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PDBsum entry 1m4c

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protein Protein-protein interface(s) links
Cytokine PDB id
1m4c

 

 

 

 

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Contents
Protein chains
114 a.a. *
* Residue conservation analysis
PDB id:
1m4c
Name: Cytokine
Title: Crystal structure of human interleukin-2
Structure: Interleukin-2. Chain: a, b. Synonym: il-2, t-cell growth factor, tcgf, aldesleukin. Engineered: yes
Source: Homo sapiens. Human. Organism_taxid: 9606. Expressed in: escherichia coli bl21. Expression_system_taxid: 511693.
Resolution:
2.40Å     R-factor:   0.288     R-free:   0.333
Authors: M.A.Arkin,M.Randal,W.L.Delano,J.Hyde,T.N.Luong,J.D.Oslob,D.R.Raphael, L.Taylor,J.Wang,R.S.Mcdowell,J.A.Wells,A.C.Braisted
Key ref:
M.R.Arkin et al. (2003). Binding of small molecules to an adaptive protein-protein interface. Proc Natl Acad Sci U S A, 100, 1603-1608. PubMed id: 12582206 DOI: 10.1073/pnas.252756299
Date:
02-Jul-02     Release date:   31-Jul-02    
PROCHECK
Go to PROCHECK summary
 Headers
 References

Protein chains
Pfam   ArchSchema ?
P60568  (IL2_HUMAN) -  Interleukin-2 from Homo sapiens
Seq:
Struc:
153 a.a.
114 a.a.
Key:    PfamA domain  Secondary structure  CATH domain

 

 
DOI no: 10.1073/pnas.252756299 Proc Natl Acad Sci U S A 100:1603-1608 (2003)
PubMed id: 12582206  
 
 
Binding of small molecules to an adaptive protein-protein interface.
M.R.Arkin, M.Randal, W.L.DeLano, J.Hyde, T.N.Luong, J.D.Oslob, D.R.Raphael, L.Taylor, J.Wang, R.S.McDowell, J.A.Wells, A.C.Braisted.
 
  ABSTRACT  
 
Understanding binding properties at protein-protein interfaces has been limited to structural and mutational analyses of natural binding partners or small peptides identified by phage display. Here, we present a high-resolution analysis of a nonpeptidyl small molecule, previously discovered by medicinal chemistry [Tilley, J. W., et al. (1997) J. Am. Chem. Soc. 119, 7589-7590], which binds to the cytokine IL-2. The small molecule binds to the same site that binds the IL-2 alpha receptor and buries into a groove not seen in the free structure of IL-2. Comparison of the bound and several free structures shows this site to be composed of two subsites: one is rigid, and the other is highly adaptive. Thermodynamic data suggest the energy barriers between these conformations are low. The subsites were dissected by using a site-directed screening method called tethering, in which small fragments were captured by disulfide interchange with cysteines introduced into IL-2 around these subsites. X-ray structures with the tethered fragments show that the subsite-binding interactions are similar to those observed with the original small molecule. Moreover, the adaptive subsite tethered many more compounds than did the rigid one. Thus, the adaptive nature of a protein-protein interface provides sites for small molecules to bind and underscores the challenge of applying structure-based design strategies that cannot accurately predict a dynamic protein surface.
 
  Selected figure(s)  
 
Figure 1.
Fig. 1. (a) Compound 1/IL-2 complex determined by x-ray crystallography (Table 1). Compound 1 is shown in green sticks, IL-2 in white ribbon. The B-C loop is not defined by the electron density and is shown schematically in white spheres. (b) Interaction of Compound 1 (green sticks) with IL-2 (white sticks) taken from x-ray coordinates. Key contact side chains are labeled; H-bonds and distances are shown by yellow dotted lines. All molecular graphic images were produced with PYMOL (W. L. DeLano, San Carlos, CA).
Figure 2.
Fig. 2. Adaptivity of the IL-2-binding surface. (a) Structure of the complex of IL-2 and Compound 1, shown as a surface representation of IL-2 (white and orange) and stick representation of Compound 1 (green). The residues that comprise the IL-2R -binding hot spot are shown in orange. Residues contacting the molecule are labeled. (b-d) Surface representation of three different unliganded structures (21) (b) and Native I and II (c and d; Table 1). Compound 1 is overlaid to emphasize the extent of rearrangement that occurs in both of the unliganded structures and in the liganded form. Movie 1 (RIGIMOL, W. L. DeLano) highlights the dynamic nature of this site across this series of structures.
 
  Figures were selected by the author.  

