Leukocyte-Reduced Blood Transfusions: Perioperative Indications, Adverse Effects, and Cost Analysis
Bibliographic record
Abstract
In recent years, interest in leukocyte-reduced blood products has increased as accumulating evidence suggests that cancer recurrence, graft-versus-host disease (GVHD), and postoperative infections are mediated by leukocyte contamination of blood components (Table 1). Herzig et al. (1) in the mid-1970s stimulated interest in leukocyte depletion by showing that leukocyte reduction of platelet components improved posttransfusion platelet counts in patients with human-leukocyte-associated (HLA) antigen incompatibilities. Further studies by Eernisse and Brand (2) demonstrated that leukocyte contamination of platelet concentrates was responsible for HLA antibody formation. These findings led to growing use of leukocyte-reduced platelet transfusions. However, debate continues as to how low the leukocyte count must be to prevent leukocyte-mediated alloimmunization.Table 1: Adverse Effects Associated with Donor LeukocytesIn the last decade, great strides have been made in developing more efficient leukocyte filters, and the administration of leukocyte-reduced blood products has become routine. This review focuses on evidence that leukocyte-reduced blood products may decrease adverse effects associated with blood transfusion. Methods to Achieve Leukocyte Reduction Leukocyte content of whole blood averages two billion (2 × 109) leukocytes per 500 mL of whole blood (3). During blood component preparation, the majority of leukocytes (90%) fractionate with the red blood cells (RBCs). Platelet concentrates retain approximately 8% of the initial leukocytes whereas the remaining 2% are present in the plasma before freezing (4). The American Association of Blood Banks defines leukocyte-reduced red blood cells as containing <5 × 106 leukocytes per unit. The critical immunogenic leukocyte load, defined as the concentration of leukocytes necessary to cause sensitization in a previously nonsensitized individual, is generally accepted as 106 leukocytes per unit (5). In contrast, European RBC components, which undergo buffy-coat depletion as opposed to filtration, have a leukocyte content <1.2 × 109 per unit. Buffy-coat depleted RBCs are commonly prepared by centrifugation of whole blood followed by removal of the plasma and buffy-coat. Leukocyte reduction can be achieved by various techniques, including centrifugation, leukocyte filtration, sedimentation, washing, freeze-thawing, and apheresis. At present, filtration is the most widely used method for producing leukocyte-reduced blood components. Three types of filters are currently used in the transfusion of blood components (Table 2). “First generation filters,” or “screen filters,” with a pore size of 170 to 260 microns remove gross debris, but not leukocytes (6–9). “Second generation filters” with a pore size of 20 to 50 microns, remove 70% to 90% of leukocytes (6–9). The most widely used leukocyte reduction filters are the “third generation filters” (6–9). These high efficiency filters remove 99.9% of leukocytes and may be used at the patient’s bedside during transfusion or by the hospital transfusion service before distribution of the blood. In contrast to the first generation and second generation filters that rely on pore size to entrap leukocytes, third generation filters, also referred to as “adhesion filters,” remove leukocytes by adhesion to negatively charged surfaces in the filter (6–9). Most bedside leukocyte reduction filters substantially impair blood administration rates (one unit RBCs/20–30 min). However, specially designed high-flow, high-efficiency filters (one unit RBCs/5 min) are available (8,9). Standard blood filters and/or microaggregate filters are unnecessary with the use of leukocyte reduction filters.Table 2: Leukocyte Reduction FiltersApheresis techniques exploit density differences between blood cellular components to separate contaminating leukocytes (10). In Europe, solvent-detergent treated blood components are used extensively. Filtration, one of the steps in production of solvent-detergent treated blood components, partially removes both leukocytes and bacteria. Studies demonstrate that the incidence of adverse effects (i.e., fever, chills, rash, and dyspnea) are reduced by substituting solvent-detergent treated plasma for fresh frozen plasma (11,12). Leukocytes can be removed shortly after collection (prestorage filtration) or after storage but before transfusion (poststorage