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This is dated 2010 and may not reflect the attributes of the currently spreading strain of Ebola Zaire. I do not know if the strain has mutated significantly in this regarded since the study was done. -AC
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Journal of Applied Microbiology
Previous article in issue: Response of Deinococcus radiodurans to low-pressure low-temperature plasma sterilization processes
Next article in issue: Inactivation of Bacillus cereus by Na-chlorophyllin-based photosensitization on the surface of packaging
Volume 109, Issue 5
November 2010
Pages 1531?1539
The survival of filoviruses in liquids, on solid substrates and in a dynamic aerosol
Authors
T.J. Piercy,
S.J. Smither,
J.A. Steward,
L. Eastaugh,
M.S. Lever
First published: 22 May 2010Full publication history
DOI: 10.1111/j.1365-2672.2010.04778.x
Citing literature
Article has an altmetric score of 93
Sophie J. Smither, Biomedical Sciences Department, Defence Science and Technology Laboratory, Room 201, Building 7a, Dstl, Porton Down, Salisbury, Wiltshire SP4 0JQ, UK. E-mail: sjsmither@dstl.gov.uk
Abstract
Aims: Filoviruses are associated with high morbidity and lethality rates in humans, are capable of human-to-human transmission, via infected material such as blood, and are believed to have low infectious doses for humans. Filoviruses are able to infect via the respiratory route and are lethal at very low doses in experimental animal models, but there is minimal information on how well the filoviruses survive within aerosol particles. There is also little known about how well filoviruses survive in liquids or on solid surfaces which is important in management of patients or samples that have been exposed to filoviruses.
Methods and Results: Filoviruses were tested for their ability to survive in different liquids and on different solid substrates at different temperatures. The decay rates of filoviruses in a dynamic aerosol were also determined.
Conclusions: Our study has shown that Lake Victoria marburgvirus (MARV) and Zaire ebolavirus (ZEBOV) can survive for long periods in different liquid media and can also be recovered from plastic and glass surfaces at low temperatures for over 3 weeks. The decay rates of ZEBOV and Reston ebolavirus (REBOV) plus MARV within a dynamic aerosol were calculated. ZEBOV and MARV had similar decay rates, whilst REBOV showed significantly better survival within an aerosol.
Significance and Impact of the Study: Data on the survival of two ebolaviruses are presented for the first time. Extended data on the survival of MARV are presented. Data from this study extend the knowledge on the survival of filoviruses under different conditions and provide a basis with which to inform risk assessments and manage exposure to filoviruses.
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Introduction
Viral haemorrhagic fevers can be caused by a range of viral agents. The family Filoviridae consists of two genera, Ebolavirus and Marburgvirus, that contain filoviral species (Zaire ebolavirus, Sudan ebolavirus and Bundibugyo ebolavirus and Lake Victoria marburgvirus) that can cause acute and rapidly progressive haemorrhagic fever in humans. Two other Ebolavirus species, Cote d?Ivoire ebolavirus and Reston ebolavirus, cause diseases in primates but are not pathogenic in humans. Zaire ebolavirus (ZEBOV) and Lake Victoria marburgvirus (MARV) have been associated with a number of outbreaks with high fatality rates (up to 100%) (Feldman et al. 1993; Feldman and Klenk 1996). The average lethality for humans is c. 76% for ZEBOV and 57% for MARV (figures calculated from Bausch, et al. 2008) Both viruses are fast acting, with death often occurring within 7?10-day postinfection, although the incubation period is considered to be 2?21 days (Peters and Khan 1999; Borio et al. 2002). To date, the natural reservoir for filoviruses is not known; however reports have shown that species of African fruit bat may be the natural reservoir for the virus as antibodies to ZEBOV and MARV have been found in bat species, and human cases have been linked to bat exposure (Leroy et al. 2005; Pourrut et al. 2009; Towner et al. 2009).
Filoviruses are transmitted through contact with body fluids or tissues of humans, nonhuman primates or infected laboratory animals (Brown 1997; Mwanatambwe et al. 2001; Pinzon et al. 2004). Historically, nosocomial transmission often occurs through the reuse of incorrectly sterilized needles and syringes, or during nursing of an infected individual through contact with blood, vomit or other infected secretions (Feldman and Klenk 1996). Transmission can also occur during burials and the preparation of bodies for burial (Tukei 1996).
