7SI6
| Structure of ATP7B in state 1 | Descriptor: | MAGNESIUM ION, P-type Cu(+) transporter, TETRAFLUOROALUMINATE ION | Authors: | Bitter, R.M, Oh, S.C, Hite, R.K, Yuan, P. | Deposit date: | 2021-10-12 | Release date: | 2022-03-16 | Method: | ELECTRON MICROSCOPY (3.32 Å) | Cite: | Structure of the Wilson disease copper transporter ATP7B. Sci Adv, 8, 2022
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7SI7
| Structure of ATP7B in state 2 | Descriptor: | MAGNESIUM ION, P-type Cu(+) transporter, TETRAFLUOROALUMINATE ION | Authors: | Bitter, R.M, Oh, S.C, Hite, R.K, Yuan, P. | Deposit date: | 2021-10-12 | Release date: | 2022-03-16 | Last modified: | 2024-06-05 | Method: | ELECTRON MICROSCOPY (3.49 Å) | Cite: | Structure of the Wilson disease copper transporter ATP7B. Sci Adv, 8, 2022
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7SI3
| Consensus structure of ATP7B | Descriptor: | MAGNESIUM ION, P-type Cu(+) transporter, TETRAFLUOROALUMINATE ION | Authors: | Bitter, R.M, Oh, S.C, Hite, R.K, Yuan, P. | Deposit date: | 2021-10-12 | Release date: | 2022-03-16 | Last modified: | 2024-10-16 | Method: | ELECTRON MICROSCOPY (3.19 Å) | Cite: | Structure of the Wilson disease copper transporter ATP7B. Sci Adv, 8, 2022
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6K7L
| Cryo-EM structure of the human P4-type flippase ATP8A1-CDC50 (E2P state class2) | Descriptor: | 2-acetamido-2-deoxy-beta-D-glucopyranose, BERYLLIUM TRIFLUORIDE ION, CHOLESTEROL HEMISUCCINATE, ... | Authors: | Hiraizumi, M, Yamashita, K, Nishizawa, T, Nureki, O. | Deposit date: | 2019-06-07 | Release date: | 2019-08-28 | Last modified: | 2021-02-03 | Method: | ELECTRON MICROSCOPY (2.83 Å) | Cite: | Cryo-EM structures capture the transport cycle of the P4-ATPase flippase. Science, 365, 2019
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6JXK
| Rb+-bound E2-MgF state of the gastric proton pump (Wild-type) | Descriptor: | 2-acetamido-2-deoxy-beta-D-glucopyranose, CHOLESTEROL, MAGNESIUM ION, ... | Authors: | Abe, K, Irie, K, Yamamoto, K. | Deposit date: | 2019-04-23 | Release date: | 2019-08-14 | Last modified: | 2023-11-22 | Method: | X-RAY DIFFRACTION (4.3 Å) | Cite: | A single K + -binding site in the crystal structure of the gastric proton pump. Elife, 8, 2019
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6K7M
| Cryo-EM structure of the human P4-type flippase ATP8A1-CDC50 (E2Pi-PL state) | Descriptor: | (2~{S})-2-azanyl-3-[[(2~{R})-3-hexadecanoyloxy-2-[(~{Z})-octadec-9-enoyl]oxy-propoxy]-oxidanyl-phosphoryl]oxy-propanoic acid, 2-acetamido-2-deoxy-beta-D-glucopyranose, CHOLESTEROL HEMISUCCINATE, ... | Authors: | Hiraizumi, M, Yamashita, K, Nishizawa, T, Nureki, O. | Deposit date: | 2019-06-07 | Release date: | 2019-08-28 | Last modified: | 2021-02-10 | Method: | ELECTRON MICROSCOPY (2.95 Å) | Cite: | Cryo-EM structures capture the transport cycle of the P4-ATPase flippase. Science, 365, 2019
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6LKN
| Crystal structure of ATP11C-CDC50A in PtdSer-bound E2P state | Descriptor: | 1-deoxy-alpha-D-mannopyranose, 2-acetamido-2-deoxy-beta-D-glucopyranose, Cell cycle control protein 50A, ... | Authors: | Abe, K, Irie, K, Nakanishi, H, Hasegawa, K. | Deposit date: | 2019-12-19 | Release date: | 2020-06-10 | Last modified: | 2023-11-22 | Method: | X-RAY DIFFRACTION (3.9 Å) | Cite: | Crystal structure of a human plasma membrane phospholipid flippase. J.Biol.Chem., 295, 2020
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6LN5
| CryoEM structure of SERCA2b T1032stop in E1-2Ca2+-AMPPCP (class1) | Descriptor: | CALCIUM ION, MAGNESIUM ION, PHOSPHOMETHYLPHOSPHONIC ACID ADENYLATE ESTER, ... | Authors: | Zhang, Y, Tsutsumi, A, Watanabe, S, Inaba, K. | Deposit date: | 2019-12-28 | Release date: | 2020-08-26 | Last modified: | 2020-09-16 | Method: | ELECTRON MICROSCOPY (2.8 Å) | Cite: | Cryo-EM structures of SERCA2b reveal the mechanism of regulation by the luminal extension tail. Sci Adv, 6, 2020
