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Stability of SARS Coronavirus in Human Specimens and Environment and Its Sensitivity to Heating and UV Irradiation 被引量:32

Stability of SARS Coronavirus in Human Specimens and Environment and Its Sensitivity to Heating and UV Irradiation
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摘要 Objective The causal agent for SARS is considered as a novel coronavirus that has never been described both in human and animals previously. The stability of SARS coronavirus in human specimens and in environments was studied. Methods Using a SARS coronavirus strain CoV-P9, which was isolated from pharyngeal swab of a probable SARS case in Beijing, its stability in mimic human specimens and in mimic environment including surfaces of commonly used materials or in household conditions, as well as its resistances to temperature and UV irradiation were analyzed. A total of 106 TCID50 viruses were placed in each tested condition, and changes of the viral infectivity in samples after treatments were measured by evaluating cytopathic effect (CPE) in cell line Vero-E6 at 48 h after infectionn. Results The results showed that SARS coronavirus in the testing condition could survive in serum, 1:20 diluted sputum and feces for at least 96 h, whereas it could remain alive in urine for at least 72 h with a low level of infectivity. The survival abilities on the surfaces of eight different materials and in water were quite comparable, revealing reduction of infectivity after 72 to 96 h exposure. Viruses stayed stable at 4℃, at room temperature (20℃) and at 37℃ for at least 2 h without remarkable change in the infectious ability in cells, but were converted to be non-infectious after 90-, 60- and 30-min exposure at 56℃, at 67℃ and at 75℃, respectively. Irradiation of UV for 60 min on the virus in culture medium resulted in the destruction of viral infectivity at an undetectable level. Conclusion The survival ability of SARS coronavirus in human specimens and in environments seems to be relatively strong. Heating and UV irradiation can efficiently eliminate the viral infectivity. Objective The causal agent for SARS is considered as a novel coronavirus that has never been described both in human and animals previously. The stability of SARS coronavirus in human specimens and in environments was studied. Methods Using a SARS coronavirus strain CoV-P9, which was isolated from pharyngeal swab of a probable SARS case in Beijing, its stability in mimic human specimens and in mimic environment including surfaces of commonly used materials or in household conditions, as well as its resistances to temperature and UV irradiation were analyzed. A total of 106 TCID50 viruses were placed in each tested condition, and changes of the viral infectivity in samples after treatments were measured by evaluating cytopathic effect (CPE) in cell line Vero-E6 at 48 h after infectionn. Results The results showed that SARS coronavirus in the testing condition could survive in serum, 1:20 diluted sputum and feces for at least 96 h, whereas it could remain alive in urine for at least 72 h with a low level of infectivity. The survival abilities on the surfaces of eight different materials and in water were quite comparable, revealing reduction of infectivity after 72 to 96 h exposure. Viruses stayed stable at 4℃, at room temperature (20℃) and at 37℃ for at least 2 h without remarkable change in the infectious ability in cells, but were converted to be non-infectious after 90-, 60- and 30-min exposure at 56℃, at 67℃ and at 75℃, respectively. Irradiation of UV for 60 min on the virus in culture medium resulted in the destruction of viral infectivity at an undetectable level. Conclusion The survival ability of SARS coronavirus in human specimens and in environments seems to be relatively strong. Heating and UV irradiation can efficiently eliminate the viral infectivity.
出处 《Biomedical and Environmental Sciences》 SCIE CAS CSCD 2003年第3期246-255,共10页 生物医学与环境科学(英文版)
基金 This work was supported by the National High-Technology Research and Development Program of China (863 Program) 2003AA208402.
