Linear vs. logarithmic settings in flow cytometric analyses.
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Biomedical subjects
Publications and source records attributed to G Garratty.
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BACKGROUND: In a patient with warm autoantibodies who has recently received a transfusion, it is not recommended to perform adsorptions using autologous RBCs to detect alloantibodies. Although not scientifically documented, this position is based on the theory that transfused RBCs in the patient's circulation would be capable of adsorbing alloantibodies that may be present. This in vitro study was designed to determine what percentage of transfused RBCs might completely remove alloantibodies in vivo. STUDY DESIGN AND METHODS: Selected D, E, K, Fy(a), and Jk(a) antibodies were adsorbed with mixtures of antigen-positive and antigen-negative RBCs to determine the lowest concentration of antigen-positive RBCs capable of removing all alloantibody reactivity. The percentage of antigen-positive RBCs in each mixture was determined by flow cytometry. RESULTS: Small amounts of antigen-positive RBCs (2-6%, as determined by flow cytometry) completely removed anti-D, -E, and -Fy(a) reactivity. Reactivity of two examples of anti-K was removed by 11 percent and 17 percent of K+ RBCs, respectively. Anti-Jk(a) reactivity was completely removed by 4 to 5 percent Jk(a+) RBCs using a PEG adsorption; the endpoint (>11%) was estimated, but complete adsorption with ZZAP-treated RBCs was not performed. CONCLUSION: Small amounts of antigen-positive RBCs are generally capable of removing all alloantibody reactivity. Thus, waiting for 3 months after transfusion before performing autologous adsorptions is a prudent policy.
BACKGROUND: Patients who are refractory to platelet transfusion as a result of HLA alloimmunization are generally given HLA-matched or crossmatched platelets. However, HLA-matched platelets that are matched at HLA-A and -B loci (A-matched) or those without any mismatched or cross-reactive antigens (BU-matched) are frequently unavailable. A disadvantage of crossmatching is that crossmatched platelets have a shelf life of only 5 days, so that crossmatch tests must be performed frequently for patients requiring long-term platelet transfusions. An alternative method is the selection of platelets according to the patient's HLA antibody specificity, called the antibody specificity prediction (ASP) method. STUDY DESIGN AND METHODS: An anti-human globulin-enhanced microlymphocytotoxicity test modified by a double addition of serum and a computer program were used to determine the specificity of patients' HLA antibodies. Platelet crossmatching was performed with a solid-phase adherence assay. The percentage of platelet recovery (PPR) was determined in 1621 platelet transfusions in an observational study in 114 patients, and the PPR of platelets selected by the ASP method was compared with the PPR of those that were HLA-matched, crossmatched, or randomly selected. The numbers of potential donors in files of HLA-typed donors as identified by HLA matching vs. the ASP method were determined. RESULTS: After adjustments for covariates, the mean +/- SEM PPR was similar for HLA-matched (21 +/-4%), cross-matched (23+/-4%), and ASP-selected (24+/-3%) platelets and was significantly lower for randomly selected (15+/-1.4%) platelets. For 29 alloimmunized HLA-typed patients, the mean number of potential donors found in a file of 7247 HLA-typed donors was 6 who were an HLA-A match (median = 1), 33 who were an HLA-BU match (median = 20), and 1426 who were identified by the ASP method (median = 1365). CONCLUSION: The ASP method of donor selection for refractory alloimmunized patients appears as effective as HLA matching or crossmatching. Far more donors are identified in a file of HLA-typed donors by the ASP method than by HLA matching, and this indicates that the ASP method provides important advantages regarding the availability of compatible platelet components.
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Second- and third-generation cephalosporins, especially cefotetan, are increasingly associated with severe, sometimes fatal immune hemolytic anemia. We noticed that 10 of our 35 cases of cefotetan-induced hemolytic anemias were in patients who had received cefotetan prophylactically for obstetric and gynecologic procedures. Eight of these cases of severe immune hemolytic anemia are described.
A chemiluminescent test (CLT) which measures the metabolic response of human monocytes to sensitized red cells was developed to distinguish antibodies capable of causing the increased destruction of transfused incompatible red cells from antibodies which are clinically benign. Thirty sera containing IgG antibodies to high-frequency antigens were tested; 27 of these sera were also tested using the monocyte monolayer assay (MMA). The clinical significance of antibodies in 14 of the sera was known: three (anti-Ata (two), -JMH) caused accelerated clearance of 51Cr-labelled cells, five (anti-'MiIII', -Yta, three unidentified) caused haemolytic transfusion reactions and six (anti-Yta, -Ge, -JMH, -Xga, -Kna (two)) did not appear to affect red cell survival. Overall, results from the MMA and CLT showed good agreement; seven sera were negative in both assays, 18 sera were positive in both assays and two sera were positive in the MMA but negative in the CLT. There was no clear relationship between the activity of different antibodies and the level of sensitization as determined by flow cytometry. Antibody activity could be either increased or decreased by incubation of sensitized red cells with fresh serum. MMA results were in concordance with the clinical significance of antibodies where known in eight of 10 cases. CLT results were in concordance with clinical significance in 12 of 14 cases. Both assays gave false-positive results with serum from a patient with anti-Kna who had received red cell transfusions without adverse effect. This appeared to be due to the ability of anti-Kna to cross-link complement receptor 1 (CR1) on red cells to CR1 on monocytes; negative results were obtained using autologous monocytes.
