Proteindesign (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Proteindesign" in German language version.

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biomolecular-modeling.com

colostate.edu

sharpen.engr.colostate.edu

doi.org

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  • S. Fath, A. P. Bauer, M. Liss, A. Spriestersbach, B. Maertens, P. Hahn, C. Ludwig, F. Schäfer, M. Graf, R. Wagner: Multiparameter RNA and codon optimization: a standardized tool to assess and enhance autologous mammalian gene expression. In: PLOS ONE. Band 6, Nummer 3, März 2011, S. e17596, doi:10.1371/journal.pone.0017596, PMID 21408612, PMC 3048298 (freier Volltext).
  • Yen-Ting Lai, Eamonn Reading, Greg L. Hura, Kuang-Lei Tsai, Arthur Laganowsky, Francisco J. Asturias, John A. Tainer, Carol V. Robinson, Todd O. Yeates: Structure of a designed protein cage that self-assembles into a highly porous cube. In: Nature Chemistry. 2014, S. , doi:10.1038/nchem.2107.
  • A. Skerra: Alternative non-antibody scaffolds for molecular recognition. In: Current Opinion in Biotechnology. Band 18, Nummer 4, August 2007, S. 295–304, doi:10.1016/j.copbio.2007.04.010. PMID 17643280.
  • M. Gebauer, A. Skerra: Engineered protein scaffolds as next-generation antibody therapeutics. In: Current opinion in chemical biology. Band 13, Nummer 3, Juni 2009, S. 245–255, doi:10.1016/j.cbpa.2009.04.627. PMID 19501012.
  • Alan Saghatelian, Yohei Yokobayashi, Kathy Soltani, M. Reza Ghadiri: A chiroselective peptide replicator. In: Nature. 409, S. 797–801, doi:10.1038/35057238.
  • T. Nagai: Circularly permuted green fluorescent proteins engineered to sense Ca2+. In: Proceedings of the National Academy of Sciences. 98, S. 3197–3202, doi:10.1073/pnas.051636098.
  • M. J. Root: Protein Design of an HIV-1 Entry Inhibitor. In: Science, 291, S. 884–888, doi:10.1126/science.1057453.
  • B. Kuhlman: Design of a Novel Globular Protein Fold with Atomic-Level Accuracy. In: Science, 302, 2003, S. 1364–1368, doi:10.1126/science.1089427.
  • Loren L. Looger, Mary A. Dwyer, James J. Smith, Homme W. Hellinga: Computational design of receptor and sensor proteins with novel functions. In: Nature. 423, 2003, S. 185–190, doi:10.1038/nature01556.
  • George A. Khoury, Hossein Fazelinia, Jonathan W. Chin, Robert J. Pantazes, Patrick C. Cirino, Costas D. Maranas: Computational design of xylose reductase for altered cofactor specificity. In: Protein Science, 18, 2009, S. 2125–2138, doi:10.1002/pro.227.
  • Y. Liu, B. Kuhlman: RosettaDesign server for protein design. In: Nucleic Acids Research, 34, 2006, S. W235–W238, doi:10.1093/nar/gkl163.
  • Gautam Dantas, Brian Kuhlman, David Callender, Michelle Wong, David Baker: A Large Scale Test of Computational Protein Design: Folding and Stability of Nine Completely Redesigned Globular Proteins. In: Journal of Molecular Biology. 332, 2003, S. 449–460, doi:10.1016/S0022-2836(03)00888-X.
  • Gautam Dantas, Colin Corrent, Steve L. Reichow, James J. Havranek, Ziad M. Eletr, Nancy G. Isern, Brian Kuhlman, Gabriele Varani, Ethan A. Merritt, David Baker: High-resolution Structural and Thermodynamic Analysis of Extreme Stabilization of Human Procarboxypeptidase by Computational Protein Design. In: Journal of Molecular Biology, 366, 2007, S. 1209–1221, doi:10.1016/j.jmb.2006.11.080.
  • Johan Desmet, Jan Spriet, Ignace Lasters: Fast and accurate side-chain topology and energy refinement (FASTER) as a new method for protein structure optimization. In: Proteins: Structure, Function, and Genetics. 48, 2002, S. 31–43, doi:10.1002/prot.10131.

nih.gov

ncbi.nlm.nih.gov

  • E. Kotsopoulou, V. N. Kim, A. J. Kingsman, S. M. Kingsman, K. A. Mitrophanous: A Rev-independent human immunodeficiency virus type 1 (HIV-1)-based vector that exploits a codon-optimized HIV-1 gag-pol gene. In: J Virol., 2000, Band 74(10), S. 4839–4852. PMID 10775623; PMC 112007 (freier Volltext).
  • S. Mueller, J. R. Coleman, E. Wimmer: Putting synthesis into biology: a viral view of genetic engineering through de novo gene and genome synthesis. In: Chemistry & biology. Band 16, Nummer 3, März 2009, S. 337–347, doi:10.1016/j.chembiol.2009.03.002, PMID 19318214, PMC 2728443 (freier Volltext).
  • S. Fath, A. P. Bauer, M. Liss, A. Spriestersbach, B. Maertens, P. Hahn, C. Ludwig, F. Schäfer, M. Graf, R. Wagner: Multiparameter RNA and codon optimization: a standardized tool to assess and enhance autologous mammalian gene expression. In: PLOS ONE. Band 6, Nummer 3, März 2011, S. e17596, doi:10.1371/journal.pone.0017596, PMID 21408612, PMC 3048298 (freier Volltext).
  • A. Skerra: Alternative non-antibody scaffolds for molecular recognition. In: Current Opinion in Biotechnology. Band 18, Nummer 4, August 2007, S. 295–304, doi:10.1016/j.copbio.2007.04.010. PMID 17643280.
  • M. Gebauer, A. Skerra: Engineered protein scaffolds as next-generation antibody therapeutics. In: Current opinion in chemical biology. Band 13, Nummer 3, Juni 2009, S. 245–255, doi:10.1016/j.cbpa.2009.04.627. PMID 19501012.

redirecter.toolforge.org

  • User’s Manual for EGAD! a Genetic Algorithm for protein Design! Archiviert vom Original am 2. Mai 2009; abgerufen am 17. Oktober 2013.

synth-bio.org

soft.synth-bio.org

unc.edu

rosettadesign.med.unc.edu

web.archive.org

  • User’s Manual for EGAD! a Genetic Algorithm for protein Design! Archiviert vom Original am 2. Mai 2009; abgerufen am 17. Oktober 2013.