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The 16S 23S gene internal transcribed spacer sequence of sixty-four strains belonging to different acetic acid bacteria genera were analyzed, and phylogenetic trees were generated for each genera.
To calculate the number of anode electrons harvested, the recorded voltage curves for each genera were converted to amps of current using Ohm's Law (I = V/R).
The electrogenic yield for each genera was calculated as the ratio of electrons passing through the electrical circuit of the MFC to the total electrons associated with the known photon flux illuminating the 50 cm2 anode surface.
We tried to choose at least two species for each genera, except for monotypic genera; however, only one species was available for several genera, including Auriglobus, Marilyna, Omegophora, Pelagocephalus, and Tetractenos.
N EST, number of EST sequences downloaded for each genera; di-, tetra-,etra-, pentandand hexa- denotes type of SSRs and total indicates the total number of SSRs with primer information found for each genera.
Number of species for each genera within each IUCN category (EX = extinct, EW = extinct in the wild, CR = critically endangered, EN = endangered, VU = vulnerable, NT = near threatened, LC = least concern, DD =data deficient).
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These two families were chosen as the focal groups because they contain the majority of the known OIEs with highly reduced genomes that are fully sequenced and annotated, and the genera included in our analyses were limited to those for which at least two complete genomes for species of each genera (e.g., Blattabacterium sp. BPLAN and Blattabacterium sp. Bge) were available.
For each assemblage genera were counted only once and higher taxa (i.e., generically indeterminate remains) were counted only if the group was not represented by generic remains, unless published reports provided a reasonable case that the remains represent distinct taxa.
The Pearson correlation and associated probability between absolute size, PC1-3D and PC2-3D are show for a conjoint analysis (both genera) and for each of the two genera.
For each of these genera, a fossil exists with features that, theoretically, clearly differentiate it from every other known dinosaur genus.
We used a two-tiered approach to obtain the aerotolerance information for each identified bacterial genera, beginning with the Gideon Online Microbiology Feature from the Global Infectious Disease & Epidemiology Network [55], which contains phenotypic characteristics including oxygen requirements for medically important bacterial genera.
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