关键词 Severe acute respiratory syndrome CORONAVIRUS STABILITY ENVIRONMENT SPECIMEN Severe acute respiratory syndrome Coronavirus Stability Environment Specimen
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  • 1[1]Cumulative numbers of reported probable cases of SARS. http://www. who.int/csr/sars/country/2003_05_31/en(Accessed June 1, 2003) 被引量:1
  • 2[2]Marra, M.A., Jones, S.J., Astell, C.R., Holt, R.A., Brooks-Wilson, A., Butterfield, Y.S., Khattra, J., Asano, J.K.,Barber, S.A., Chan, S.Y., Cloutier, A., Coughlin, S.M., Freeman, D., Girn, N., Griffith, O.L., Leach, S.R., Mayo,M., McDonald, H., Montgomery, S.B., Pandoh, P.K., Petrescu, A.S., Robertson, A.G., Schein, J.E., Siddiqui, A.,Smailus, D.E., Stott, J.M., Yang, G.S., Plummer, F., Andonov, A., Artsob, H., Bastien, N., Bernard, K., Booth,T.F., Bowness, D., Drebot, M., Femando, L., Flick, R., Garbutt, M., Gray, M., Grolla, A., Jones, S., Feldmann,H., Meyers, A., Kabani, A., Li, Y., Normand, S., Stroher, U., Tipples, G.A., Tyler, S., Vogrig, R., Ward, D.,Watson, B., Brunham, R.C., Krajden, M., Petric, M., Skowronski, D.M., Upton, C., and Roper, R.L.(2003). The genome sequence of the SARS-associated coronavirus. Science 300, 1399-1404. 被引量:1
  • 3[3]Peiris, J.S., Lai, S.T., Poon, L.L., Guan, Y., Yam, L.Y., Lim, W., Nicholls, J., Yee, W.K., Yan, W.W., Cheung,M.T., Cheng, V.C., Chan, K.H., Tsang, D.N., Yung, R.W., Ng, T.K., Yuen, K.Y., and SARS study group.(2003).Coronavirus as a possible cause of severe acute respiratory syndrome. Lancet 361, 1319-1325. 被引量:1
  • 4[4]Rota, P.A., Oberste, M.S., Monroe, S.S., Nix, W.A., Campagnoli, R., Icenogle, J.P., Penaranda, S., Bankamp, B.,Maher, K., Chen, M.H., Tong, S., Tamin, A., Lowe, L., Frace, M., DeRisi, J.L., Chen, Q., Wang, D., Erdman,D.D., Peret, T.C., Burns, C., Ksiazek, T.G., Rollin, P.E., Sanchez, A., Liffick, S., Holloway, B., Limor, J.,McCaustland, K., Olsen-Rassmussen, M., Fouchier, R., Gunther, S., Osterhaus, A.D., Drosten, C., Pallansch,M.A., Anderson, L.J., and Bellini, W.J.(2003). Characterization of a novel coronavirus associated with severe acute respiratory syndrome. Science 300, 1394-1399, 被引量:1
  • 5[5]Holmes, K.V.(2003). SARS-associated coronavirus. N. Engl. J. Med. 348, 1948-1951. 被引量:1
  • 6[6]Ksiazek, T. G., Erdman, D., Goldsmith, C.S., Zaki, S.R., Peret, T., Emery, S., Tong, S., Urbani, C., Comer, J.A.,Lim, W., Rollin, P.E., Dowell. S.F., Ling, A.E., Humphrey, C.D., Shieh, W.J., Guarner, J., Paddock, C.D., Rota,P., Fields, B., DeRisi, J., Yang, J.Y., Cox, N., Hughes, J.M., LeDuc, J.W., Bellini, W.J., Anderson, L.J., and SARS Working Group.(2003). A novel coronavirus associated with severe acute respiratory syndrome. N. Engl.J. Med. 348, 1953-1966. 被引量:1
  • 7[7]Fouchier, R.A., Kuiken, T., Schutten, M., Van, Amerongen, G., Van, Doornum, G.J., Van, Den, Hoogen, B.G.,Peiris, M., Lim, W., Stohr, K., and Osterhaus, A.D.(2003). Aetiology: Koch's postulates fulfilled for SARS virus. Nature 423, 240. 被引量:1
  • 8[8]Barthold, S.W., de, Souza, M.S., and Smith, A.L.(1990). Susceptibility of laboratory mice to intranasal and contact infection with coronaviruses of other species. Lab. Anim. Sci. 40, 481-485. 被引量:1
  • 9[9]Kiss, I., Ros, C., Kecskemeti, S., Tanyi, J., Klingeborn, S.B., and Belak, S.(1999). Observations on the quasispecies composition of three animal pathogenic RNA viruses. Acta Vet Hung 47, 471-480. 被引量:1
  • 10[10]Tyrrell, D.A.J.(1983). Rhinoviruses and coronaviruses- virological aspects of their role in causing colds in human. Eur. J. Respir. Dis. 128, 232. 被引量:1

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