, Barford, D.
Deposit date:2015-05-28
Release date:2015-09-02
Last modified:2024-10-16
Method:X-RAY DIFFRACTION (3.2 Å)
Cite:Atomic-Resolution Structures of the APC/C Subunits Apc4 and the Apc5 N-Terminal Domain.
J.Mol.Biol., 427, 2015
5A31
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BU of 5a31 by Molmil
Structure of the human APC-Cdh1-Hsl1-UbcH10 complex.
Descriptor: ANAPHASE-PROMOTING COMPLEX SUBUNIT 1, ANAPHASE-PROMOTING COMPLEX SUBUNIT 10, ANAPHASE-PROMOTING COMPLEX SUBUNIT 11, ...
Authors:Chang, L, Zhang, Z, Yang, J, Mclaughlin, S.H, Barford, D.
Deposit date:2015-05-26
Release date:2015-11-18
Last modified:2024-05-08
Method:ELECTRON MICROSCOPY (4.3 Å)
Cite:Atomic Structure of the Apc/C and its Mechanism of Protein Ubiquitination.
Nature, 522, 2015
5BPZ
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BU of 5bpz by Molmil
Atomic-resolution structures of the APC/C subunits Apc4 and the Apc5 N-terminal domain
Descriptor: 1,2-ETHANEDIOL, Anapc5 protein
Authors:Cronin, N, Yang, J, Zhang, Z, Barford, D.
Deposit date:2015-05-28
Release date:2015-09-02
Last modified:2024-05-08
Method:X-RAY DIFFRACTION (2.18 Å)
Cite:Atomic-Resolution Structures of the APC/C Subunits Apc4 and the Apc5 N-Terminal Domain.
J.Mol.Biol., 427, 2015
5BPW
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BU of 5bpw by Molmil
Atomic-resolution structures of the APC/C subunits Apc4 and the Apc5 N-terminal domain
Descriptor: Anaphase-promoting complex subunit 4
Authors:Kulkarni, K, Yang, J, Zhang, Z, Barford, D.
Deposit date:2015-05-28
Release date:2015-09-02
Last modified:2024-05-08
Method:X-RAY DIFFRACTION (3.4 Å)
Cite:Atomic-Resolution Structures of the APC/C Subunits Apc4 and the Apc5 N-Terminal Domain.
J.Mol.Biol., 427, 2015
3N53
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BU of 3n53 by Molmil
Crystal structure of a response regulator receiver modulated diguanylate cyclase from Pelobacter carbinolicus
Descriptor: Response regulator receiver modulated diguanylate cyclase
Authors:Palani, K, Zhang, Z, Burley, S.K, Swaminathan, S, New York SGX Research Center for Structural Genomics (NYSGXRC)
Deposit date:2010-05-24
Release date:2010-07-28
Last modified:2023-11-22
Method:X-RAY DIFFRACTION (2.2 Å)
Cite:Crystal structure of a response regulator receiver modulated diguanylate cyclase from Pelobacter carbinolicus
To be Published
3H1K
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BU of 3h1k by Molmil
Chicken cytochrome BC1 complex with ZN++ and an iodinated derivative of kresoxim-methyl bound
Descriptor: 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine, CARDIOLIPIN, Coenzyme Q10, ...
Authors:Berry, E.A, Zhang, Z, Bellamy, H.D, Huang, L.S.
Deposit date:2009-04-12
Release date:2009-04-28
Last modified:2023-09-06
Method:X-RAY DIFFRACTION (3.48 Å)
Cite:Crystallographic location of two Zn(2+)-binding sites in the avian cytochrome bc(1) complex
Biochim.Biophys.Acta, 1459, 2000
5BX1
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BU of 5bx1 by Molmil
Crystal Structure of PRL-1 complex with compound analogy 3
Descriptor: 3-(5,6-dimethyl-2H-isoindol-2-yl)-N'-[(E)-furan-2-ylmethylidene]benzohydrazide, Protein tyrosine phosphatase type IVA 1, SULFATE ION
Authors:Liu, S, Bai, Y, Zhang, Z.
Deposit date:2015-06-08
Release date:2016-12-21
Last modified:2023-09-27
Method:X-RAY DIFFRACTION (1.9 Å)
Cite:Crystal Structure of PRL-1 complex with compound analogy 3
To Be Published
3J2M
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BU of 3j2m by Molmil
The X-ray structure of the gp15 hexamer and the model of the gp18 protein fitted into the cryo-EM reconstruction of the extended T4 tail
Descriptor: Tail connector protein Gp15, Tail sheath protein Gp18
Authors:Fokine, A, Zhang, Z, Kanamaru, S, Bowman, V.D, Aksyuk, A, Arisaka, F, Rao, V.B, Rossmann, M.G.
Deposit date:2012-11-09
Release date:2013-03-06
Last modified:2024-02-21
Method:ELECTRON MICROSCOPY (15 Å)
Cite:The molecular architecture of the bacteriophage t4 neck.
J.Mol.Biol., 425, 2013
3KAE
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BU of 3kae by Molmil
Cdc27 N-terminus
Descriptor: CHLORIDE ION, GLYCEROL, Possible protein of nuclear scaffold, ...
Authors:Barford, D, Zhang, Z, Roe, S.M.
Deposit date:2009-10-19
Release date:2010-03-23
Last modified:2024-03-20
Method:X-RAY DIFFRACTION (2.298 Å)
Cite:Molecular structure of the N-terminal domain of the APC/C subunit Cdc27 reveals a homo-dimeric tetratricopeptide repeat architecture
J.Mol.Biol., 397, 2010
3J2O
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BU of 3j2o by Molmil
Model of the bacteriophage T4 fibritin based on the cryo-EM reconstruction of the contracted T4 tail containing the phage collar and whiskers
Descriptor: Fibritin
Authors:Fokine, A, Zhang, Z, Kanamaru, S, Bowman, V.D, Aksyuk, A.A, Arisaka, F, Rao, V.B, Rossmann, M.G.
