Literature DB >> 19420186

Recombinant antigen targets for serodiagnosis of African swine fever.

Carmina Gallardo1, Ana Luísa Reis, Gladys Kalema-Zikusoka, Joana Malta, Alejandro Soler, Esther Blanco, R M E Parkhouse, Alexandre Leitão.   

Abstract

African swine fever (ASF) is an infectious and economically important disease of domestic pigs. There is no vaccine, and so reliable diagnosis is essential for control strategies. The performance of four recombinant ASF virus (ASFV) protein (pK205R, pB602L, p104R, and p54)-based enzyme-linked immunosorbent assays (ELISAs) was evaluated with European porcine field sera that had been established by Office International des Epizooties (OIE)-approved tests to be ASFV negative (n = 119) and ASFV positive (n = 80). The kappa values showed that there was almost perfect agreement between the results of the "gold standard" test (immunoblotting) and the results obtained by the p54-specific ELISA (kappa = 0.95; 95% confidence interval [CI], 0.90 to 0.99) and the pK205R-specific ELISA or the pB602L-specific ELISA (kappa = 0.92; 95% CI, 0.86 to 0.97). For the pA104R-specific ELISA, there was substantial to almost perfect agreement (kappa = 0.81; 95% CI, 0.72 to 0.89). Similar results were observed by the OIE-approved ELISA (kappa = 0.89; 95% CI, 0.82 to 0.95). Importantly, antibodies against these proteins were detectable early after infection of domestic pigs. Preliminary testing of 9 positive and 17 negative serum samples from pigs from West Africa showed identical results by the recombinant protein-based ELISA and the OIE-approved tests. In contrast, there was a high degree of specificity but a surprisingly a low level of sensitivity with 7 positive and 342 negative serum samples from pigs from East Africa. With poorly preserved sera, only the p104R-specific ELISA showed a significant reduction in sensitivity compared to that of the OIE-approved ELISA. Finally, these recombinant proteins also detected antibodies in the sera of the majority of infected warthogs. Thus, recombinant ASFV proteins p54, pB602L, and pK205R provide sensitive and specific targets for the detection of antibodies in European and West African domestic pigs and warthogs.

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Year:  2009        PMID: 19420186      PMCID: PMC2708404          DOI: 10.1128/CVI.00408-08

Source DB:  PubMed          Journal:  Clin Vaccine Immunol        ISSN: 1556-679X


  22 in total

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Journal:  Can J Vet Res       Date:  1989-01       Impact factor: 1.310

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Journal:  Vet Immunol Immunopathol       Date:  1985-07       Impact factor: 2.046

3.  Comparison of two antigens for use in an enzyme-linked immunosorbent assay to detect African swine fever antibody.

Authors:  M J Pastor; M Arias; J M Escribano
Journal:  Am J Vet Res       Date:  1990-10       Impact factor: 1.156

4.  Antibodies to bovine serum albumin in swine sera: implications for false-positive reactions in the serodiagnosis of African swine fever.

Authors:  J M Escribano; M J Pastor; J M Sánchez-Vizcaíno
Journal:  Am J Vet Res       Date:  1989-07       Impact factor: 1.156

5.  Comparison of a radioimmunoprecipitation assay to immunoblotting and ELISA for detection of antibody to African swine fever virus.

Authors:  C Alcaraz; M De Diego; M J Pastor; J M Escribano
Journal:  J Vet Diagn Invest       Date:  1990-07       Impact factor: 1.279

6.  Identification of the principal serological immunodeterminants of African swine fever virus by screening a virus cDNA library with antibody.

Authors:  S D Kollnberger; B Gutierrez-Castañeda; M Foster-Cuevas; A Corteyn; R M E Parkhouse
Journal:  J Gen Virol       Date:  2002-06       Impact factor: 3.891

7.  The non-haemadsorbing African swine fever virus isolate ASFV/NH/P68 provides a model for defining the protective anti-virus immune response.

Authors:  Alexandre Leitão; Clara Cartaxeiro; Ricardo Coelho; Benedita Cruz; R M E Parkhouse; Fernando C Portugal; José D Vigário; Carlos L V Martins
Journal:  J Gen Virol       Date:  2001-03       Impact factor: 3.891

8.  African swine fever convalescent sows: subsequent pregnancy and the effect of colostral antibody on challenge inoculation of their pigs.

