3W5Z
| MamM-CTD D249A | 分子名称: | Magnetosome protein MamM, SODIUM ION, SULFATE ION | 著者 | Zeytuni, N, Davidov, G, Zarivach, R. | 登録日 | 2013-02-10 | 公開日 | 2014-04-16 | 最終更新日 | 2023-11-08 | 実験手法 | X-RAY DIFFRACTION (1.66 Å) | 主引用文献 | Cation diffusion facilitators transport initiation and regulation is mediated by cation induced conformational changes of the cytoplasmic domain Plos One, 9, 2014
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3W66
| MamM-CTD D249A and H285A | 分子名称: | Magnetosome protein MamM | 著者 | Zeytuni, N, Davidov, G, Zarivach, R. | 登録日 | 2013-02-11 | 公開日 | 2014-04-16 | 最終更新日 | 2023-11-08 | 実験手法 | X-RAY DIFFRACTION (2.05 Å) | 主引用文献 | Cation diffusion facilitators transport initiation and regulation is mediated by cation induced conformational changes of the cytoplasmic domain Plos One, 9, 2014
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3W62
| MamM-CTD E289A | 分子名称: | Magnetosome protein MamM, SULFATE ION | 著者 | Zeytuni, N, Davidov, G, Zarivach, R. | 登録日 | 2013-02-10 | 公開日 | 2014-04-16 | 最終更新日 | 2023-11-08 | 実験手法 | X-RAY DIFFRACTION (1.64 Å) | 主引用文献 | Cation diffusion facilitators transport initiation and regulation is mediated by cation induced conformational changes of the cytoplasmic domain Plos One, 9, 2014
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3VTY
| Crystal structure of MamA | 分子名称: | CHLORIDE ION, MamA | 著者 | Zeytuni, N, Baran, D, Davidov, G, Zarivach, R. | 登録日 | 2012-06-08 | 公開日 | 2012-10-31 | 最終更新日 | 2024-03-20 | 実験手法 | X-RAY DIFFRACTION (2 Å) | 主引用文献 | Inter-phylum structural conservation of the magnetosome-associated TPR-containing protein, MamA J.Struct.Biol., 180, 2012
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3VTX
| Crystal structure of MamA protein | 分子名称: | GLYCEROL, MamA | 著者 | Zeytuni, N, Baran, D, Davidov, G, Zarivach, R. | 登録日 | 2012-06-08 | 公開日 | 2012-10-31 | 最終更新日 | 2024-03-20 | 実験手法 | X-RAY DIFFRACTION (1.75 Å) | 主引用文献 | Inter-phylum structural conservation of the magnetosome-associated TPR-containing protein, MamA J.Struct.Biol., 180, 2012
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3W8G
| MamM V260R | 分子名称: | Magnetosome protein MamM | 著者 | Zeytuni, N, Davidov, G, Zarivach, R. | 登録日 | 2013-03-12 | 公開日 | 2014-06-11 | 最終更新日 | 2023-11-08 | 実験手法 | X-RAY DIFFRACTION (2.05 Å) | 主引用文献 | Bacterial Magnetosome Biomineralization - A Novel Platform to Study Molecular Mechanisms of Human CDF-Related Type-II Diabetes Plos One, 9, 2014
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6EQZ
| A MamC-MIC insertion in MBP scaffold at position K170 | 分子名称: | Maltose-binding periplasmic protein,Tightly bound bacterial magnetic particle protein,Maltose-binding periplasmic protein, alpha-D-glucopyranose-(1-4)-alpha-D-glucopyranose | 著者 | Nudelman, H, Zarivach, R. | 登録日 | 2017-10-16 | 公開日 | 2017-11-01 | 最終更新日 | 2024-01-17 | 実験手法 | X-RAY DIFFRACTION (2.293 Å) | 主引用文献 | The importance of the helical structure of a MamC-derived magnetite-interacting peptide for its function in magnetite formation. Acta Crystallogr D Struct Biol, 74, 2018
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5MM3
| Unstructured MamC magnetite-binding protein located between two helices. | 分子名称: | Sugar ABC transporter substrate-binding protein,Magnetosome protein MamC,Sugar ABC transporter substrate-binding protein, alpha-D-glucopyranose-(1-4)-alpha-D-glucopyranose | 著者 | Nudelman, H, Zarivach, R. | 登録日 | 2016-12-08 | 公開日 | 2017-10-25 | 最終更新日 | 2024-01-17 | 実験手法 | X-RAY DIFFRACTION (2.1 Å) | 主引用文献 | The importance of the helical structure of a MamC-derived magnetite-interacting peptide for its function in magnetite formation. Acta Crystallogr D Struct Biol, 74, 2018
