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Do monocyte ADCC assays accurately predict the severity of hemolytic disease of the newborn caused by antibodies to high-frequency antigens? Cover

Do monocyte ADCC assays accurately predict the severity of hemolytic disease of the newborn caused by antibodies to high-frequency antigens?

By: S.F. Garner and  A. Devenish  
Paid access
|Nov 2020

References

  1. Gunson HH, Phillips PK, Stratton F. Manipulative and inherent errors in anti-D quantitation using the AutoAnalyzer. J Clin Pathol 1972;25:198-205.10.1136/jcp.25.3.198
  2. Garratty G. Predicting the clinical significance of red cell antibodies with in vitro cellular assays. Transfus Med Rev 1990;4:297-312.10.1016/S0887-7963(90)70272-6
  3. Engeifriet CP, Overbeeke MAM, Dooren MC, Ouwehand WH, von dem Borne AEGKr. Bioassays to determine the clinical significance of red cell alioantibodies based on Fc receptor-induced destruction of red cells sensitized by IgG. Transfusion 1994;34:617-26.10.1046/j.1537-2995.1994.34794330018.x
  4. Zupanska B, Brojer E, Richards Y, Lenkiewicz B, Seyfried H, Howell P. Serological and immunological characteristics of maternal anti-Rh(D) antibodies in predicting the severity of haemolytic disease of the newborn. Vox Sang 1989;56:247-53.10.1111/j.1423-0410.1989.tb02037.x
  5. Report from nine collaborating laboratories. Results of tests with different cellular bioassays in relation to severity of RhD haemolytic disease. Vox Sang 1991;60:225-9.10.1159/000461292
  6. Lucas GF, Hadley AG, Nance SJ, Garratty G. Predicting hemolytic disease of the newborn: a comparison of the monocyte monolayer assay and the chemiluminescence test. Transfusion 1993;33:484-7.10.1046/j.1537-2995.1993.33693296810.x
  7. Gamer SF, Gorick BD, Lai WYY, et al. Prediction of the severity of haemolytic disease of the newborn: quantitative IgG anti-D subclass determinations explain the correlation with functional assay results. Vox Sang 1995;68:169-76.
  8. Kaye T, Williams EM. Gamer SF, Leak MR, Lumley H. Anti-Sc I in pregnancy. Transfusion 1990;30:439-40.10.1046/j.1537-2995.1990.30590296379.x
  9. Leak M , Poole j, Kaye T, Garner S. et al. The rare MkMk phenotype in a Turkish antenatal patient and evidence for clinical significance of anti-Ena (abstract). Tranfus Med 1990;(Supp 1):26.
  10. Powell. V, Habash J, Piazzarro I, Lubenko A, Daniels G, Contreras M. A.nti-Wrb and/or EnaFR detected in the serum of a Miv/Mk antenatal patient (abstract), Tranfus Med 1990; (Suppl):26.
  11. Habash J, Devenish A, Macdonald S, Gamer S, Contreras M. A further example of anti-Dib not causing haemotytic disease of the newborn. Vox Sang 1991;61:77.
  12. Lubenko A, Contreras M, Portugal CL, et al. Severe haemolytic disease in an infant born to an Rhnull proposita. Vox Sang 1992;63:43-7.
  13. Walker RH, ed. Technical manual. 11th ed. Bethesda, Ml): American Association of Blood Banks, 1993:661.
  14. Marsh WL. Scoring of hemagglutination reactions. Transfusion 1972;12:352-3.10.1111/j.1537-2995.1972.tb04459.x
  15. Engelfriet CP, Ouwehand WH. ADCC and other cellular bioassays for predicting the clinical significance of red cell alio antibodies. In: Contreras M, ed. Blood transfusion: the impact of new technologies. Bailliere′s Clinical Haematology. London, England: Bailliere Tindall. 1990:321-37.10.1016/S0950-3536(05)80053-8
  16. Garner SF, Thomson AR, Lubenko A, Savage J. Monocyte isolation by flow cytometer monitored centrifugal elutriation: a valuable tool for antibody dependent cell-mediated cytotoxicity assays. Br J Biomed Sci 1994;51:35-43.
  17. Dooren MC, Kuijpers RWAM, Joekes EC, et al. Protection against immune haemolytic disease of newborn infants by maternal monocyte-reactive IgG alloantibodies (anti-HLA-DR). Lancet 1992;339:1067-70.10.1016/0140-6736(92)90661-L
  18. Kuijpers RWAM, Dooren MC, von dem Borne AEGKr, Ouwehand WH. Detection of human monocyte-reactive alloantibodies by flow cytometry following selective down modulation of the Fc receptor I. Blood 1991;78:2150-6.10.1182/blood.V78.8.2150.2150
  19. Novotny VMJ, Kanhai HHH, Overbeeke MAM, Nijp-Schaman A, Harvey MS, Brand A. Misleading results in the determination of haemolytic disease of the newborn using antibody titration and ADCC in a woman with anti-Lub. Vox Sang 1992;62:49-52.
  20. Longster GH, North DI. Robinson EAE. Four examples of anti-Inb detected during pregnancy. Clin Lab Hematol 1981;3:351-6.
  21. Spring FA, Dalchau R. Daniels GL, et al The Ina and Inb blood group antigens are located on a glycoprotein of 80,000 MW (the CDw44 glycoprotein) whose expression is influenced by the In(Lu) gene. Immunology 1988;64:37-43.
  22. Anstee DJ, Gardner B, Spring FA, et al. New monoclonal antibodies in CD44 and CD58: their use to quantify CD44 and CD58 on normal human esythrocytes and to compare the distribution of CD44 and CD58 in human tissues. Immunology 1991; 74:197-205.
  23. Stoll M, Dalchau R, Schmidt RE. Cluster report: CD44. in; Knapp W, Dorken B, Gilks WR, Rieber EP, Schmidt RE, Stein H, von dem Borne AEGKr, eds. Leucocyte typing. IV. White cell differentiation antigens. Oxford University Press, 1989:619-22.
  24. Shaw S, Luce GG, Gilks WR, et al. BP 1.3 leucocyte differentiation antigen database. In: Schlossman SF, Boumsell L, Gilks W, Harlen JM. Kishimoto T, Morimoto C, Ritz J, Shaw S, Silverstein R, Springer T, Tedder TF, Todd RF, eds. Leucocyte typing. V. White cell differentiation antigens. Oxford University Press 1995:16-198.
DOI: https://doi.org/10.21307/immunohematology-2019-741 | Journal eISSN: 1930-3955 | Journal ISSN: 0894-203X
Language: English
Page range: 20 - 26
Published on: Nov 10, 2020
Published by: American National Red Cross
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2020 S.F. Garner, A. Devenish, published by American National Red Cross
This work is licensed under the Creative Commons License.