Filoviruses have been reported as being transmitted via the aerosol route, either experimentally or within a biocontainment facility (Jaax et al. 1995; Johnson et al. 1995; Belanov et al. 1996) and are considered to be potential biological warfare or bioterrorism agents (Borio et al. 2002; Bray 2003). In addition, there are reports that MARV was previously weaponized (Alibek and Handelman 1999). A recent review of persistence of Category A Select Agents in the environment highlighted how little basic information is known about the filoviruses (Sinclair et al. 2008). The stability of MARV within aerosols and dried on various substrates was investigated by workers in the former Soviet Union (FSU) (Belanov et al. 1996; Chepurnov et al. 1997); however survival characteristics of other filoviruses have not been investigated.
In the United Kingdom, filoviruses are classified as Advisory Committee on Dangerous Pathogens (ACDP) Hazard Group 4 pathogens [equivalent to Biosafety Level 4 (BSL-4)] and are handled under laboratory containment level 4 (CL4) to minimize the risk of infection to laboratory personnel. Filoviruses are also classed as Category A biological agents by the CDC as they have high case fatality rates and are easily disseminated and low infectious doses of filoviruses are sufficient to cause disease in animal models (Borio et al. 2002). In the field, the infrastructure to handle the pathogens is not always available, and prevention of spread is reliant on good hygiene and removal of all contaminated and infectious material. It is unknown how long the filoviruses are able to remain viable if waste and contaminated areas are not immediately sterilized. If the filoviruses were aerosolized, either accidentally or as a deliberate release, it is also unknown how long they would survive as aerosols, and therefore how many people might potentially be exposed.
Here, we provide data on the stability and viability of MARV and ZEBOV in both liquid media and on a range of solid substrates at various temperatures, over time. In addition, the stability and decay rate of MARV, ZEBOV and Reston ebolavirus (REBOV) within small-particle aerosols held within a modified version of the Goldberg drum system (Goldberg et al. 1958) was investigated.
more information at link:
http://onlinelibrary.wiley.com/enhanced/doi/10.1111/j.1365-2672.2010.04778.x/
______
Journal of Applied Microbiology
Previous article in issue: Response of Deinococcus radiodurans to low-pressure low-temperature plasma sterilization processes
Next article in issue: Inactivation of Bacillus cereus by Na-chlorophyllin-based photosensitization on the surface of packaging
Volume 109, Issue 5
November 2010
Pages 1531?1539
The survival of filoviruses in liquids, on solid substrates and in a dynamic aerosol
Authors
T.J. Piercy,
S.J. Smither,
J.A. Steward,
L. Eastaugh,
M.S. Lever
First published: 22 May 2010Full publication history
DOI: 10.1111/j.1365-2672.2010.04778.x
Citing literature
Article has an altmetric score of 93
Sophie J. Smither, Biomedical Sciences Department, Defence Science and Technology Laboratory, Room 201, Building 7a, Dstl, Porton Down, Salisbury, Wiltshire SP4 0JQ, UK. E-mail: sjsmither@dstl.gov.uk
Abstract
Aims: Filoviruses are associated with high morbidity and lethality rates in humans, are capable of human-to-human transmission, via infected material such as blood, and are believed to have low infectious doses for humans. Filoviruses are able to infect via the respiratory route and are lethal at very low doses in experimental animal models, but there is minimal information on how well the filoviruses survive within aerosol particles. There is also little known about how well filoviruses survive in liquids or on solid surfaces which is important in management of patients or samples that have been exposed to filoviruses.
Methods and Results: Filoviruses were tested for their ability to survive in different liquids and on different solid substrates at different temperatures. The decay rates of filoviruses in a dynamic aerosol were also determined.
Conclusions: Our study has shown that Lake Victoria marburgvirus (MARV) and Zaire ebolavirus (ZEBOV) can survive for long periods in different liquid media and can also be recovered from plastic and glass surfaces at low temperatures for over 3 weeks. The decay rates of ZEBOV and Reston ebolavirus (REBOV) plus MARV within a dynamic aerosol were calculated. ZEBOV and MARV had similar decay rates, whilst REBOV showed significantly better survival within an aerosol.