Literature references that cite this PDB file's key reference

  PubMed id Reference
22446627 A.M.Levin, D.L.Bates, A.M.Ring, C.Krieg, J.T.Lin, L.Su, I.Moraga, M.E.Raeber, G.R.Bowman, P.Novick, V.S.Pande, C.G.Fathman, O.Boyman, and K.C.Garcia (2012).
Exploiting a natural conformational switch to engineer an interleukin-2 'superkine'.
  Nature, 484, 529-533.
PDB codes: 3qaz 3qb1
21294846 P.L.Scognamiglio, N.Doti, P.Grieco, C.Pedone, M.Ruvo, and D.Marasco (2011).
Discovery of small peptide antagonists of PED/PEA15-D4α interaction from simplified combinatorial libraries.
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21256157 R.Eglen, and T.Reisine (2011).
Drug discovery and the human kinome: recent trends.
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19847777 A.Tripathi, and G.E.Kellogg (2010).
A novel and efficient tool for locating and characterizing protein cavities and binding sites.
  Proteins, 78, 825-842.  
20691107 A.Zen, C.Micheletti, O.Keskin, and R.Nussinov (2010).
Comparing interfacial dynamics in protein-protein complexes: an elastic network approach.
  BMC Struct Biol, 10, 26.  
20839295 C.J.Illingworth, P.D.Scott, K.E.Parkes, C.R.Snell, M.P.Campbell, and C.A.Reynolds (2010).
Connectivity and binding-site recognition: applications relevant to drug design.
  J Comput Chem, 31, 2677-2688.  
20430957 C.Wichmann, Y.Becker, L.Chen-Wichmann, V.Vogel, A.Vojtkova, J.Herglotz, S.Moore, J.Koch, J.Lausen, W.Mäntele, H.Gohlke, and M.Grez (2010).
Dimer-tetramer transition controls RUNX1/ETO leukemogenic activity.
  Blood, 116, 603-613.  
20140189 F.P.Davis, and A.Sali (2010).
The overlap of small molecule and protein binding sites within families of protein structures.
  PLoS Comput Biol, 6, e1000668.  
20117133 J.L.Galzi, M.Hachet-Haas, D.Bonnet, F.Daubeuf, S.Lecat, M.Hibert, J.Haiech, and N.Frossard (2010).
Neutralizing endogenous chemokines with small molecules. Principles and potential therapeutic applications.
  Pharmacol Ther, 126, 39-55.  
20812316 K.J.Peterson-Kaufman, C.D.Carlson, J.A.Rodríguez-Martínez, and A.Z.Ansari (2010).
Nucleating the assembly of macromolecular complexes.
  Chembiochem, 11, 1955-1962.  
  20865533 U.D.Ramirez, F.Myachina, L.Stith, and E.K.Jaffe (2010).
Docking to large allosteric binding sites on protein surfaces.
  Adv Exp Med Biol, 680, 481-488.  
20161451 C.L.McClendon, G.Friedland, D.L.Mobley, H.Amirkhani, and M.P.Jacobson (2009).
Quantifying Correlations Between Allosteric Sites in Thermodynamic Ensembles.
  J Chem Theory Comput, 5, 2486-2502.  
19443265 G.E.de Kloe, D.Bailey, R.Leurs, and I.J.de Esch (2009).
Transforming fragments into candidates: small becomes big in medicinal chemistry.
  Drug Discov Today, 14, 630-646.  
19081927 K.Busschots, J.De Rijck, F.Christ, and Z.Debyser (2009).
In search of small molecules blocking interactions between HIV proteins and intracellular cofactors.
  Mol Biosyst, 5, 21-31.  
19009549 M.A.Shaker, and H.M.Younes (2009).
Interleukin-2: evaluation of routes of administration and current delivery systems in cancer therapy.
  J Pharm Sci, 98, 2268-2298.  
19113835 S.Liang, L.Li, W.L.Hsu, M.N.Pilcher, V.Uversky, Y.Zhou, A.K.Dunker, and S.O.Meroueh (2009).
Exploring the molecular design of protein interaction sites with molecular dynamics simulations and free energy calculations.
  Biochemistry, 48, 399-414.  
18817510 X.Wang, P.Lupardus, S.L.Laporte, and K.C.Garcia (2009).
Structural biology of shared cytokine receptors.
  Annu Rev Immunol, 27, 29-60.  
18281313 J.Guo, X.Wu, D.Y.Zhang, and K.Lin (2008).
Genome-wide inference of protein interaction sites: lessons from the yeast high-quality negative protein-protein interaction dataset.
  Nucleic Acids Res, 36, 2002-2011.  
