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Nucleic Acids Research|February 20, 2004
Relevance of UP elements for three strong Bacillus subtilis phage phi29 promotersWilfried J J Meijer, Margarita SalasFEMS Microbiology Letters|July 5, 2014
Diverse regulatory circuits for transfer of conjugative elementsPraveen K Singh, Wilfried J J MeijerMethods in Molecular Biology (Clifton, N.J.)|July 19, 2024
Genetic Engineering of Bacillus subtilis Using Competence-Induced Homologous Recombination TechniquesWilfried J J Meijer, Andrés Miguel-ArribasThe Journal of Biological Chemistry|December 14, 2001
The Bacillus subtilis phage phi 29 protein p16.7, involved in phi 29 DNA replication, is a membrane-localized single-stranded DNA-binding proteinAlejandro Serna-Rico, Margarita Salas, Wilfried J J MeijerNucleic Acids Research|June 17, 2009
Differential Spo0A-mediated effects on transcription and replication of the related Bacillus subtilis phages Nf and phi29 explain their different behaviours in vivoVirginia Castilla-Llorente, Wilfried J J Meijer, Margarita SalasMolecular Microbiology|April 16, 2008
kinC/D-mediated heterogeneous expression of spo0A during logarithmical growth in Bacillus subtilis is responsible for partial suppression of phi 29 developmentVirginia Castilla-Llorente, Margarita Salas, Wilfried J J MeijerEnvironmental Microbiology|February 12, 2009
Different responses to Spo0A-mediated suppression of the related Bacillus subtilis phages Nf and phi29Virginia Castilla-Llorente, Margarita Salas, Wilfried J J MeijerNucleic Acids Research|November 7, 2003
Enhancement of DNA, cDNA synthesis and fidelity at high temperatures by a dimeric single-stranded DNA-binding proteinCelia Perales, Felipe Cava, Wilfried J J Meijer, et al.Research in Microbiology|September 25, 2010
Complete nucleotide sequence and determination of the replication region of the sporulation inhibiting plasmid p576 from Bacillus pumilus NRS576Praveen K Singh, Sandra Ballestero-Beltrán, Gayetri Ramachandran, et al.Acta Crystallographica. Section D, Structural Biology|March 6, 2023
A tetramerization domain in prokaryotic and eukaryotic transcription regulators homologous to p53Nerea Bernardo, Isidro Crespo, Anna Cuppari, et al.Pageof 5