Structure-Function Relationship of Cytoplasmic and Nuclear IκB Proteins: An In Silico Analysis
暂无分享,去创建一个
Sangdun Choi | Balachandran Manavalan | Shaherin Basith | Gwang Lee | Balachandran Manavalan | Gwang Lee | Sangdun Choi | S. Basith | Y. Choi | Yong-Min Choi | Shaherin Basith
[1] J. Ponder,et al. Force fields for protein simulations. , 2003, Advances in protein chemistry.
[2] E. Komives,et al. Solvent exposed non-contacting amino acids play a critical role in NF-kappaB/IkappaBalpha complex formation. , 2002, Journal of molecular biology.
[3] S. Harrison,et al. Structure of the NF-kappa B p50 homodimer bound to DNA. , 1995, Nature.
[4] Sangdun Choi,et al. Molecular modeling‐based evaluation of dual function of IκBζ ankyrin repeat domain in toll‐like receptor signaling , 2011, Journal of molecular recognition : JMR.
[5] C. Hop,et al. In vitro metabolism of a new oxazolidinedione hypoglycemic agent utilizing liver microsomes and recombinant human cytochrome P450 enzymes. , 2005, Journal of pharmaceutical and biomedical analysis.
[6] S. Ghosh,et al. X-ray Crystal Structure of an IκBβ·NF-κB p65 Homodimer Complex* , 2003, Journal of Biological Chemistry.
[7] P. Sigler,et al. Structure of NF-κB p50 homodimer bound to a κB site , 1998, Nature.
[8] A. Plückthun,et al. A novel strategy to design binding molecules harnessing the modular nature of repeat proteins , 2003, FEBS letters.
[9] T. Huxford,et al. The nuclear I kappaB protein I kappaB zeta specifically binds NF-kappaB p50 homodimers and forms a ternary complex on kappaB DNA. , 2008, Journal of molecular biology.
[10] A. Hoffmann,et al. Circuitry of nuclear factor kappaB signaling. , 2006, Immunological reviews.
[11] T. Muta,et al. Positive and negative regulation of nuclear factor-kappaB-mediated transcription by IkappaB-zeta, an inducible nuclear protein. , 2005, The Journal of biological chemistry.
[12] T. Muta,et al. A Novel IκB Protein, IκB-ζ, Induced by Proinflammatory Stimuli, Negatively Regulates Nuclear Factor-κB in the Nuclei* , 2001, The Journal of Biological Chemistry.
[13] E. Komives,et al. Solvent Exposed Non-contacting Amino Acids Play a Critical Role in NF-κB/IκBα Complex Formation , 2002 .
[14] H. Dyson,et al. Interaction of the IkappaBalpha C-terminal PEST sequence with NF-kappaB: insights into the inhibition of NF-kappaB DNA binding by IkappaBalpha. , 2009, Journal of molecular biology.
[15] T. Muta,et al. A novel IkappaB protein, IkappaB-zeta, induced by proinflammatory stimuli, negatively regulates nuclear factor-kappaB in the nuclei. , 2001, The Journal of biological chemistry.
[16] K. Schulze-Osthoff,et al. A Novel Member of the IκB Family, Human IκB-ζ, Inhibits Transactivation of p65 and Its DNA Binding* , 2006, Journal of Biological Chemistry.
[17] Robert C. Edgar,et al. MUSCLE: multiple sequence alignment with high accuracy and high throughput. , 2004, Nucleic acids research.
[18] Gert Vriend,et al. Making optimal use of empirical energy functions: Force‐field parameterization in crystal space , 2004, Proteins.
[19] Taehoon Kim,et al. CHARMM‐GUI: A web‐based graphical user interface for CHARMM , 2008, J. Comput. Chem..
[20] Janusz M. Bujnicki,et al. MetaMQAP: A meta-server for the quality assessment of protein models , 2008, BMC Bioinformatics.
[21] P B Sigler,et al. Structure of NF-kappa B p50 homodimer bound to a kappa B site. , 1995, Nature.
[22] G. Ghosh,et al. The Crystal Structure of the IκBα/NF-κB Complex Reveals Mechanisms of NF-κB Inactivation , 1998, Cell.
[23] S. Akira,et al. The Nuclear IκB Protein IκBNS Selectively Inhibits Lipopolysaccharide-Induced IL-6 Production in Macrophages of the Colonic Lamina Propria 1 , 2005, The Journal of Immunology.
[24] M. Kumar,et al. Functional Role for IκBNS in T Cell Cytokine Regulation As Revealed by Targeted Gene Disruption1 , 2007, The Journal of Immunology.
[25] M. Berenbaum,et al. Structural and functional divergence of insect CYP6B proteins: From specialist to generalist cytochrome P450. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[26] M J May,et al. NF-kappa B and Rel proteins: evolutionarily conserved mediators of immune responses. , 1998, Annual review of immunology.
[27] G. Nabel,et al. A new member of the I kappaB protein family, I kappaB epsilon, inhibits RelA (p65)-mediated NF-kappaB transcription , 1997, Molecular and cellular biology.
[28] S. Akira,et al. Gene-specific Requirement of a Nuclear Protein, IκB-ζ, for Promoter Association of Inflammatory Transcription Regulators* , 2008, Journal of Biological Chemistry.
[29] D. Guttridge,et al. RelA/p65 Regulation of IκBβ , 2005, Molecular and Cellular Biology.