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6LN9
| CryoEM structure of SERCA2b T1032stop in E2-BeF3- state (class2) | Descriptor: | BERYLLIUM TRIFLUORIDE ION, MAGNESIUM ION, Sarcoplasmic/endoplasmic reticulum calcium ATPase 2 | Authors: | Zhang, Y, Tsutsumi, A, Watanabe, S, Inaba, K. | Deposit date: | 2019-12-28 | Release date: | 2020-08-26 | Last modified: | 2020-09-16 | Method: | ELECTRON MICROSCOPY (3.4 Å) | Cite: | Cryo-EM structures of SERCA2b reveal the mechanism of regulation by the luminal extension tail. Sci Adv, 6, 2020
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6LN7
| CryoEM structure of SERCA2b T1032stop in E1-2Ca2+-AMPPCP (class3) | Descriptor: | CALCIUM ION, MAGNESIUM ION, PHOSPHOMETHYLPHOSPHONIC ACID ADENYLATE ESTER, ... | Authors: | Zhang, Y, Tsutsumi, A, Watanabe, S, Inaba, K. | Deposit date: | 2019-12-28 | Release date: | 2020-08-26 | Last modified: | 2024-03-27 | Method: | ELECTRON MICROSCOPY (2.8 Å) | Cite: | Cryo-EM structures of SERCA2b reveal the mechanism of regulation by the luminal extension tail. Sci Adv, 6, 2020
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6LN6
| CryoEM structure of SERCA2b T1032stop in E1-2Ca2+-AMPPCP (class2) | Descriptor: | CALCIUM ION, MAGNESIUM ION, PHOSPHOMETHYLPHOSPHONIC ACID ADENYLATE ESTER, ... | Authors: | Zhang, Y, Tsutsumi, A, Watanabe, S, Inaba, K. | Deposit date: | 2019-12-28 | Release date: | 2020-08-26 | Last modified: | 2024-10-16 | Method: | ELECTRON MICROSCOPY (2.9 Å) | Cite: | Cryo-EM structures of SERCA2b reveal the mechanism of regulation by the luminal extension tail. Sci Adv, 6, 2020
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6LLE
| CryoEM structure of SERCA2b WT in E1-2Ca2+-AMPPCP state. | Descriptor: | CALCIUM ION, MAGNESIUM ION, PHOSPHOMETHYLPHOSPHONIC ACID ADENYLATE ESTER, ... | Authors: | Zhang, Y, Tsutsumi, A, Watanabe, S, Inaba, K. | Deposit date: | 2019-12-23 | Release date: | 2020-08-26 | Last modified: | 2024-03-27 | Method: | ELECTRON MICROSCOPY (2.9 Å) | Cite: | Cryo-EM structures of SERCA2b reveal the mechanism of regulation by the luminal extension tail. Sci Adv, 6, 2020
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6LLY
| CryoEM structure of SERCA2b WT in E2-BeF3- state | Descriptor: | BERYLLIUM TRIFLUORIDE ION, MAGNESIUM ION, Sarcoplasmic/endoplasmic reticulum calcium ATPase 2 | Authors: | Zhang, Y, Tsutsumi, A, Watanabe, S, Inaba, K. | Deposit date: | 2019-12-24 | Release date: | 2020-08-26 | Last modified: | 2024-03-27 | Method: | ELECTRON MICROSCOPY (2.8 Å) | Cite: | Cryo-EM structures of SERCA2b reveal the mechanism of regulation by the luminal extension tail. Sci Adv, 6, 2020
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7VH5
| Cryo-EM structure of the hexameric plasma membrane H+-ATPase in the autoinhibited state (pH 7.4, C1 symmetry) | Descriptor: | (2S)-3-(hexadecanoyloxy)-2-[(9Z)-octadec-9-enoyloxy]propyl 2-(trimethylammonio)ethyl phosphate, Plasma membrane ATPase 1, SPHINGOSINE | Authors: | Zhao, P, Zhao, C, Chen, D, Yun, C, Li, H, Bai, L. | Deposit date: | 2021-09-21 | Release date: | 2021-11-24 | Last modified: | 2024-06-19 | Method: | ELECTRON MICROSCOPY (3.2 Å) | Cite: | Structure and activation mechanism of the hexameric plasma membrane H + -ATPase. Nat Commun, 12, 2021
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7VH6
| Cryo-EM structure of the hexameric plasma membrane H+-ATPase in the active state (pH 6.0, BeF3-, conformation 1, C1 symmetry) | Descriptor: | (2S)-3-(hexadecanoyloxy)-2-[(9Z)-octadec-9-enoyloxy]propyl 2-(trimethylammonio)ethyl phosphate, BERYLLIUM TRIFLUORIDE ION, Plasma membrane ATPase 1 | Authors: | Zhao, P, Zhao, C, Chen, D, Yun, C, Li, H, Bai, L. | Deposit date: | 2021-09-21 | Release date: | 2021-11-24 | Last modified: | 2022-02-16 | Method: | ELECTRON MICROSCOPY (3.8 Å) | Cite: | Structure and activation mechanism of the hexameric plasma membrane H + -ATPase. Nat Commun, 12, 2021
