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Additional reduction of antibiotic resistance genes and human bacterial pathogens via thermophilic aerobic digestion of anaerobically digested sludge

  • Hyun Min Jang
  • , Sangki Choi
  • , Jingyeong Shin
  • , Eunsung Kan
  • , Young Mo Kim*
  • *Corresponding author for this work
  • Gwangju Institute of Science and Technology
  • Texas A&M AgriLife
  • Tarleton State University

Research output: Contribution to journalJournal articlepeer-review

Abstract

Thermophilic aerobic digestion (TAD) was applied to further reduce ARGs and heavy metal resistance genes (HMRGs) as well as class 1 integrons (intI1) in sludge from anaerobic digestion (AnD). Unlike after AnD, there was no enrichment of ARGs, HMRGs and intI1 after TAD. Residual gene fractions of intI1 and total ARGs (sum of targeted ARGs) were 0.03 and 0.08, respectively. Two kinetic models (Collins-Selleck and first-order) described the decay patterns of targeted genes, revealing rapid removal of intI1 during TAD. After TAD, the relative abundance of human bacterial pathogens (HBPs) and the numbers of HBPs species decreased to approximately 68% and 64% compared to anaerobically digested sludge, respectively. Thus, TAD, subsequent to AnD, may possess high potential for reducing biological risks resulting from ARGs, HMRGs, intI1 and HBPs in sewage sludge.

Original languageEnglish
Pages (from-to)259-268
Number of pages10
JournalBioresource Technology
Volume273
DOIs
StatePublished - 2019.02

Keywords

  • Anaerobically digested sludge
  • Antibiotic resistance genes (ARGs)
  • Heavy metal resistance genes (HMRGs)
  • Human bacterial pathogens (HBPs)
  • Thermophilic aerobic digestion (TAD)

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