[30] T. Muta,et al. Crucial roles of binding sites for NF-kappaB and C/EBPs in IkappaB-zeta-mediated transcriptional activation. , 2007, The Biochemical journal.
[31] H. Kuwata,et al. IkappaBNS inhibits induction of a subset of Toll-like receptor-dependent genes and limits inflammation. , 2006, Immunity.
[32] W. Delano. The PyMOL Molecular Graphics System , 2002 .
[33] D. Guttridge,et al. RelA/p65 regulation of IkappaBbeta. , 2005, Molecular and cellular biology.
[34] G. Ghosh,et al. Ikappa Balpha functions through direct contacts with the nuclear localization signals and the DNA binding sequences of NF-kappaB. , 1998, The Journal of biological chemistry.
[35] S. Ghosh,et al. Shared Principles in NF-κB Signaling , 2008, Cell.
[36] Z. Weng,et al. ZDOCK: An initial‐stage protein‐docking algorithm , 2003, Proteins.
[37] R. Hariharan,et al. Structure–function relationship of inhibitory Smads: Structural flexibility contributes to functional divergence , 2008, Proteins.
[38] A. Hoffmann,et al. Transcriptional regulation via the NF-κB signaling module , 2006, Oncogene.
[39] H. Young,et al. BCL-3 and NF-κB p50 Attenuate Lipopolysaccharide-induced Inflammatory Responses in Macrophages* , 2004, Journal of Biological Chemistry.
[40] Susan Jones,et al. ProtorP: a protein-protein interaction analysis server , 2009, Bioinform..
[41] S. Harrison,et al. Structure of an IκBα/NF-κB Complex , 1998, Cell.
[42] T. McKeithan,et al. Diverse Effects of BCL3 Phosphorylation on Its Modulation of NF-κB p52 Homodimer Binding to DNA* , 1997, The Journal of Biological Chemistry.
[43] S. Smerdon,et al. The ankyrin repeat: a diversity of interactions on a common structural framework. , 1999, Trends in biochemical sciences.
[44] Alexander Hoffmann,et al. IκBɛ provides negative feedback to control NF-κB oscillations, signaling dynamics, and inflammatory gene expression , 2006, The Journal of cell biology.
[45] Liam J. McGuffin,et al. The ModFOLD server for the quality assessment of protein structural models , 2008, Bioinform..
[46] P. Cramer,et al. Crystal structure of the ankyrin repeat domain of Bcl‐3: a unique member of the IκB protein family , 2001, The EMBO journal.
[47] S. Akira,et al. The nuclear IkappaB protein IkappaBNS selectively inhibits lipopolysaccharide-induced IL-6 production in macrophages of the colonic lamina propria. , 2005, Journal of immunology.
[48] F. He,et al. Nuclear protein IkappaB-zeta inhibits the activity of STAT3. , 2009, Biochemical and biophysical research communications.
[49] Daniel C. Desrosiers,et al. The ankyrin repeat as molecular architecture for protein recognition , 2004, Protein science : a publication of the Protein Society.
[50] S. Harrison,et al. Structure of an IkappaBalpha/NF-kappaB complex. , 1998, Cell.
[51] K. Schulze-Osthoff,et al. A novel member of the IkappaB family, human IkappaB-zeta, inhibits transactivation of p65 and its DNA binding. , 2006, The Journal of biological chemistry.
[52] T. Muta,et al. Crucial roles of binding sites for NF-κB and C/EBPs in IκB-ζ-mediated transcriptional activation , 2007 .
[53] Arne Elofsson,et al. Automatic consensus‐based fold recognition using Pcons, ProQ, and Pmodeller , 2003, Proteins.
[54] G. Ghosh,et al. The crystal structure of the IkappaBalpha/NF-kappaB complex reveals mechanisms of NF-kappaB inactivation. , 1998, Cell.
[55] Andrey Tovchigrechko,et al. GRAMM-X public web server for protein–protein docking , 2006, Nucleic Acids Res..
[56] G. Ghosh,et al. IκBα Functions through Direct Contacts with the Nuclear Localization Signals and the DNA Binding Sequences of NF-κB* , 1998, The Journal of Biological Chemistry.
[57] Charlotte M. Deane,et al. JOY: protein sequence-structure representation and analysis , 1998, Bioinform..
[58] Sophie E Jackson,et al. The folding and design of repeat proteins: reaching a consensus. , 2003, Current opinion in structural biology.
[59] Christian Cole,et al. The Jpred 3 secondary structure prediction server , 2008, Nucleic Acids Res..
[60] K. Takeda,et al. Role of nuclear IκB proteins in the regulation of host immune responses , 2008, Journal of infection and chemotherapy : official journal of the Japan Society of Chemotherapy.
[61] J. Caamaño,et al. Constitutive expression of Bc1-3 in thymocytes increases the DNA binding of NF-kappaB1 (p50) homodimers in vivo , 1996, Molecular and cellular biology.
[62] David S. Wishart,et al. SuperPose: a simple server for sophisticated structural superposition , 2004, Nucleic Acids Res..
[63] A. Hoffmann,et al. Transcriptional regulation via the NF-kappaB signaling module. , 2006, Oncogene.
[64] T. Muta,et al. Positive and Negative Regulation of Nuclear Factor-κB-mediated Transcription by IκB-ζ, an Inducible Nuclear Protein* , 2005, Journal of Biological Chemistry.
[65] Ben M. Webb,et al. Comparative Protein Structure Modeling Using Modeller , 2006, Current protocols in bioinformatics.