4TTO
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4TTM
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4TTL
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4TTK
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4TTN
| Quasi-racemic structure of [G6A]kalata B1 | 分子名称: | (4S)-2-METHYL-2,4-PENTANEDIOL, D-kalata B1, Kalata-B1 | 著者 | Wang, C.K, King, G.J, Craik, D.J. | 登録日 | 2014-06-22 | 公開日 | 2014-09-10 | 最終更新日 | 2024-10-30 | 実験手法 | X-RAY DIFFRACTION (1.2507 Å) | 主引用文献 | Racemic and Quasi-Racemic X-ray Structures of Cyclic Disulfide-Rich Peptide Drug Scaffolds. Angew.Chem.Int.Ed.Engl., 53, 2014
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5INZ
| Racemic structure of baboon theta defensin-2 | 分子名称: | 1,2-ETHANEDIOL, SULFATE ION, Theta defensin-2, ... | 著者 | Wang, C.K, King, G.J, Conibear, A.C, Ramos, M.C, Craik, D.J. | 登録日 | 2016-03-08 | 公開日 | 2016-04-27 | 最終更新日 | 2024-10-16 | 実験手法 | X-RAY DIFFRACTION (1.447 Å) | 主引用文献 | Mirror Images of Antimicrobial Peptides Provide Reflections on Their Functions and Amyloidogenic Properties. J.Am.Chem.Soc., 138, 2016
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2KHB
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2K7G
| Solution Structure of varv F | 分子名称: | Varv peptide F | 著者 | Wang, C.K. | 登録日 | 2008-08-10 | 公開日 | 2009-02-10 | 最終更新日 | 2024-10-30 | 実験手法 | SOLUTION NMR | 主引用文献 | Combined X-ray and NMR analysis of the stability of the cyclotide cystine knot fold that underpins its insecticidal activity and potential use as a drug scaffold J.Biol.Chem., 284, 2009
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2KCG
| Solution structure of cycloviolacin O2 | 分子名称: | Cycloviolacin-O2 | 著者 | Wang, C.K. | 登録日 | 2008-12-22 | 公開日 | 2009-07-21 | 最終更新日 | 2023-06-14 | 実験手法 | SOLUTION NMR | 主引用文献 | Despite a conserved cystine knot motif, different cyclotides have different membrane binding modes. Biophys.J., 97, 2009
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2KCH
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2KVX
| Solution structure of kalata B12 | 分子名称: | Kalata-B12 | 著者 | Wang, C.K. | 登録日 | 2010-03-29 | 公開日 | 2011-03-09 | 最終更新日 | 2016-06-01 | 実験手法 | SOLUTION NMR | 主引用文献 | The role of conserved Glu residue on cyclotide stability and activity: a structural and functional study of kalata B12, a naturally occurring Glu to Asp mutant. Biochemistry, 50, 2011
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6DL1
| Racemic structure of jatrophidin, an orbitide from Jatropha curcas | 分子名称: | jatrophidin | 著者 | Wang, C.K, King, G.J, Ramalho, S.D. | 登録日 | 2018-05-31 | 公開日 | 2018-11-14 | 最終更新日 | 2024-10-30 | 実験手法 | X-RAY DIFFRACTION (1.029 Å) | 主引用文献 | Synthesis, Racemic X-ray Crystallographic, and Permeability Studies of Bioactive Orbitides from Jatropha Species. J. Nat. Prod., 81, 2018
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6DL0
| Crystal structure of pohlianin C, an orbitide from Jatropha pohliana | 分子名称: | pohlianin C | 著者 | Wang, C.K, King, G.J, Ramalho, S.D. | 登録日 | 2018-05-31 | 公開日 | 2018-11-07 | 最終更新日 | 2023-07-26 | 実験手法 | X-RAY DIFFRACTION (1.2 Å) | 主引用文献 | Synthesis, Racemic X-ray Crystallographic, and Permeability Studies of Bioactive Orbitides from Jatropha Species. J. Nat. Prod., 81, 2018
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6DKZ
| Racemic structure of ribifolin, an orbitide from Jatropha ribifolia | 分子名称: | ribifolin | 著者 | Wang, C.K, King, G.J, Ramalho, S.D. | 登録日 | 2018-05-31 | 公開日 | 2018-11-14 | 最終更新日 | 2020-01-01 | 実験手法 | X-RAY DIFFRACTION (0.99 Å) | 主引用文献 | Synthesis, Racemic X-ray Crystallographic, and Permeability Studies of Bioactive Orbitides from Jatropha Species. J. Nat. Prod., 81, 2018
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6DKY