Authors:  D H Schlafer; J W McVicar; C A Mebus
Journal:  Am J Vet Res       Date:  1984-07       Impact factor: 1.156

9.  Inhibition of African swine fever infection in the presence of immune sera in vivo and in vitro.

Authors:  F Ruiz Gonzalvo; M E Carnero; C Caballero; J Martínez
Journal:  Am J Vet Res       Date:  1986-06       Impact factor: 1.156

10.  Neutralizing antibodies to African swine fever virus proteins p30, p54, and p72 are not sufficient for antibody-mediated protection.

Authors:  J G Neilan; L Zsak; Z Lu; T G Burrage; G F Kutish; D L Rock
Journal:  Virology       Date:  2004-02-20       Impact factor: 3.616

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  15 in total

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Authors:  Minh Nam Nguyen; Tram T N Ngo; Duyen M T Nguyen; Danh Cong Lai; Hai N Nguyen; Trang T P Nguyen; Joo Young Lee; Toan T Nguyen; Duy T Do
Journal:  Curr Microbiol       Date:  2022-10-08       Impact factor: 2.343

2.  African swine fever virus transmission cycles in Central Europe: Evaluation of wild boar-soft tick contacts through detection of antibodies against Ornithodoros erraticus saliva antigen.

Authors:  Jana Pietschmann; Lina Mur; Sandra Blome; Martin Beer; Ricardo Pérez-Sánchez; Ana Oleaga; José Manuel Sánchez-Vizcaíno
Journal:  BMC Vet Res       Date:  2016-01-04       Impact factor: 2.741

3.  BA71ΔCD2: a New Recombinant Live Attenuated African Swine Fever Virus with Cross-Protective Capabilities.

Authors:  Paula L Monteagudo; Anna Lacasta; Elisabeth López; Laia Bosch; Javier Collado; Sonia Pina-Pedrero; Florencia Correa-Fiz; Francesc Accensi; María Jesús Navas; Enric Vidal; María J Bustos; Javier M Rodríguez; Andreas Gallei; Veljko Nikolin; María L Salas; Fernando Rodríguez
Journal:  J Virol       Date:  2017-10-13       Impact factor: 5.103

Review 4.  African swine fever vaccines: a promising work still in progress.

Authors:  Laia Bosch-Camós; Elisabeth López; Fernando Rodriguez
Journal:  Porcine Health Manag       Date:  2020-07-02

Review 5.  African Swine Fever Virus: An Emerging DNA Arbovirus.

Authors:  Natasha N Gaudreault; Daniel W Madden; William C Wilson; Jessie D Trujillo; Juergen A Richt
Journal:  Front Vet Sci       Date:  2020-05-13

6.  Characterization of Anti-p54 Monoclonal Antibodies and Their Potential Use for African Swine Fever Virus Diagnosis.

Authors:  Weldu Tesfagaber; Lulu Wang; Ghebremedhin Tsegay; Yibrah Tekle Hagoss; Zhenjiang Zhang; Jiwen Zhang; Haoyue Huangfu; Fei Xi; Fang Li; Encheng Sun; Zhigao Bu; Dongming Zhao
Journal:  Pathogens       Date:  2021-02-07

7.  A New Method for Detection African Swine Fever Virus: Time-resolved Fluorescence Immunoassay.

Authors:  Cuicui Chen; Hongrui Lai; Huankun Liang; Ying He; Guiling Guo; Laiqing Li
Journal:  J Fluoresc       Date:  2021-06-01       Impact factor: 2.217

8.  Estimation of the transmission dynamics of African swine fever virus within a swine house.

Authors:  J P Nielsen; T S Larsen; T Halasa; L E Christiansen
Journal:  Epidemiol Infect       Date:  2017-08-03       Impact factor: 4.434

9.  Detection of African Swine Fever Virus Antibodies in Serum and Oral Fluid Specimens Using a Recombinant Protein 30 (p30) Dual Matrix Indirect ELISA.

Authors:  Luis G Giménez-Lirola; Lina Mur; Belen Rivera; Mark Mogler; Yaxuan Sun; Sergio Lizano; Christa Goodell; D L Hank Harris; Raymond R R Rowland; Carmina Gallardo; José Manuel Sánchez-Vizcaíno; Jeff Zimmerman
Journal:  PLoS One       Date:  2016-09-09       Impact factor: 3.240

10.  Modeling the Effects of Duration and Size of the Control Zones on the Consequences of a Hypothetical African Swine Fever Epidemic in Denmark.

Authors:  Tariq Halasa; Anette Bøtner; Sten Mortensen; Hanne Christensen; Sisse Birk Wulff; Anette Boklund
Journal:  Front Vet Sci       Date:  2018-03-19
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