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Applied and Environmental Microbiology, April 2008, p. 2229-2238, Vol. 74, No. 7
0099-2240/08/$08.00+0     doi:10.1128/AEM.02502-07
Copyright © 2008, American Society for Microbiology. All Rights Reserved.

Identification and Ecophysiological Characterization of Epiphytic Protein-Hydrolyzing Saprospiraceae ("Candidatus Epiflobacter" spp.) in Activated Sludge{triangledown}

Yun Xia, Yunhong Kong, Trine Rolighed Thomsen, and Per Halkjær Nielsen*

Department of Biotechnology, Chemistry, and Environmental Engineering, Aalborg University, DK-9000 Aalborg, Denmark

Received 6 November 2007/ Accepted 30 January 2008

The identity and ecophysiology of a group of uncultured protein-hydrolyzing epiphytic rods attached to filamentous bacteria in activated sludge from nutrient removal plants were investigated by using the full-cycle rRNA approach combined with microautoradiography and histochemical staining. The epiphytic group consists of three closely related clusters, each containing 11 to 16 clones. The closest related cultured isolate is the type strain Haliscomenobacter hydrossis (ATCC 27775) (<87% similarity) in the family Saprospiraceae of the phylum Bacteroidetes. Oligonucleotide probes at different hierarchical levels were designed for each cluster and used for ecophysiological studies. All three clusters behaved similarly in their physiology and were specialized in protein hydrolysis and used amino acids as energy and carbon sources. They were not involved in denitrification. No storage of polyphosphate and polyhydroxyalkanoates was found. They all colonized probe-defined filamentous bacteria belonging to the phyla Chloroflexi, Proteobacteria, and candidate phylum TM7, with the exception of cluster 1, which did not colonize TM7 filaments. The three epiphytic clusters were all widespread in domestic and industrial wastewater treatment plants with or without biological phosphorus removal, constituting, in total, up to 9% of the bacterial biovolume. A new genus, "Candidatus Epiflobacter," is proposed for this epiphytic group in activated-sludge treatment plants, where it presumably plays an important role in protein degradation.


* Corresponding author. Mailing address: Department of Biotechnology, Chemistry, and Environmental Engineering, Aalborg University, Sohngaardsholmsvej 57, DK-9000 Aalborg, Denmark. Phone: 45 96358503. Fax: 45 96350558. E-mail: phn{at}bio.aau.dk

{triangledown} Published ahead of print on 8 February 2008.


Applied and Environmental Microbiology, April 2008, p. 2229-2238, Vol. 74, No. 7
0099-2240/08/$08.00+0     doi:10.1128/AEM.02502-07
Copyright © 2008, American Society for Microbiology. All Rights Reserved.







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