Building-Scale Wastewater Metagenomics Reveals Temporal Patterns in Resistance and Virulence Genes
Abstract
1. Introduction
2. Results
2.1. Gut-Associated Anaerobic Bacteria Dominate the Wastewater Microbiome
2.2. Seasonal Patterns in Microbial Alpha and Beta Diversity
2.3. Total Antimicrobial Resistance Genes Abundance and Class-Level Resistome Across Semesters
2.4. Virulence Factor Abundance and Functional Composition Across Semesters
2.5. Ecological Associations Between Resistome and Virulome Profiles
2.6. Co-Occurrence Patterns Among Microbial Taxa, ARG Classes, and Virulence Functions
2.7. Campus COVID-19 Testing and Quarantine Trends
3. Discussion
3.1. Core Microbiome Stability Despite Temporal Variation
3.2. Temporal Drivers of Resistome and Virulome Variation
3.3. Ecological Coupling Between Resistance and Virulence
3.4. Network Structure Reflects Taxa-Anchored Modular Organization
3.5. Implications for Building-Scale Wastewater Surveillance
3.6. Limitations and Future Directions
4. Materials and Methods
4.1. Sampling Site and Collection
4.2. Campus COVID-19 Testing and Quarantine Records
4.3. DNA Extraction and Quality Assessment
4.4. Metagenomic Sequencing and Analysis
4.4.1. Metagenomic Library Preparation and Sequencing
4.4.2. Bioinformatic Processing and Taxonomic Classification
4.4.3. Antimicrobial Resistance Gene and Virulence Factor Identification
4.4.4. Open-Source Validation
4.5. Data Analysis and Visualization
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| Abbreviation | Definition |
| AMR | antimicrobial resistance |
| AmpC | AmpC-type β-lactamase (Ambler class C cephalosporinase) |
| ARG | antimicrobial resistance gene |
| AVITI | Element AVITI (sequencing platform) |
| BH | Benjamini–Hochberg (correction) |
| bp | base pair |
| CRE | carbapenem-resistant Enterobacterales |
| CV | coefficient of variation |
| COVID-19 | coronavirus disease 2019 |
| DNA | deoxyribonucleic acid |
| ESBL | extended-spectrum β-lactamase |
| FDR | false discovery rate |
| IBC | Institutional Biosafety Committee |
| IQR | interquartile range |
| IRB | Institutional Review Board |
| KPC | Klebsiella pneumoniae carbapenemase |
| MGE | mobile genetic element |
| NCBI | National Center for Biotechnology Information |
| PCoA | principal coordinates analysis |
| PCR | polymerase chain reaction |
| PERMANOVA | permutational multivariate analysis of variance |
| PERMDISP | permutational analysis of multivariate dispersions |
| qPCR | quantitative PCR |
| RNA | ribonucleic acid |
| RT-qPCR | reverse transcription quantitative PCR |
| SARS-CoV-2 | severe acute respiratory syndrome coronavirus 2 |
| SD | standard deviation |
| VF | virulence factor |
| VFDB | Virulence Factor Database |
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Morikwe, U.C.; Kiki, L.C.; Ezeanowai, F.C.; Hall, S.; Bhatia, S.; Maswanganye, T.N.; Jeje, O.; Hill, M.S.; Graves, J.L., Jr.; Deng, D.; et al. Building-Scale Wastewater Metagenomics Reveals Temporal Patterns in Resistance and Virulence Genes. Antibiotics 2026, 15, 878. https://doi.org/10.3390/antibiotics15090878
Morikwe UC, Kiki LC, Ezeanowai FC, Hall S, Bhatia S, Maswanganye TN, Jeje O, Hill MS, Graves JL Jr., Deng D, et al. Building-Scale Wastewater Metagenomics Reveals Temporal Patterns in Resistance and Virulence Genes. Antibiotics. 2026; 15(9):878. https://doi.org/10.3390/antibiotics15090878
Chicago/Turabian StyleMorikwe, Ugonna C., Larisa C. Kiki, Franklin C. Ezeanowai, Shamiah Hall, Shilpi Bhatia, Tinyiko Nicole Maswanganye, Olusola Jeje, Megan S. Hill, Joseph L. Graves, Jr., Dongyang Deng, and et al. 2026. "Building-Scale Wastewater Metagenomics Reveals Temporal Patterns in Resistance and Virulence Genes" Antibiotics 15, no. 9: 878. https://doi.org/10.3390/antibiotics15090878
APA StyleMorikwe, U. C., Kiki, L. C., Ezeanowai, F. C., Hall, S., Bhatia, S., Maswanganye, T. N., Jeje, O., Hill, M. S., Graves, J. L., Jr., Deng, D., & Jeffers-Francis, L. (2026). Building-Scale Wastewater Metagenomics Reveals Temporal Patterns in Resistance and Virulence Genes. Antibiotics, 15(9), 878. https://doi.org/10.3390/antibiotics15090878