| Crystal structure of ribifolin, an orbitide from Jatropha ribifolia | 分子名称: | ILE-LEU-GLY-SER-ILE-ILE-LEU-GLY | 著者 | Wang, C.K, Ramalho, S.D, King, G.J, Craik, D.J. | 登録日 | 2018-05-31 | 公開日 | 2018-11-07 | 最終更新日 | 2020-01-01 | 実験手法 | X-RAY DIFFRACTION (1.239 Å) | 主引用文献 | Synthesis, Racemic X-ray Crystallographic, and Permeability Studies of Bioactive Orbitides from Jatropha Species. J. Nat. Prod., 81, 2018
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8GCR
| HPV16 E6-E6AP-p53 complex | 分子名称: | Cellular tumor antigen p53, Maltose/maltodextrin-binding periplasmic protein,Protein E6, Ubiquitin-protein ligase E3A, ... | 著者 | Bratkowski, M.A, Wang, J.C.K, Hao, Q, Nile, A.H. | 登録日 | 2023-03-02 | 公開日 | 2024-03-06 | 実験手法 | ELECTRON MICROSCOPY (3.38 Å) | 主引用文献 | Structure of the p53 degradation complex from HPV16. Nat Commun, 15, 2024
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7RIJ
| [I11G]hyen D | 分子名称: | ACETATE ION, Cyclotide hyen-D, D-[I11L]hyen D | 著者 | Du, Q, Huang, Y.H, Wang, C.K, Craik, D.J. | 登録日 | 2021-07-20 | 公開日 | 2021-09-22 | 最終更新日 | 2023-11-15 | 実験手法 | X-RAY DIFFRACTION (1.3 Å) | 主引用文献 | Enabling efficient folding and high-resolution crystallographic analysis of bracelet cyclotides Molecules, 26(18), 2021
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7RIH
| hyen D | 分子名称: | CITRATE ANION, Cyclotide hyen-D, D-[I11L]hyen D | 著者 | Du, Q, Huang, Y.H, Craik, D.J, Wang, C.K. | 登録日 | 2021-07-20 | 公開日 | 2021-09-22 | 最終更新日 | 2024-10-09 | 実験手法 | X-RAY DIFFRACTION (1.35 Å) | 主引用文献 | Enabling efficient folding and high-resolution crystallographic analysis of bracelet cyclotides Molecules, 26(18), 2021
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7RII
| [I11L]hyen D crystal structure | 分子名称: | Cyclotide hyen-D, PHOSPHATE ION | 著者 | Du, Q, Huang, Y.H, Craik, D.J, Wang, C.K. | 登録日 | 2021-07-20 | 公開日 | 2021-09-29 | 最終更新日 | 2024-10-23 | 実験手法 | X-RAY DIFFRACTION (1.22 Å) | 主引用文献 | Enabling efficient folding and high-resolution crystallographic analysis of bracelet cyclotides Molecules, 26(18), 2021
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4LRV
| Crystal structure of DndE from Escherichia coli B7A involved in DNA phosphorothioation modification | 分子名称: | DNA sulfur modification protein DndE | 著者 | Hu, W, Wang, C.K, Liang, J.D, Zhang, T.L, Yang, M, Hu, Z.P, Wang, Z.J, Lan, W.X, Wu, H.M, Ding, J.P, Wu, G, Deng, Z.X, Cao, C. | 登録日 | 2013-07-21 | 公開日 | 2013-08-28 | 最終更新日 | 2024-10-30 | 実験手法 | X-RAY DIFFRACTION (2.5 Å) | 主引用文献 | Structural insights into DndE from Escherichia coli B7A involved in DNA phosphorothioation modification Cell Res., 22, 2012
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6U7X
| NMR solution structure of triazole bridged plasmin inhibitor | 分子名称: | 1-methyl-1H-1,2,3-triazole, GLY-ARG-ALA-TYR-LYS-SER-LYS-PRO-PRO-ILE-ALA-PHE-PRO-ASP | 著者 | White, A.M, Harvey, P.J, Wang, C.K, Durek, T, Craik, D.J. | 登録日 | 2019-09-03 | 公開日 | 2020-04-22 | 最終更新日 | 2024-10-30 | 実験手法 | SOLUTION NMR | 主引用文献 | Application and Structural Analysis of Triazole-Bridged Disulfide Mimetics in Cyclic Peptides. Angew.Chem.Int.Ed.Engl., 59, 2020
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7RN3
| hyen D solution structure | 分子名称: | Cyclotide hyen-D | 著者 | Du, Q, Huang, Y.H, Craik, D.J, Wang, C.K. | 登録日 | 2021-07-29 | 公開日 | 2022-03-02 | 最終更新日 | 2022-12-07 | 実験手法 | SOLUTION NMR | 主引用文献 | Mutagenesis of bracelet cyclotide hyen D reveals functionally and structurally critical residues for membrane binding and cytotoxicity. J.Biol.Chem., 298, 2022
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3T85
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3T84
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3T82
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