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R Rippka

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Annales De Microbiologie|July 1, 1983
The cyanobacteriales: a legitimate order based on the type strain Cyanobacterium stanieri?R Rippka, G Cohen-Bazire
Plant Molecular Biology|December 6, 2013
Different organization of nif genes in nonheterocystous and heterocystous cyanobacteriaT Kallas, T Coursin, R Rippka
Archives of Microbiology|May 5, 2000
Unusual ultrastructural features in three strains of Cyanothece (cyanobacteria)D Porta, R Rippka, M Hernández-Mariné
Biochimie|January 1, 1985
Chromatic adaptation in a mutant of Fremyella diplosiphon incapable of phycoerythrin synthesisS Beguin, G Guglielmi, R Rippka, et al.
Applied and Environmental Microbiology|May 1, 1991
Selection of cyanobacteria isolated from mosquito breeding sites as a potential food source for mosquito larvaeI Thiery, L Nicolas, R Rippka, et al.
Journal of Bacteriology|July 1, 1983
The structural nif genes of the cyanobacteria Gloeothece sp. and Calothrix sp. share homology with those of Anabaena sp., but the Gloeothece genes have a different arrangementT Kallas, M C Rebière, R Rippka, et al.
Journal of Molecular Evolution|October 12, 2000
A new appraisal of the prokaryotic origin of eukaryotic phytochromesM Herdman, T Coursin, R Rippka, et al.
Research in Microbiology|May 1, 1997
Prochlorothrix hollandica PCC 9006: genomic properties of an axenic representative of the chlorophyll a/b-containing oxyphotobacteriaG Schyns, R Rippka, A Namane, et al.
Archives of Microbiology|December 6, 2001
Nonribosomal peptide synthetase genes occur in most cyanobacterial genera as evidenced by their distribution in axenic strains of the PCCG Christiansen, E Dittmann, L Via Ordorika, et al.
Applied and Environmental Microbiology|March 2, 1999
In situ identification of cyanobacteria with horseradish peroxidase-labeled, rRNA-targeted oligonucleotide probesW Schönhuber, B Zarda, S Eix, et al.
Pageof 2

Showing results (1-10 of 14) with videos related to

Sort By:
Pageof 2
Annales De Microbiologie|July 1, 1983
The cyanobacteriales: a legitimate order based on the type strain Cyanobacterium stanieri?R Rippka, G Cohen-Bazire
Plant Molecular Biology|December 6, 2013
Different organization of nif genes in nonheterocystous and heterocystous cyanobacteriaT Kallas, T Coursin, R Rippka
Archives of Microbiology|May 5, 2000
Unusual ultrastructural features in three strains of Cyanothece (cyanobacteria)D Porta, R Rippka, M Hernández-Mariné
Biochimie|January 1, 1985
Chromatic adaptation in a mutant of Fremyella diplosiphon incapable of phycoerythrin synthesisS Beguin, G Guglielmi, R Rippka, et al.
Applied and Environmental Microbiology|May 1, 1991
Selection of cyanobacteria isolated from mosquito breeding sites as a potential food source for mosquito larvaeI Thiery, L Nicolas, R Rippka, et al.
Journal of Bacteriology|July 1, 1983
The structural nif genes of the cyanobacteria Gloeothece sp. and Calothrix sp. share homology with those of Anabaena sp., but the Gloeothece genes have a different arrangementT Kallas, M C Rebière, R Rippka, et al.
Journal of Molecular Evolution|October 12, 2000
A new appraisal of the prokaryotic origin of eukaryotic phytochromesM Herdman, T Coursin, R Rippka, et al.
Research in Microbiology|May 1, 1997
Prochlorothrix hollandica PCC 9006: genomic properties of an axenic representative of the chlorophyll a/b-containing oxyphotobacteriaG Schyns, R Rippka, A Namane, et al.
Archives of Microbiology|December 6, 2001
Nonribosomal peptide synthetase genes occur in most cyanobacterial genera as evidenced by their distribution in axenic strains of the PCCG Christiansen, E Dittmann, L Via Ordorika, et al.
Applied and Environmental Microbiology|March 2, 1999
In situ identification of cyanobacteria with horseradish peroxidase-labeled, rRNA-targeted oligonucleotide probesW Schönhuber, B Zarda, S Eix, et al.
Pageof 2