COVID-19 and Nanoscience in the Developing World: Rapid Detection and Remediation in Wastewater
Abstract
:1. Perspective
2. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Country | City/County | Specimen Source | Detection Method | Percentage Detection | Concentration (Copies/L) | Reference |
---|---|---|---|---|---|---|
Australia | Brisbane, Queensland | Untreated wastewater | RT-qPCR c, sequencging | 22% (2/9) | 1.2 × 102 | [7] |
Canada | Ottawa, Gatineau | PCS a | RT-ddPCR, RT-qPCR | 90.6–92.7% (n = 6) | Not available | [18] |
PGS b | 79.2–82.3% (n = 5) | Not available | ||||
China | Beijing | Wastewater | RT-qPCR | Not available | Not available | [19] |
Finland | Helsinki | Wastewater | RT-qPCR | Pellte (78–89%) | Varied according to assay | [20] |
Supernatent (59–100%) | ||||||
France | Paris | Treated wastewater | RT-qPCR | 100% (23/23) | >106.5 | [8] |
Untreated wastewater | RT-qPCR | 75% (6/8) | ~105 | |||
Germany | North Rhine-Westphalia | Solid phase wastewater d | RT-qPCR, sequencing | Not available | 25 copies/mL | [21] |
Aqueous phase wastewater e | 1.8 copies/mL | |||||
Italy | Milan, Rome | Untreated wastewater | RT-qPCR | 50% (6/12) | Not available | [9] |
Japan | Yamanashi | Secondary-treated wastewater f | RT-qPCR | 20% | 2.4 × 103 | [22] |
Netherlands | Amsterdam, Utrecht, Amersfoort, Apeldoorn, Tilburg, Schiphol | Untreated wastewater | RT-qPCR | 58% (14/24) | Not available | [10] |
Pakistan | 38 districts | Untreated wastewater | RT-qPCR | 27% (21/78) | Not available | [23] |
USA | Massachusett, | Untreated wastewater | RT-qPCR, sequencing | 71% (10/14) | >2 × 105 | [11] |
Bozeman, Montana | Untreated wastewater | RT-PCR, sequencing | 100% (7/7) | >3 × 104 | [24] |
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Adeel, M.; Farooq, T.; Shakoor, N.; Ahmar, S.; Fiaz, S.; White, J.C.; Gardea-Torresdey, J.L.; Mora-Poblete, F.; Rui, Y. COVID-19 and Nanoscience in the Developing World: Rapid Detection and Remediation in Wastewater. Nanomaterials 2021, 11, 991. https://doi.org/10.3390/nano11040991
Adeel M, Farooq T, Shakoor N, Ahmar S, Fiaz S, White JC, Gardea-Torresdey JL, Mora-Poblete F, Rui Y. COVID-19 and Nanoscience in the Developing World: Rapid Detection and Remediation in Wastewater. Nanomaterials. 2021; 11(4):991. https://doi.org/10.3390/nano11040991
Chicago/Turabian StyleAdeel, Muhammad, Tahir Farooq, Noman Shakoor, Sunny Ahmar, Sajid Fiaz, Jason C. White, Jorge L. Gardea-Torresdey, Freddy Mora-Poblete, and Yukui Rui. 2021. "COVID-19 and Nanoscience in the Developing World: Rapid Detection and Remediation in Wastewater" Nanomaterials 11, no. 4: 991. https://doi.org/10.3390/nano11040991
APA StyleAdeel, M., Farooq, T., Shakoor, N., Ahmar, S., Fiaz, S., White, J. C., Gardea-Torresdey, J. L., Mora-Poblete, F., & Rui, Y. (2021). COVID-19 and Nanoscience in the Developing World: Rapid Detection and Remediation in Wastewater. Nanomaterials, 11(4), 991. https://doi.org/10.3390/nano11040991