Significance and Impact of the Study: Data on the survival of two ebolaviruses are presented for the first time. Extended data on the survival of MARV are presented. Data from this study extend the knowledge on the survival of filoviruses under different conditions and provide a basis with which to inform risk assessments and manage exposure to filoviruses.
Close the feedbackYou are previewing our new enhanced HTML article.
If you can't find a tool you're looking for, please click the link at the top of the page to go "Back to old version". We'll be adding more features regularly and your feedback is important to us, so please let us know if you have comments or ideas for improvement.
Introduction
Viral haemorrhagic fevers can be caused by a range of viral agents. The family Filoviridae consists of two genera, Ebolavirus and Marburgvirus, that contain filoviral species (Zaire ebolavirus, Sudan ebolavirus and Bundibugyo ebolavirus and Lake Victoria marburgvirus) that can cause acute and rapidly progressive haemorrhagic fever in humans. Two other Ebolavirus species, Cote d?Ivoire ebolavirus and Reston ebolavirus, cause diseases in primates but are not pathogenic in humans. Zaire ebolavirus (ZEBOV) and Lake Victoria marburgvirus (MARV) have been associated with a number of outbreaks with high fatality rates (up to 100%) (Feldman et al. 1993; Feldman and Klenk 1996). The average lethality for humans is c. 76% for ZEBOV and 57% for MARV (figures calculated from Bausch, et al. 2008) Both viruses are fast acting, with death often occurring within 7?10-day postinfection, although the incubation period is considered to be 2?21 days (Peters and Khan 1999; Borio et al. 2002). To date, the natural reservoir for filoviruses is not known; however reports have shown that species of African fruit bat may be the natural reservoir for the virus as antibodies to ZEBOV and MARV have been found in bat species, and human cases have been linked to bat exposure (Leroy et al. 2005; Pourrut et al. 2009; Towner et al. 2009).
Filoviruses are transmitted through contact with body fluids or tissues of humans, nonhuman primates or infected laboratory animals (Brown 1997; Mwanatambwe et al. 2001; Pinzon et al. 2004). Historically, nosocomial transmission often occurs through the reuse of incorrectly sterilized needles and syringes, or during nursing of an infected individual through contact with blood, vomit or other infected secretions (Feldman and Klenk 1996). Transmission can also occur during burials and the preparation of bodies for burial (Tukei 1996).
Filoviruses have been reported as being transmitted via the aerosol route, either experimentally or within a biocontainment facility (Jaax et al. 1995; Johnson et al. 1995; Belanov et al. 1996) and are considered to be potential biological warfare or bioterrorism agents (Borio et al. 2002; Bray 2003). In addition, there are reports that MARV was previously weaponized (Alibek and Handelman 1999). A recent review of persistence of Category A Select Agents in the environment highlighted how little basic information is known about the filoviruses (Sinclair et al. 2008). The stability of MARV within aerosols and dried on various substrates was investigated by workers in the former Soviet Union (FSU) (Belanov et al. 1996; Chepurnov et al. 1997); however survival characteristics of other filoviruses have not been investigated.
In the United Kingdom, filoviruses are classified as Advisory Committee on Dangerous Pathogens (ACDP) Hazard Group 4 pathogens [equivalent to Biosafety Level 4 (BSL-4)] and are handled under laboratory containment level 4 (CL4) to minimize the risk of infection to laboratory personnel. Filoviruses are also classed as Category A biological agents by the CDC as they have high case fatality rates and are easily disseminated and low infectious doses of filoviruses are sufficient to cause disease in animal models (Borio et al. 2002). In the field, the infrastructure to handle the pathogens is not always available, and prevention of spread is reliant on good hygiene and removal of all contaminated and infectious material. It is unknown how long the filoviruses are able to remain viable if waste and contaminated areas are not immediately sterilized. If the filoviruses were aerosolized, either accidentally or as a deliberate release, it is also unknown how long they would survive as aerosols, and therefore how many people might potentially be exposed.
Here, we provide data on the stability and viability of MARV and ZEBOV in both liquid media and on a range of solid substrates at various temperatures, over time. In addition, the stability and decay rate of MARV, ZEBOV and Reston ebolavirus (REBOV) within small-particle aerosols held within a modified version of the Goldberg drum system (Goldberg et al. 1958) was investigated.
more information at link:
http://onlinelibrary.wiley.com/enhanced/doi/10.1111/j.1365-2672.2010.04778.x/