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March 25, 2026Environmental Science & Technology2 citations

Potential Viral Regulation of Sulfur Cycling in Urban Sewer Sediments

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BNBang NiXCXuepeng ChenDLDa Lin

Key Points

  • The aim is to investigate the characteristics of viruses in sewer sediments and their interactions with microorganisms related to sulfur cycling.
  • Conducted metagenomics and viromics analyses in sewer sediments from three urban functional areas.
  • Compared nutrient levels and acidification across single-functional and multifunctional sewer areas.
  • Performed phage transplantation experiments to assess viral impact on microbial communities.
  • Multifunctional sewer sediments exhibited higher nutrient levels and facilitated a shift from lytic to lysogenic infections.
  • This shift may increase sulfide production through enhanced sulfate reduction.
  • Viral lysis in single-function areas can decrease sulfide formation, thereby reducing sewer corrosion.

Abstract

Sewer sediments are microbial hotspots for sulfur cycling and sulfide generation, which is the leading cause of sewer corrosion and poses significant economic losses and public safety concerns. However, viruses in sewer sediments remain inadequately explored regarding their characteristics, interactions with their hosts, and ecological regulatory potential for sulfur cycling. In this study, we explored viral characteristics and virus-host interactions in sewer sediments from three distinct types of urban functional areas through metagenomics and viromics. Compared with single-function (commercial and residential) areas, sewer sediments in multifunctional areas contain higher nutrients and nutrient-induced acidification, which can promote host density and drive a shift from lytic to lysogenic infection. This shift may potentially enhance sulfide formation through the insertion of more auxiliary metabolic genes related to sulfate reduction into host genomes. Conversely, a higher viral lytic tendency in single-function area can lyse sulfate-reducing microorganisms, thereby mitigating sulfide formation. Phage transplantation experiments and the high prevalence of key viral hosts across global sewers (76 cities across six countries) demonstrated the high potential of viruses in alleviating sewer corrosion. Our findings reveal the dual role of viruses as metabolic "tuners" in sewer sulfur dynamics, suggesting that comprehensive urban sewer management requires consideration of exploiting viral lysis.

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Cite This Study

Ni et al. (2026) studied this question.

synapsesocial.com/papers/69c37adcb34aaaeb1a67cb97https://doi.org/10.1021/acs.est.5c15040
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