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Cytotoxic activity of settled dust in primary schools: a multi-matrix, multi-season screening approach for children’s environmental health

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Children spend up to nine hours daily in school environments, yet the potential health impact of accumulated indoor dust remains largely uncharacterised. This study provides the first multi-matrix, multi-season assessment of passive dust samples from Portuguese primary schools, using the MTT assay to evaluate the biological activity of complex indoor pollutant mixtures. 207 passive samples were collected across 11 primary schools in the Lisbon Metropolitan Area, using four sampling matrices, settled dust filters, electrostatic dust cloths (EDC), electrostatic dust cloths on T-shirts (EDCT), and floor mops, across six indoor locations, warm and cold seasons, and in urban and rural contexts. Cytotoxic activity was assessed in A549 (human alveolar epithelial) and SK (swine kidney) cells, potential azole resistance was detected by growth on azole-supplemented culture media. Cytotoxic activity was detected in 64.7% (A549) and 24.6% (SK) of samples. Sampling matrix was the strongest predictor of cytotoxic variability for both cell lines (A549: R2 = 0.199; SK: R2 = 0.081; p < 0.001), with floor mops exhibiting the highest cytotoxic rates (A549: 94.4%; SK: 83.3%). Season was a significant secondary modulator exclusively for A549 cells, with cold-season positivity of 82.8% versus 50.0% (p < 0.001). Geographic context, school identity, and indoor location showed no significant effects, suggesting cytotoxic variability reflects building-level operational factors, cleaning practices, and ventilation, rather than environmental setting. Spearman analysis revealed cell-line and compound-specific associations between fungal burden, potential azole resistance detected by growth on azole-supplemented culture media, and cytotoxic responses, with reduced susceptibility to itraconazole, voriconazole, and posaconazole detected in school dust isolates. These findings demonstrate that microbial contamination in school settled dust may result in potential health effects involving clinically relevant antifungal resistance species. Floor mop sampling is identified as a high-sensitivity sentinel approach for the combined biological and chemical toxic burden accumulated at floor level. Passive multi-matrix cytotoxicity assessment should be integrated into school indoor air quality surveillance to protect this vulnerable population.

Descrição

The author(s) declared that financial support was received for this work and/or its publication. The authors gratefully acknowledge the FCT/MCTES national support through the UIDB/05608/2020 and UIDP/05608/2020. This work is also supported by national funds through FCT/MCTES/FSE/UE, 2023.01366.BD (doi: 10.54499/2023.01366.BD) and 2025.02613.BD. This work was also supported by the Academy of Medical Sciences Springboard award Round 7 (SBF007\100130). Funded by the European Union (grant agreement: 101056883). InChildHealth is also receiving funding from the Swiss State Secretariat for Education, Research and Innovation (SERI grant agreement 22.00324), from the United Kingdom Research and Innovation (UKRI grant agreement 10040524), and from the Australian National Health & Medical Research Council (NHMRC grant agreements APP2017786 and APP2008813).

Palavras-chave

Environmental health Children Cytotoxicity Fungal contamination Indoor air Air quality Passive sampling School environment Settled dust FCT_UIDB/05608/2020 FCT_UIDP/05608/2020

Contexto Educativo

Citação

Cervantes R, Pena P, Carolino E, Soszczyńska E, Viegas S, Viegas C, et al. Cytotoxic activity of settled dust in primary schools: a multi-matrix, multi-season screening approach for children’s environmental health. Front Public Health. 2026;14:1946465.

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Frontiers Media SA

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