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New insights on gene regulation in archaea., , and . Comput. Biol. Chem., 35 (6): 341-346 (2011)Ligand-binding prediction in the resistance-nodulation-cell division (RND) proteins., , , and . Comput. Biol. Chem., 31 (2): 115-123 (2007)The functional landscape bound to the transcription factors of Escherichia coli K-12., , , , and . Comput. Biol. Chem., (2015)Machine learning and statistics shape a novel path in archaeal promoter annotation., , , , and . BMC Bioinform., 23 (1): 171 (2022)Phylogenetic distribution of DNA-binding transcription factors in bacteria and archaea., , and . Comput. Biol. Chem., 28 (5-6): 341-350 (2004)Distribution of putative xenogeneic silencers in prokaryote genomes., and . Comput. Biol. Chem., (2015)Plasticity of transcriptional machinery in bacteria is increased by the repertoire of regulatory families., and . Comput. Biol. Chem., 33 (4): 261-268 (2009)Lessons from the modular organization of the transcriptional regulatory network of Bacillus subtilis., , , , , and . BMC Syst. Biol., (2013)RegulonDB version 9.0: high-level integration of gene regulation, coexpression, motif clustering and beyond., , , , , , , , , and 11 other author(s). Nucleic Acids Res., 44 (Database-Issue): 133-143 (2016)Genomics of Gene Regulation: The View from Escherichia coli., , , , , , , , , and 6 other author(s). Gene Regulations and Metabolism, page 103-128. MIT Press, (2002)