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The development and evaluation of a μ-capture ELISA detecting chlamydia-specific Igm

Published online by Cambridge University Press:  15 May 2009

T. G. Wreghitt
Affiliation:
Clinical Microbiology and Public Health Laboratory, Level 6, Addenbrooke's Hospital, Hills Road, Cambridge CB2 2QW.
V. J. Robinson
Affiliation:
Department of Pathology, University of Cambridge.
E. O Caul
Affiliation:
Joint Regional Public Health Laboratory Service and District Virology Laboratory, Myrtle Road, Kingsdown, Bristol.
I. D. Paul
Affiliation:
Joint Regional Public Health Laboratory Service and District Virology Laboratory, Myrtle Road, Kingsdown, Bristol.
S. Gatley
Affiliation:
Novo BioLabs Ltd., Downham House, Downham's Lane, Milton Road, Cambridge.
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Summary

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A μ-capture enzyme-linked immunosorbent assay (ELISA) for detecting chlamydia-specific IgM was developed by use of the heat stable, lipopolysaccharide group-specific antigen and an alkaline phosphatase-labelled anti-chlamydia group-specific monoclonal antibody conjugate. The test was used to study the serological response in chlamydial respiratory tract infection among patients with acute respiratory tract symptoms in Cambridgeshire during the past 7 years. Results were compared with those of the complement fixation test (CFT) in routine use as well as those of a whole inclusion indirect immunofluorescence (WIF) test for IgM. Correlation between results of the μ-capture ELISA and those of the WIF test was 87·5%.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1988

References

Berman, S. L., Freundlich, E., Glaser, K., Abramov, A. & Ephrati-Elizar, E. (1955). Ornithosis in infancy. Pediatrics 15, 752759.Google ScholarPubMed
Bradstreet, C. M. P. & Taylor, C. E. D. (1962). Technique of complement fixation test applicable to the diagnosis of virus diseases. Monthly Bulletin of the Ministry of Health and Public Health Laboratory Service 21, 96104.Google Scholar
Byrom, N. P., Walls, J. & Mair, H. J. (1979). Fulminant psittacosis. Lancet i, 353356.CrossRefGoogle Scholar
Campbel, L. A., Kuo, C. C. & Grayston, J. T. (1987). Charaterization of the chlamydia hybridization. Journal of Clinical Microbiology 25, 19111916.Google Scholar
Conway, D., Glazener, C. M. A., Caul, E. O., Hodgson, J., Hull, M. G. R., Clarke, S. J. R. & Stirrat, G. M. (1984). Chlamydial serology in fertile and infertile women. Lancet i, 191193.CrossRefGoogle Scholar
Grayston, J. T., Kuo, C. C., Wang, S. & Altman, J. (1986). A new Chalamydia psittaci strain, TWAR, isolated in acute respiratory tract infections. New England Journal of Medicine 315, 161168.CrossRefGoogle Scholar
Ishikawa, E., Imagawa, M., Hashida, S., Yoshitake, S., Yamaguchi, Y. & Veno, T. (1983). Enzyme labelling of antibodies and their fragments for enzyme immunoassay and immunohistochemical staining. Journal of Immunology 4, 209227.Google ScholarPubMed
Kuo, C. C., Chen, H. H., Wang, S. P. & Grayston, J. T. (1986). Indentification of a new group of Chlamydia psittaci strains called TWAR. Journal of Clinical Microbiology 24, 10341037.CrossRefGoogle Scholar
Lewis, V. J., Thacker, W. L. & Mitchell, S. H. (1977). Enzyme-linked immunosorbent assay for chlamydial antibodies. Journal of Clinical Microbiology 6, 507510.CrossRefGoogle ScholarPubMed
Macfarlane, J. T. & Macrae, A. D. (1983). Psittacosis. British Medical Bulletin 39, 163167.CrossRefGoogle ScholarPubMed
Mcgivern, D., White, R., Paul, I. D., Caul, E. O., Room, A. P. C. H. & Westmorland, D. (1988). Concomitant zoonotic infection with ovine chlamydia and Q fever in pregnancy: Clinical features, diagnosis, management and public health implications. British Journal of Obstetrics and Gynaecology 95, 111115.Google ScholarPubMed
Meyer, K. F. & Eddie, B. (1956). The influence of tetracycline compounds on the development of antibodies in psittacosis. Annual Review of Tuberculosis and Pulmonary Disease 74, 566571.Google Scholar
Meyer, K. F., Eddie, B. & Schachter, J. (1969). Psittacosis-lymphogranuloma venereum agents. In Diagnostic Procedures for Viral and Rickettsial Infections, 4th edition, p. 900. New York: American Public Health Association Inc.Google Scholar
Moule, J. H., Caul, E. O. & Wreghitt, T. G. (1987). The specific IgM response to Mycoplasma pneumoniae infection: interpretation and application to early diagnosis. Epidemiology and Infection 99, 685692.CrossRefGoogle ScholarPubMed
Nagington, J. (1984). Psittacosis ornithosis in Cambridgeshire, 1975–1983. Journal of Hygiene 92, 919.CrossRefGoogle ScholarPubMed
Palmer, S. R., Andrews, B. E. & Major, R. (1981). A common-source outbreak of ornithosis in veterinary surgeons. Lancet ii, 798799.CrossRefGoogle Scholar
Richmond, S. J. & Caul, E. O. (1982). Antibodies to Chalmydia: A Single Antigen Test. In Immunofluorescence Techniques in Diagnostic Microbiology (ed. Edwards, I. M. B.Taylor, C. E. D.Tomlinson, A. H.), pp. 7784. PHLS Monograph Series 18. London: Her Majesty's Stationery Office.Google Scholar
Schachter, J., & Dawson, C. (1978). Human Chlamydial Infections. Massachussetts: PSG.Google Scholar
Schachter, J., Lum, L., Gooding, C. A. & Ostler, B. (1975). Pneumonitis following inclusion blennorhea. Journal of Pediatrics 87, 779780.CrossRefGoogle Scholar
Strauss, J. (1967). Microbiologic and epidemiologic aspects of duck ornithosis in Czechoslovakia. American Journal of Opthalmology 63, 12461259.CrossRefGoogle ScholarPubMed
Terho, P. & Meurman, O. (1981). Chlamydial serum IgG, IgA and local IgA antibodies in patients with genital-tract infections, measured by solid-phase radioimmunoassay. Journal of Medical Microbiology 14, 7787.CrossRefGoogle ScholarPubMed
Wang, S. P. & Grayston, J. T. (1971). In Trachoma and Related Disorders (ed. R., L. Nichols), pp. 217232. Amsterdam: Excerpta Medica.Google Scholar
Wang, S.-P.Grayston, J. T., Kuo, C.-C.Alexander, E. R. & Holmes, K. K. (1977). Serodiagnosis of chlamydia trachomatis infection with the microimmunofluorescence test. In Non–gonococcal Urethritis and Related Infections (ed. Hobson, D.Holmes, K. K.) pp. 237248. Washington D.C.: American Society for Microbiology.Google Scholar
Wreghitt, T. G. & Sillis, M. (1985). A μ-capture ELISA for detecting Mycoplasma pneumoniae IgM: comparison with indirect immunofluorescence and indirect ELISA. Journal of Hygiene 94, 217227.CrossRefGoogle ScholarPubMed
Wreghitt, T. G. & Sillis, M. (1987). An investigation of the Mycoplasma pneumoniae infections in Cambridge in 1983 using μ-capture ELISA, indirect immunofluorescence and complement fixation tests. Israel Journal of Medical Sciences 23, 704708.Google Scholar