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Capturing coevolutionary signals inrepeat proteins., , , , and . BMC Bioinform., (2015)Protein frustratometer: a tool to localize energetic frustration in protein molecules., , , , , and . Nucleic Acids Res., 40 (Web-Server-Issue): 348-351 (2012)Inferring repeat-protein energetics from evolutionary information., , , , and . PLoS Comput. Biol., (2017)Molecular information theory meets protein folding., , , and . CoRR, (2022)Size and structure of the sequence space of repeat proteins., , , , , and . PLoS Comput. Biol., (2019)The Energy Landscapes of Repeat-Containing Proteins: Topology, Cooperativity, and the Folding Funnels of One-Dimensional Architectures., , , and . PLoS Comput. Biol., (2008)mebipred: identifying metal-binding potential in protein sequence., , , , , and . Bioinform., 38 (14): 3532-3540 (2022)Structural and Energetic Characterization of the Ankyrin Repeat Protein Family., , , and . PLoS Comput. Biol., (2015)Protein Frustratometer 2: a tool to localize energetic frustration in protein molecules, now with electrostatics., , , , , , and . Nucleic Acids Res., 44 (Webserver-Issue): W356-W360 (2016)FrustratometeR: an R-package to compute local frustration in protein structures, point mutants and MD simulations., , , , , , , and . Bioinform., 37 (18): 3038-3040 (2021)