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7VPK
| Cryo-EM structure of the human ATP13A2 (SPM-bound E2P state) | Descriptor: | 2-acetamido-2-deoxy-beta-D-glucopyranose-(1-4)-2-acetamido-2-deoxy-beta-D-glucopyranose, BERYLLIUM TRIFLUORIDE ION, MAGNESIUM ION, ... | Authors: | Tomita, A, Yamashita, K, Nishizawa, T, Nureki, O. | Deposit date: | 2021-10-17 | Release date: | 2021-12-29 | Last modified: | 2024-10-16 | Method: | ELECTRON MICROSCOPY (3.92 Å) | Cite: | Cryo-EM reveals mechanistic insights into lipid-facilitated polyamine export by human ATP13A2. Mol.Cell, 81, 2021
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7VPI
| Cryo-EM structure of the human ATP13A2 (E1-ATP state) | Descriptor: | MAGNESIUM ION, PHOSPHOMETHYLPHOSPHONIC ACID ADENYLATE ESTER, Polyamine-transporting ATPase 13A2 | Authors: | Tomita, A, Yamashita, K, Nishizawa, T, Nureki, O. | Deposit date: | 2021-10-17 | Release date: | 2021-12-29 | Last modified: | 2024-06-19 | Method: | ELECTRON MICROSCOPY (3.6 Å) | Cite: | Cryo-EM reveals mechanistic insights into lipid-facilitated polyamine export by human ATP13A2. Mol.Cell, 81, 2021
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7VPL
| Cryo-EM structure of the human ATP13A2 (SPM-bound E2Pi state) | Descriptor: | 2-acetamido-2-deoxy-beta-D-glucopyranose-(1-4)-2-acetamido-2-deoxy-beta-D-glucopyranose, MAGNESIUM ION, Polyamine-transporting ATPase 13A2, ... | Authors: | Tomita, A, Yamashita, K, Nishizawa, T, Nureki, O. | Deposit date: | 2021-10-17 | Release date: | 2021-12-29 | Method: | ELECTRON MICROSCOPY (3.5 Å) | Cite: | Cryo-EM reveals mechanistic insights into lipid-facilitated polyamine export by human ATP13A2. Mol.Cell, 81, 2021
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7VPJ
| Cryo-EM structure of the human ATP13A2 (E1P-ADP state) | Descriptor: | 2-acetamido-2-deoxy-beta-D-glucopyranose, ADENOSINE-5'-DIPHOSPHATE, MAGNESIUM ION, ... | Authors: | Tomita, A, Yamashita, K, Nishizawa, T, Nureki, O. | Deposit date: | 2021-10-17 | Release date: | 2021-12-29 | Method: | ELECTRON MICROSCOPY (3.5 Å) | Cite: | Cryo-EM reveals mechanistic insights into lipid-facilitated polyamine export by human ATP13A2. Mol.Cell, 81, 2021
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7VSG
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7VSH
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7VGI
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7VGH
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7VGJ
| Cryo-EM structure of the human P4-type flippase ATP8B1-CDC50A in the auto-inhibited E2Pi-PS state | Descriptor: | Cell cycle control protein 50A, O-[(R)-{[(2R)-2,3-bis(octadecanoyloxy)propyl]oxy}(hydroxy)phosphoryl]-L-serine, Phospholipid-transporting ATPase IC | Authors: | Chen, M.T, Chen, Y, Chen, Z.P, Zhou, C.Z, Hou, W.T, Chen, Y. | Deposit date: | 2021-09-16 | Release date: | 2022-03-30 | Last modified: | 2024-10-16 | Method: | ELECTRON MICROSCOPY (3.98 Å) | Cite: | Structural insights into the activation of autoinhibited human lipid flippase ATP8B1 upon substrate binding. Proc.Natl.Acad.Sci.USA, 119, 2022
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6LN8
| CryoEM structure of SERCA2b T1032stop in E2-BeF3- state (class1) | Descriptor: | BERYLLIUM TRIFLUORIDE ION, MAGNESIUM ION, Sarcoplasmic/endoplasmic reticulum calcium ATPase 2 | Authors: | Zhang, Y, Tsutsumi, A, Watanabe, S, Inaba, K. | Deposit date: | 2019-12-28 | Release date: | 2020-08-26 | Last modified: | 2024-03-27 | Method: | ELECTRON MICROSCOPY (3.1 Å) | Cite: | Cryo-EM structures of SERCA2b reveal the mechanism of regulation by the luminal extension tail. Sci Adv, 6, 2020
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