BACKGROUND: In pretransfusion testing of patients whose sera contain autoantibodies reacting optimally at 37 degrees C, it must be determined whether alloantibodies are also present. Two approaches, testing a 1-in-5 dilution of patients' sera and the adsorption of sera in the presence of polyethylene glycol (PEG), have been proposed as alternatives to the time-consuming approach of adsorbing sera with ficin- or ZZAP-treated red cells (RBCs). The three approaches were compared. STUDY DESIGN AND METHODS: Patients' sera containing warm autoantibodies, with and without alloantibodies, were retested 1) after dilution (1-in-5) and 2) after adsorption with allogeneic RBCs in the presence of PEG. Results were compared to those after adsorption with ZZAP-treated allogeneic RBCs. RESULTS: Dilution (1-in-5): Twenty-seven of 119 sera (7/26 [27%] with and 20/93 [22%] without alloantibodies) did not react; one example each of alloanti-D, -E, -e, -Fy(a), and -Jk(a), and two examples of anti-Jk(b) were not detected at a dilution of 1 in 5. Alloantibodies were identified in 5 (19%) of 26 1-in-5 diluted sera containing alloantibodies; 87 (73%) of 119 sera still reacted with all cells and would have required further workup. PEG adsorption: Thirty-nine sera were tested after parallel PEG and ZZAP adsorptions. The PEG adsorptions required a total of 55 aliquots of adsorbing cells and 13.75 hours, whereas ZZAP adsorptions required 61 aliquots and 30.5 hours. All alloantibodies (anti-D [3], -C [2], -c [1], -E [4], -K [2], -Fy(a) [1], -Jk(a) [2], -Jk(b) [1]) reacted in the adsorbed serum-PEG mixtures at a strength equal to or greater than that in the ZZAP-adsorbed sera. CONCLUSION: Although the 1-in-5 dilution approach is convenient, only 22 percent of warm autoantibodies without alloantibodies were nonreactive, and 27 percent of alloantibodies of potential clinical significance were not detected. PEG adsorption appears to give similar results to those of ZZAP adsorption, but it has the advantages of eliminating the cost and time of prior treatment of the allogeneic adsorbing cells and of a reduction of at least a 50 percent in adsorption time.
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A 14-year-old girl with perinatally acquired human immunodeficiency virus infection had fatal intravascular hemolysis after intravenous administration of ceftriaxone. Laboratory studies confirmed the presence of an antibody against ceftriaxone in the serum and on the patient's red blood cells. No evidence of sepsis, glucose-6-phosphate dehydrogenase deficiency or anaphylaxis was found.
A high incidence (39%) of positive direct antiglobulin tests (DATs) has been reported in patients taking Unasyn [ampicillin sodium plus sulbactam sodium (a beta-lactamase inhibitor)]. Three of four patients, with positive DATs, receiving Unasyn or Timentin [ticarcillin disodium plus clavulanate potassium (also a beta-lactamase inhibitor)] developed a haemolytic anaemia (HA) associated with a positive DAT, which resolved when drug therapy was stopped. The patients' sera did not react with red blood cells (RBCs) in the presence of Unasyn or Timentin, but when drug-treated RBCs were tested, patients' sera and normal sera reacted equally by indirect antiglobulin test. Following incubation in normal sera, RBCs treated with Unasyn, Timentin, Augmentin (amoxicillin + clavulanate), sulbactam and clavulanate reacted with anti-human globulin and anti-human albumin (an index of non-specific adsorption); RBCs treated with ampicillin and amoxicillin were nonreactive. The beta-lactamase inhibitors sulbactam and clavulanate seem to cause nonimmunologic adsorption of protein onto RBCs in vitro. This may explain the high incidence of positive DATs detected in patients taking Unasyn, which contains sulbactam. It was not possible to prove that there was a direct association between the nonspecific uptake of protein onto drug-treated RBCs in vitro with the positive DATs or the HA.
BACKGROUND: Hemolytic transfusion reactions (HTRs) due to anti-P1 have rarely been reported. There is only one report (from 1945) of an acute HTR due to anti-P1. CASE REPORT: A 74-year-old woman with anti-P1 was given blood that had been found to be compatible by the use of prewarmed serum and saline-suspended red cells (RBCs) and of an antiglobulin test with anti-IgG. The test mixtures were not centrifuged or inspected for agglutination after the 37 degrees C incubation phase. After transfusion of 50 mL of P1 + blood, the patient had an acute HTR (hemoglobinemia, hemoglobinuria, and increased blood pressure, temperature, and respiration). RESULTS: When studied by a reference laboratory, the anti-P1 was shown to be easily detectable (3+ agglutination) by a prewarming technique (saline or low-ionic-strength saline [LISS]), which included centrifugation at 37 degrees C, but only weak reactions were observed when centrifugation after 37 degrees C incubation was omitted. The indirect antiglobulin test was weakly positive (1+) with anti-IgG, but polyspecific anti-human globulin reacted 2+. The anti-P1 agglutinin was IgM, and its titer was 16 at 37 degrees C (prewarmed) and 256 at 23 degrees C; it caused hemolysis of RBCs at 37 degrees C under conditions known to enhance hemolysis. An indirect monocyte monolayer assay gave results of 11.2 and 22 percent in testing of P1 + RBCs incubated with the patient's serum alone and with patient's serum plus fresh normal serum (as a source of complement), respectively (normal < or = 3%). CONCLUSION: An acute HTR was caused by a hemolytic anti-P1 that reacted at 37 degrees C. This antibody was not detected by the hospital in a prewarmed crossmatch that omitted 1) the addition of LISS, 2) the reading for agglutination after the 37 degrees C incubation, and 3) the use of antiglobulin sera containing anti-complement.