McMahon, Katherine D


Publications
3

Metatranscriptomic insights on gene expression and regulatory controls in Candidatus Accumulibacter phosphatis

Citation
Oyserman et al. (2016). The ISME Journal 10 (4)
Names
“Accumulibacter phosphatis”
Abstract
Abstract Previous studies on enhanced biological phosphorus removal (EBPR) have focused on reconstructing genomic blueprints for the model polyphosphate-accumulating organism Candidatus Accumulibacter phosphatis. Here, a time series metatranscriptome generated from enrichment cultures of Accumulibacter was used to gain insight into anerobic/aerobic metabolism and regulatory mechanisms within an EBPR cycle. Co-expressed gene clusters were identified displaying ecologically relevant
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Comparative genomics of two ‘Candidatus Accumulibacter’ clades performing biological phosphorus removal

Citation
Flowers et al. (2013). The ISME Journal 7 (12)
Names
“Accumulibacter”
Abstract
Abstract Members of the genus Candidatus Accumulibacter are important in many wastewater treatment systems performing enhanced biological phosphorus removal (EBPR). The Accumulibacter lineage can be subdivided phylogenetically into multiple clades, and previous work showed that these clades are ecologically distinct. The complete genome of Candidatus Accumulibacter phosphatis strain UW-1, a member of Clade IIA, was previously sequenced. Here, we report a draft genome sequence of C
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Candidatus Accumulibacter’ gene expression in response to dynamic EBPR conditions

Citation
He, McMahon (2011). The ISME Journal 5 (2)
Names
“Accumulibacter”
Abstract
Abstract Enhanced biological phosphorus removal (EBPR) activated sludge communities enriched in ‘Candidatus Accumulibacter’ relatives are widely used in wastewater treatment, but much remains to be learned about molecular-level controls on the EBPR process. The expression of genes found in the carbon and polyphosphate metabolic pathways in Accumulibacter was investigated using reverse transcription quantitative PCR. During a normal anaerobic/aerobic EBPR cycle, gene expression exh
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