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Phage phylogeny, molecular signaling, and auxiliary antimicrobial resistance in aerobic and anaerobic membrane bioreactors.

Publication ,  Journal Article
Al-Faliti, M; Wang, P; Smith, AL; Delgado Vela, J
Published in: Water research
June 2024

Phage emit communication signals that inform their lytic and lysogenic life cycles. However, little is known regarding the abundance and diversity of the genes associated with phage communication systems in wastewater treatment microbial communities. This study focused on phage communities within two distinct biochemical wastewater environments, specifically aerobic membrane bioreactors (AeMBRs) and anaerobic membrane bioreactors (AnMBRs) exposed to varying antibiotic concentrations. Metagenomic data from the bench-scale systems were analyzed to explore phage phylogeny, life cycles, and genetic capacity for antimicrobial resistance and quorum sensing. Two dominant phage families, Schitoviridae and Peduoviridae, exhibited redox-dependent dynamics. Schitoviridae prevailed in anaerobic conditions, while Peduoviridae dominated in aerobic conditions. Notably, the abundance of lytic and lysogenic proteins varied across conditions, suggesting the coexistence of both life cycles. Furthermore, the presence of antibiotic resistance genes (ARGs) within viral contigs highlighted the potential for phage to transfer ARGs in AeMBRs. Finally, quorum sensing genes in the virome of AeMBRs indicated possible molecular signaling between phage and bacteria. Overall, this study provides insights into the dynamics of viral communities across varied redox conditions in MBRs. These findings shed light on phage life cycles, and auxiliary genetic capacity such as antibiotic resistance and bacterial quorum sensing within wastewater treatment microbial communities.

Duke Scholars

Published In

Water research

DOI

EISSN

1879-2448

ISSN

0043-1354

Publication Date

June 2024

Volume

256

Start / End Page

121620

Related Subject Headings

  • Wastewater
  • Quorum Sensing
  • Phylogeny
  • Environmental Engineering
  • Drug Resistance, Microbial
  • Bioreactors
  • Bacteriophages
  • Anaerobiosis
  • Aerobiosis
 

Citation

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ICMJE
MLA
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Al-Faliti, M., Wang, P., Smith, A. L., & Delgado Vela, J. (2024). Phage phylogeny, molecular signaling, and auxiliary antimicrobial resistance in aerobic and anaerobic membrane bioreactors. Water Research, 256, 121620. https://doi.org/10.1016/j.watres.2024.121620
Al-Faliti, Mitham, Phillip Wang, Adam L. Smith, and Jeseth Delgado Vela. “Phage phylogeny, molecular signaling, and auxiliary antimicrobial resistance in aerobic and anaerobic membrane bioreactors.Water Research 256 (June 2024): 121620. https://doi.org/10.1016/j.watres.2024.121620.
Al-Faliti M, Wang P, Smith AL, Delgado Vela J. Phage phylogeny, molecular signaling, and auxiliary antimicrobial resistance in aerobic and anaerobic membrane bioreactors. Water research. 2024 Jun;256:121620.
Al-Faliti, Mitham, et al. “Phage phylogeny, molecular signaling, and auxiliary antimicrobial resistance in aerobic and anaerobic membrane bioreactors.Water Research, vol. 256, June 2024, p. 121620. Epmc, doi:10.1016/j.watres.2024.121620.
Al-Faliti M, Wang P, Smith AL, Delgado Vela J. Phage phylogeny, molecular signaling, and auxiliary antimicrobial resistance in aerobic and anaerobic membrane bioreactors. Water research. 2024 Jun;256:121620.
Journal cover image

Published In

Water research

DOI

EISSN

1879-2448

ISSN

0043-1354

Publication Date

June 2024

Volume

256

Start / End Page

121620

Related Subject Headings

  • Wastewater
  • Quorum Sensing
  • Phylogeny
  • Environmental Engineering
  • Drug Resistance, Microbial
  • Bioreactors
  • Bacteriophages
  • Anaerobiosis
  • Aerobiosis