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Building protein diagrams on the web with the residue-based diagram editor RbDe.

, , and . Nucleic Acids Research, 31 (13): 3856-3858 (2003)

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Quantification and Analysis of Combination Drug Synergy in High-Throughput Transcriptome Studies., , , , , , and . BIBE, page 238-243. IEEE Computer Society, (2010)Modeling activated states of GPCRs: the rhodopsin template., , , and . Journal of Computer-Aided Molecular Design, 20 (7-8): 437-448 (2006)Modeling activated states of GPCRs: the rhodopsin template., , , and . Journal of Computer-Aided Molecular Design, 21 (7): 419 (2007)Graphic Encoding of Macromolecules for Efficient High-Throughput Analysis., , , , , , , and . BCB, page 315-324. ACM, (2018)TRAC: A Platform for Structure-Function Studies of NSS-Proteins Integrates Information from Bioinformatics and Biomedical Literature., , , , , and . BIBE, page 267-272. IEEE Computer Society, (2010)Building protein diagrams on the web with the residue-based diagram editor RbDe., , and . Nucleic Acids Research, 31 (13): 3856-3858 (2003)Brownian dynamics simulations of the reactions of hydrated electrons with components of DNAs and a DNA double-helix., , , and . Journal of Computational Chemistry, 18 (7): 888-901 (1997)A knowledge-based scale for the analysis and prediction of buried and exposed faces of transmembrane domain proteins., and . Bioinformatics, 20 (12): 1822-1835 (2004)NbIT - A New Information Theory-Based Analysis of Allosteric Mechanisms Reveals Residues that Underlie Function in the Leucine Transporter LeuT., and . PLoS Computational Biology, (2014)AIM for Allostery: Using the Ising Model to Understand Information Processing and Transmission in Allosteric Biomolecular Systems., and . Entropy, 17 (5): 2895-2918 (2015)