Deposit date:2012-11-12
Release date:2013-03-06
Last modified:2024-02-21
Method:ELECTRON MICROSCOPY (25 Å)
Cite:The molecular architecture of the bacteriophage t4 neck.
J.Mol.Biol., 425, 2013
3J2N
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BU of 3j2n by Molmil
The X-ray structure of the gp15 hexamer and the model of the gp18 protein fitted into the cryo-EM reconstruction of the contracted T4 tail
Descriptor: Tail connector protein Gp15, Tail sheath protein Gp18
Authors:Fokine, A, Zhang, Z, Kanamaru, S, Bowman, V.D, Aksyuk, A, Arisaka, F, Rao, V.B, Rossmann, M.G.
Deposit date:2012-11-10
Release date:2013-03-06
Last modified:2024-02-21
Method:ELECTRON MICROSCOPY (16 Å)
Cite:The molecular architecture of the bacteriophage t4 neck.
J.Mol.Biol., 425, 2013
6BF8
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BU of 6bf8 by Molmil
Cryo-EM structure of human insulin degrading enzyme in complex with insulin
Descriptor: Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-10-26
Release date:2018-04-04
Last modified:2024-03-13
Method:ELECTRON MICROSCOPY (4.2 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6B7Y
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BU of 6b7y by Molmil
Cryo-EM structure of human insulin degrading enzyme
Descriptor: Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-10-05
Release date:2017-11-08
Last modified:2024-03-13
Method:ELECTRON MICROSCOPY (6.5 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6BF6
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BU of 6bf6 by Molmil
Cryo-EM structure of human insulin degrading enzyme
Descriptor: Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-10-26
Release date:2018-02-07
Last modified:2024-03-13
Method:ELECTRON MICROSCOPY (6.5 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6B3Q
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BU of 6b3q by Molmil
Cryo-EM structure of human insulin degrading enzyme in complex with insulin
Descriptor: Insulin, Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-09-22
Release date:2017-11-22
Last modified:2021-04-28
Method:ELECTRON MICROSCOPY (3.7 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6BFC
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BU of 6bfc by Molmil
Cryo-EM structure of human insulin degrading enzyme in complex with insulin
Descriptor: Insulin, Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-10-26
Release date:2017-12-27
Last modified:2021-04-28
Method:ELECTRON MICROSCOPY (3.7 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6B7Z
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BU of 6b7z by Molmil
Cryo-EM structure of human insulin degrading enzyme in complex with FAB H11 heavy chain and FAB H11 light chain
Descriptor: FAB H11 heavy chain, FAB H11 light chain, Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-10-05
Release date:2018-01-10
Last modified:2024-10-09
Method:ELECTRON MICROSCOPY (6.5 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6BF9
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BU of 6bf9 by Molmil
Cryo-EM structure of human insulin degrading enzyme in complex with FAB H11-E heavy chain, FAB H11-E light chain
Descriptor: Fab H11-E heavy chain, Fab H11-E light chain, Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-10-26
Release date:2018-02-07
Last modified:2021-04-28
Method:ELECTRON MICROSCOPY (7.2 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6BF7
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BU of 6bf7 by Molmil
Cryo-EM structure of human insulin degrading enzyme in complex with FAB H11-E heavy chain, FAB H11-E light chain
Descriptor: Fab H11-E heavy chain, Fab H11-E light chain, Insulin-degrading enzyme
Authors:Liang, W.G, Zhang, Z, Bailey, L.J, Kossiakoff, A.A, Tan, Y.Z, Wei, H, Carragher, B, Potter, S.C, Tang, W.J.
Deposit date:2017-10-26
Release date:2018-02-07
Last modified:2024-10-23
Method:ELECTRON MICROSCOPY (6.5 Å)
Cite:Ensemble cryoEM elucidates the mechanism of insulin capture and degradation by human insulin degrading enzyme.
Elife, 7, 2018
6CE9
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BU of 6ce9 by Molmil
Insulin Receptor ectodomain in complex with two insulin molecules
Descriptor: 2-acetamido-2-deoxy-beta-D-glucopyranose, 2-acetamido-2-deoxy-beta-D-glucopyranose-(1-4)-2-acetamido-2-deoxy-beta-D-glucopyranose, 2-acetamido-2-deoxy-beta-D-glucopyranose-(1-4)-[alpha-L-fucopyranose-(1-6)]2-acetamido-2-deoxy-beta-D-glucopyranose, ...
Authors:Scapin, G, Dandey, V.P, Zhang, Z, Strickland, C, Potter, C.S, Carragher, B.
Deposit date:2018-02-11
Release date:2018-03-14
Last modified:2020-07-29
Method:ELECTRON MICROSCOPY (4.3 Å)
Cite:Structure of the insulin receptor-insulin complex by single-particle cryo-EM analysis.
Nature, 556, 2018
6CE7
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BU of 6ce7 by Molmil
Insulin Receptor ectodomain in complex with one insulin molecule
Descriptor: Insulin A chain, Insulin B chain, Insulin receptor, ...
Authors:Scapin, G, Dandey, V.P, Zhang, Z, Strickland, C, Potter, C.S, Carragher, B.
Deposit date:2018-02-11
Release date:2018-03-14
Last modified:2024-10-23
Method:ELECTRON MICROSCOPY (7.4 Å)
Cite:Structure of the insulin receptor-insulin complex by single-particle cryo-EM analysis.
Nature, 556, 2018

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