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6QFD
| The complex structure of hsRosR-S4 (vng0258/RosR-S4) | 分子名称: | DNA (28-MER), DNA-binding protein, MANGANESE (II) ION, ... | 著者 | Shaanan, B, Kutnowski, N. | 登録日 | 2019-01-10 | 公開日 | 2019-07-10 | 最終更新日 | 2024-01-24 | 実験手法 | X-RAY DIFFRACTION (2.133 Å) | 主引用文献 | Specificity of protein-DNA interactions in hypersaline environment: structural studies on complexes of Halobacterium salinarum oxidative stress-dependent protein hsRosR. Nucleic Acids Res., 47, 2019
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6QH0
| The complex structure of hsRosR-S5 (VNG0258H/RosR-S5) | 分子名称: | DNA (28-MER), MANGANESE (II) ION, SULFATE ION, ... | 著者 | Shaanan, B, Kutnowski, N. | 登録日 | 2019-01-14 | 公開日 | 2019-07-10 | 最終更新日 | 2024-01-24 | 実験手法 | X-RAY DIFFRACTION (2.436 Å) | 主引用文献 | Specificity of protein-DNA interactions in hypersaline environment: structural studies on complexes of Halobacterium salinarum oxidative stress-dependent protein hsRosR. Nucleic Acids Res., 47, 2019
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6QIL
| The complex structure of hsRosR-S1 (VNG0258H/RosR-S1) | 分子名称: | 2-(N-MORPHOLINO)-ETHANESULFONIC ACID, DNA (28-MER), DNA binding protein, ... | 著者 | Shaanan, B, Kutnowski, N. | 登録日 | 2019-01-21 | 公開日 | 2019-07-10 | 最終更新日 | 2024-01-24 | 実験手法 | X-RAY DIFFRACTION (2 Å) | 主引用文献 | Specificity of protein-DNA interactions in hypersaline environment: structural studies on complexes of Halobacterium salinarum oxidative stress-dependent protein hsRosR. Nucleic Acids Res., 47, 2019
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6QUA
| The complex structure of hsRosR-SG (vng0258/RosR-SG) | 分子名称: | DNA (28-MER), MANGANESE (II) ION, SULFATE ION, ... | 著者 | Shaanan, B, Kutnowski, N. | 登録日 | 2019-02-27 | 公開日 | 2019-07-10 | 最終更新日 | 2024-01-24 | 実験手法 | X-RAY DIFFRACTION (2.681 Å) | 主引用文献 | Specificity of protein-DNA interactions in hypersaline environment: structural studies on complexes of Halobacterium salinarum oxidative stress-dependent protein hsRosR. Nucleic Acids Res., 47, 2019
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6F5C
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6EZ1
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6FDH
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6FAQ
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5HO1
| MamB-CTD | 分子名称: | Magnetosome protein MamB, ZINC ION | 著者 | Keren, N, Zarivach, R. | 登録日 | 2016-01-19 | 公開日 | 2017-02-01 | 最終更新日 | 2024-01-10 | 実験手法 | X-RAY DIFFRACTION (2.53 Å) | 主引用文献 | The dual role of MamB in magnetosome membrane assembly and magnetite biomineralization. Mol. Microbiol., 107, 2018
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5HOK
| MamB-CTD mutant - D247A | 分子名称: | MAGNESIUM ION, Magnetosome protein MamB | 著者 | Keren, N, Zeytuni, N, Zarivach, R. | 登録日 | 2016-01-19 | 公開日 | 2017-02-01 | 最終更新日 | 2024-01-10 | 実験手法 | X-RAY DIFFRACTION (1.7 Å) | 主引用文献 | The dual role of MamB in magnetosome membrane assembly and magnetite biomineralization. Mol. Microbiol., 107, 2018
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5HSP
| MamM CTD M250L | 分子名称: | Magnetosome protein MamM, SULFATE ION | 著者 | Barber-Zucker, S, Zarivach, R. | 登録日 | 2016-01-26 | 公開日 | 2016-11-30 | 最終更新日 | 2024-01-10 | 実験手法 | X-RAY DIFFRACTION (1.79 Å) | 主引用文献 | Disease-Homologous Mutation in the Cation Diffusion Facilitator Protein MamM Causes Single-Domain Structural Loss and Signifies Its Importance. Sci Rep, 6, 2016
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