18785728 P.Cozzini, G.E.Kellogg, F.Spyrakis, D.J.Abraham, G.Costantino, A.Emerson, F.Fanelli, H.Gohlke, L.A.Kuhn, G.M.Morris, M.Orozco, T.A.Pertinhez, M.Rizzi, and C.A.Sotriffer (2008).
Target flexibility: an emerging consideration in drug discovery and design.
  J Med Chem, 51, 6237-6255.  
18062660 Z.Miao, M.R.McCoy, D.D.Singh, B.Barrios, O.L.Hsu, S.M.Cheal, and C.F.Meares (2008).
Cysteinylated protein as reactive disulfide: an alternative route to affinity labeling.
  Bioconjug Chem, 19, 15-19.  
17541991 C.H.Röhrig, C.Loch, J.Y.Guan, G.Siegal, and M.Overhand (2007).
Fragment-Based Synthesis and SAR of Modified FKBP Ligands: Influence of Different Linking on Binding Affinity.
  ChemMedChem, 2, 1054-1070.  
17933849 F.S.Domingues, J.Rahnenführer, and T.Lengauer (2007).
Conformational analysis of alternative protein structures.
  Bioinformatics, 23, 3131-3138.  
17444517 G.Tóth, K.Mukhyala, and J.A.Wells (2007).
Computational approach to site-directed ligand discovery.
  Proteins, 68, 551-560.  
17195156 I.S.Moreira, P.A.Fernandes, and M.J.Ramos (2007).
Computational alanine scanning mutagenesis--an improved methodological approach.
  J Comput Chem, 28, 644-654.  
17546660 I.S.Moreira, P.A.Fernandes, and M.J.Ramos (2007).
Hot spots--a review of the protein-protein interface determinant amino-acid residues.
  Proteins, 68, 803-812.  
18075579 J.A.Wells, and C.L.McClendon (2007).
Reaching for high-hanging fruit in drug discovery at protein-protein interfaces.
  Nature, 450, 1001-1009.  
17994597 J.Cramer, S.Kopp, S.E.Bates, P.Chiba, and G.F.Ecker (2007).
Multispecificity of Drug Transporters: Probing Inhibitor Selectivity for the Human Drug Efflux Transporters ABCB1 and ABCG2.
  ChemMedChem, 2, 1783-1788.  
17427181 J.K.Murray, and S.H.Gellman (2007).
Targeting protein-protein interactions: lessons from p53/MDM2.
  Biopolymers, 88, 657-686.  
17563369 J.Viaud, M.Zeghouf, H.Barelli, J.C.Zeeh, A.Padilla, B.Guibert, P.Chardin, C.A.Royer, J.Cherfils, and A.Chavanieu (2007).
Structure-based discovery of an inhibitor of Arf activation by Sec7 domains through targeting of protein-protein complexes.
  Proc Natl Acad Sci U S A, 104, 10370-10375.  
17888520 L.Q.Al-Mawsawi, and N.Neamati (2007).
Blocking interactions between HIV-1 integrase and cellular cofactors: an emerging anti-retroviral strategy.
  Trends Pharmacol Sci, 28, 526-535.  
17488107 V.Vacic, C.J.Oldfield, A.Mohan, P.Radivojac, M.S.Cortese, V.N.Uversky, and A.K.Dunker (2007).
Characterization of molecular recognition features, MoRFs, and their binding partners.
  J Proteome Res, 6, 2351-2366.  
16484997 A.Whitty, and G.Kumaravel (2006).
Between a rock and a hard place?
  Nat Chem Biol, 2, 112-118.  
17032757 C.D.Thanos, W.L.DeLano, and J.A.Wells (2006).
Hot-spot mimicry of a cytokine receptor by a small molecule.
  Proc Natl Acad Sci U S A, 103, 15422-15427.
PDB code: 1qvn
17009316 D.C.Fry (2006).
Protein-protein interactions as targets for small molecule drug discovery.
  Biopolymers, 84, 535-552.  
16538616 I.S.Moreira, P.A.Fernandes, and M.J.Ramos (2006).
Detailed microscopic study of the full zipA:FtsZ interface.
  Proteins, 63, 811-821.  
16568448 J.Y.Trosset, C.Dalvit, S.Knapp, M.Fasolini, M.Veronesi, S.Mantegani, L.M.Gianellini, C.Catana, M.Sundström, P.F.Stouten, and J.K.Moll (2006).
Inhibition of protein-protein interactions: the discovery of druglike beta-catenin inhibitors by combining virtual and biophysical screening.
  Proteins, 64, 60-67.  
15781856 K.E.Hauschild, R.E.Metzler, H.D.Arndt, R.Moretti, M.Raffaelle, P.B.Dervan, and A.Z.Ansari (2005).
Temperature-sensitive protein-DNA dimerizers.
  Proc Natl Acad Sci U S A, 102, 5008-5013.  
