Investigation of Rotavirus Survival in Different Soil Fractions and Temperature Conditions
- 1 Waterborne Environmental, Inc., Champaign, USA
- 2 Department of Pathobiology, University of Illinois, Urbana, USA
- 3 Department of Agricultural and Biological Engineering, University of Illinois, Urbana, USA.
- 4 Department of Agricultural and Biological Engineering, University of Illinois, Urbana, USA.
- 5 Department of Pathobiology, University of Illinois, Urbana, USA
Abstract
Rotavirus is a leading cause of gastrointestinal illness worldwide. Rotavirus transmission occurs fecalorally, and becomes a critical water quality issue when soil and water resources are contaminated with feces. Transport of pathogens to surface water sources depends on their survival in the soil, especially considering the fact that large amounts of fecal material are often applied to agricultural lands as fertilizer. In this study, rotavirus survival was investigated in three different soil fractions and at three different temperatures (4℃, 25 ℃ and 37 ℃ ). A rotavirus suspension was mixed with whole soil, sand, and clay and allowed to incubate for up to 18 days. Samples were collected daily to investigate virus survival over time, which was quantified using a tissue-culture infectivity assay. Results indicated, in the absence of any soil particles, rotavirus survival was highest at 4 ℃ , with survival decreasing as temperature increased. These data also indicated whole soil had some protective effect, allowing rotavirus to survive better in soil for the entire range of temperatures and for more than a week at 37 ℃ . The results also showed that sand fractions were the most effective media for reducing rotavirus recovery at all temperature conditions tested. Although the mechanism responsible for the low recovery from sand is unknown, there is little or no infective rotavirus extracted from sand fractions. This finding strongly supports the use of sand as a filtering material to remove rotavirus from both point and nonpoint sources of water pollution.
- World Health Organization (WHO), “Water, Sanitation and Hygiene Links to Health. FACTS AND FIGURES,” Geneva, 2004.
- U. D. Parashar, E. G. Hummelman, J. S. Bresee, M. A. Miller and R. I. Glass, “Global Illness and Deaths Caused by Rotavirus Disease in Children,” Emerging Infectious Diseases Journal, Vol. 9, No. 5, 2003, pp. 565-572. doi:10.3201/eid0905.020562
- U. D. Parashar, C. J. Gibson, J. S. Bresee and R. I. Glass, “Rotavirus and Severe Childhood Diarrhea,” Emerging Infectious Diseases Journal, Vol. 12, No. 2, 2006, pp. 304-306. doi:10.3201/eid1202.050006
- Center for Disease Control (CDC), “Are You Rotavirus-Ready?” The National Healthy Mothers Healthy Babies Coalition, Atlanta, 2005.
- K. Dhama, R. S. Chauhan, M. Mahendran and S. V. Malik, “Rotavirus Diarrhea in Bovines and Other Domestic Animals,” Veterinary Research Communications, Vol. 33, No. 1, 2009, pp. 1-23. doi:10.1007/s11259-008-9070-x
- B. Dodet, E. Heseltine and P. Saliou, “Rotaviruses in Human and Veterinary Medicine,” Trends in Microbiology, Vol. 5, No. 3, 1997, pp. 176-178. doi:10.1016/S0966-842X(97)01045-7
- S. O. Foster, E. L. Palmer, G. W. Gary Jr., M. L. Martin, K. L. Herrmann, P. Beasley and J. Sampson, “Gastroenteritis Due to Rotavirus in an Isolated Pacific Island Group: An Epidemic of 3439 Cases,” Journal of Infectious Diseases, Vol. 141, No. 1, 1980, pp. 32-39. doi:10.1093/infdis/141.1.32
- F. Bucardo, B. Karlsson, J. Nordgren, M. Paniagua, A. Gonzalez, J. J. Amador, F. Espinoza and L. Svensson, “Mutated G4P[8] Rotavirus Associated with a Nationwide Outbreak of Gastroenteritis in Nicaragua in 2005,” Journal of Clinical Microbiology, Vol. 45, No. 3, 2007, pp. 990-997. doi:10.1128/JCM.01992-06
- S. Karmakar, A. S. Rathore, S. M. Kadri, S. Dutt, S. Khare and S. Lal, “Post-Earthquake Outbreak of Rotavirus Gastroenteritis in Kashmir (India): An Epidemiological Analysis,” Public Health, Vol. 122, No. 10, 2008, 981-989. doi:10.1016/j.puhe.2008.01.006
- S. A. Ansari, V. S. Springthorpe and S. A. Sattar, “Survival and Vehicular Spread of Human Rotaviruses: Possible Relation to Seasonality of Outbreaks,” Reviews of Infectious Diseases, Vol. 13, No. 3, 1991, pp. 448-461. doi:10.1093/clinids/13.3.448
- D. Y. Graham, G. R. Dufour and M. K. Estes, “Minimal Infective Dose of Rotavirus,” Archives of Virology, Vol. 92, No. 2-3, 1987, pp. 261-271. doi:10.1007/BF01317483
- C. P. Gerba, J. L. Melnick and C. Wallis, “Fate of Wastewater Bacteria and Viruses in Soil,” Journal of the Irrigation and Drainage Division, Vol. 101, No. 3, 1975, pp. 157-174.