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Published on: July 3, 2025
Shower water contributes viable nontuberculous mycobacteria to indoor air
Yun Shen1, Sarah-Jane Haig1, Aaron J Prussin2
1Department of Civil and Environmental Engineering, University of Michigan, 1351 Beal Avenue, Ann Arbor, MI 48109, USA.
Abstract:
Nontuberculous mycobacteria (NTM) are frequently present in municipal drinking water and building plumbing, and some are believed to cause respiratory tract infections through inhalation of NTM-containing aerosols generated during showering. However, the present understanding of NTM transfer from water to air is insufficient to develop NTM risk mitigation strategies. This study aimed to characterize the contribution of shower water to the abundance of viable NTM in indoor air. Shower water and indoor air samples were collected, and 16S rRNA and rpoB genes were sequenced. The sequencing results showed that running the shower impacted the bacterial community structure and NTM species composition in indoor air by transferring certain bacteria from water to air. A mass balance model combined with NTM quantification results revealed that on average 1/132 and 1/254 of NTM cells in water were transferred to air during 1 hour of showering using a rain and massage showerhead, respectively. A large fraction of the bacteria transferred from water to air were membrane-damaged, i.e. they had compromised membranes based on analysis by live/dead staining and flow cytometry. However, the damaged NTM in air were recoverable as shown by growth in a culture medium mimicking the respiratory secretions of people with cystic fibrosis, implying a potential infection risk by NTM introduced to indoor air during shower running. Among the recovered NTM, Mycobacterium mucogenicum was the dominant species as determined by rpoB gene sequencing. Overall, this study lays the groundwork for future pathogen risk management and public health protection in the built environment.
Insights
Showering transfers nontuberculous mycobacteria (NTM) from water to indoor air, posing a potential respiratory infection risk. Even damaged NTM can recover, highlighting the need for public health strategies in built environments.
Area of Science:
- Environmental microbiology
- Public health
- Infectious disease transmission
Background:
- Nontuberculous mycobacteria (NTM) are common in drinking water and plumbing.
- Inhalation of NTM aerosols from showering may cause respiratory infections.
- Current understanding of NTM water-to-air transfer is insufficient for risk mitigation.
Purpose of the Study:
- To quantify NTM transfer from shower water to indoor air.
- To assess the viability and recoverability of airborne NTM.
- To identify dominant NTM species in aerosols generated during showering.
Main Methods:
- Collection of shower water and indoor air samples.
- 16S rRNA and rpoB gene sequencing for NTM identification.
- Live/dead staining, flow cytometry, and culture-based methods for viability assessment.
- Mass balance modeling to estimate NTM transfer rates.
Main Results:
- Showering significantly altered indoor air bacterial communities and NTM composition.
- NTM transfer rates were 1/132 (rain) and 1/254 (massage) per hour of showering.
- A significant fraction of airborne NTM were membrane-damaged but recoverable in culture.
- Mycobacterium mucogenicum was the predominant NTM species identified.
Conclusions:
- Showering is a significant pathway for NTM introduction into indoor air.
- Membrane-damaged NTM in aerosols may still pose an infection risk.
- Findings support the development of NTM risk management strategies for the built environment.
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