15549676 R.L.Rich, and D.G.Myszka (2005).
Survey of the year 2003 commercial optical biosensor literature.
  J Mol Recognit, 18, 1.  
15908921 S.Eyckerman, I.Lemmens, D.Catteeuw, A.Verhee, J.Vandekerckhove, S.Lievens, and J.Tavernier (2005).
Reverse MAPPIT: screening for protein-protein interaction modifiers in mammalian cells.
  Nat Methods, 2, 427-433.  
15698573 Y.Li, Y.Huang, C.P.Swaminathan, S.J.Smith-Gill, and R.A.Mariuzza (2005).
Magnitude of the hydrophobic effect at central versus peripheral sites in protein-protein interfaces.
  Structure, 13, 297-307.
PDB codes: 1xgp 1xgq 1xgr 1xgt 1xgu
16042389 Z.Ding, G.I.Lee, X.Liang, F.Gallazzi, A.Arunima, and S.R.Van Doren (2005).
PhosphoThr peptide binding globally rigidifies much of the FHA domain from Arabidopsis receptor kinase-associated protein phosphatase.
  Biochemistry, 44, 10119-10134.  
15139811 D.A.Erlanson, J.A.Wells, and A.C.Braisted (2004).
Tethering: fragment-based drug discovery.
  Annu Rev Biophys Biomol Struct, 33, 199-223.  
15288250 D.A.Erlanson, and S.K.Hansen (2004).
Making drugs on proteins: site-directed ligand discovery for fragment-based lead assembly.
  Curr Opin Chem Biol, 8, 399-406.  
15043007 D.S.Dimitrov (2004).
Virus entry: molecular mechanisms and biomedical applications.
  Nat Rev Microbiol, 2, 109-122.  
15211515 H.Gohlke, L.A.Kuhn, and D.A.Case (2004).
Change in protein flexibility upon complex formation: analysis of Ras-Raf using molecular dynamics and a molecular framework approach.
  Proteins, 56, 322-337.  
15314233 J.A.Hardy, J.Lam, J.T.Nguyen, T.O'Brien, and J.A.Wells (2004).
Discovery of an allosteric site in the caspases.
  Proc Natl Acad Sci U S A, 101, 12461-12466.
PDB codes: 1shj 1shl
14749129 M.Lepourcelet, Y.N.Chen, D.S.France, H.Wang, P.Crews, F.Petersen, C.Bruseo, A.W.Wood, and R.A.Shivdasani (2004).
Small-molecule antagonists of the oncogenic Tcf/beta-catenin protein complex.
  Cancer Cell, 5, 91.  
15060526 M.R.Arkin, and J.A.Wells (2004).
Small-molecule inhibitors of protein-protein interactions: progressing towards the dream.
  Nat Rev Drug Discov, 3, 301-317.  
15044734 O.Keskin, C.J.Tsai, H.Wolfson, and R.Nussinov (2004).
A new, structurally nonredundant, diverse data set of protein-protein interfaces and its implications.
  Protein Sci, 13, 1043-1055.  
15036860 S.Vajda, and C.J.Camacho (2004).
Protein-protein docking: is the glass half-full or half-empty?
  Trends Biotechnol, 22, 110-116.  
15300826 T.Berg (2004).
Use of "tethering" for the identification of a small molecule that binds to a dynamic hot spot on the interleukin-2 surface.
  Chembiochem, 5, 1051-1053.  
15340381 T.Cardozo, and M.Pagano (2004).
The SCF ubiquitin ligase: insights into a molecular machine.
  Nat Rev Mol Cell Biol, 5, 739-751.  
12909456 D.Housset, and B.Malissen (2003).
What do TCR-pMHC crystal structures teach us about MHC restriction and alloreactivity?
  Trends Immunol, 24, 429-437.  
14503874 M.Shahidullah, T.Harris, M.W.Germann, and M.Covarrubias (2003).
Molecular features of an alcohol binding site in a neuronal potassium channel.
  Biochemistry, 42, 11243-11252.  
12838268 S.J.Teague (2003).
Implications of protein flexibility for drug discovery.
  Nat Rev Drug Discov, 2, 527-541.  
The most recent references are shown first. Citation data come partly from CiteXplore and partly from an automated harvesting procedure. Note that this is likely to be only a partial list as not all journals are covered by either method. However, we are continually building up the citation data so more and more references will be included with time. Where a reference describes a PDB structure, the PDB codes are shown on the right.

 

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