filtration). Studies in animals suggest that prestorage leukocyte reduction is more effective than poststorage leukocyte reduction in preventing platelet alloimmunization (13). Prestorage leukocyte filtration also minimizes the formation of “soluble” leukocyte components, particularly early oxidative radicals released by intact leukocytes (14). These oxygen free radicals (O2-, OH-, H2O2, and others) are highly toxic to cell membranes and represent a threat to survival of surrounding RBCs and platelets (14). Clinical Benefits of Leukocyte Reduction Febrile Nonhemolytic Transfusion Reactions A febrile nonhemolytic transfusion reaction is defined as a temperature increase of 1°C after an allogeneic blood transfusion. Most febrile nonhemolytic transfusion reactions are caused by alloantibodies in the recipient’s plasma against antigens present on donor leukocytes and/or platelets (15,16). The incidence of febrile nonhemolytic transfusion reactions is reduced in patients receiving a first transfusion (0.5%) as compared with chronically transfused patients (60%), the reason being that chronically transfused patients are more likely alloimmunized (17,18). Febrile nonhemolytic transfusion reactions can be decreased by reducing leukocyte concentrations below 0.5 × 109 (19). Despite the use of leukocyte-reduced blood products, febrile reactions may still occur. In these rare cases, febrile reactions correlate with increased concentrations of tumor necrosis factor and interleukins (IL-1β, IL-6, IL-8) (20). Prestorage leukocyte reduction may decrease the incidence of such reactions by reducing cytokine generation. With the availability of increasingly efficient leukocyte reduction filters during the last decade, the incidence of febrile nonhemolytic transfusion reactions in patients receiving multiple transfusions has been reduced substantially—from nearly 61% to as low as 2.5% (18). Platelet Refractoriness and Alloimmunization Alloimmunization, in patients who have had multiple transfusions, can reduce the clinical effectiveness of platelet transfusions by nearly 50%. This problem is especially prevalent among those patients receiving pooled random donor platelet concentrates (21). Investigations correlating platelet refractoriness with the presence of HLA antibodies has found that, in patients who develop platelet refractoriness, the majority previously have been pregnant or have received transfusions with nonleukocyte depleted blood products (22). Contaminating leukocytes in both platelet and RBC transfusions are the primary, but not exclusive, source of alloimmunization to HLA antigens. The Trial to Reduce Alloimmunization to Platelets directly compared the effect of leukocyte reduction and ultraviolet B-irradiation on the incidence of HLA alloimmune-mediated refractoriness to platelet transfusion (23). This investigation demonstrated that patients who have received transfusions with leukocyte-reduced or ultraviolet B-irradiated platelets were not alloimunized and did not develop refractoriness to platelet transfusions. In contrast, patients with preexisting HLA-specific antibodies did not benefit from leukocyte reduction (23). Studies in patients with severe aplastic anemia have demonstrated a reduced incidence of platelet alloimmunization with prestorage leukocyte reduction (24). Immunomodulation and Postoperative Infectious Complications In the 1970s, clinical evidence of transfusion-associated immunomodulation was first provided when it was shown that allogeneic RBC transfusions were beneficial in preserving both renal and cardiac allografts (25,26). Later studies suggested that contaminating leukocytes in RBC transfusions might be responsible for down-regulation of natural-killer (NK) cell activity, T cell proliferation, T lymphocyte antitumor activity, CD-4 helper to CD-8 suppressor ratio, and lymphocyte blastogenesis (27,28). Leukocyte lysis during storage releases immunomodulators, including histamine, eosinophilic cationic protein, eosinophil protein X, myeloperoxidase, and plasminogen activator inhibitor-1 (29). These bioactive mediators impair immunosuppresion, up-regulate the inflammatory response, and by way of oxygen-free radicals, damage tissue (29). A prospective, randomized trial involving patients who underwent colorectal surgery demonstrated that patients who received transfusions with allogeneic whole blood had significantly more postoperative infections than those who received allogeneic blood depleted of 99.9% of leukocytes (28). NK cell activity was impaired as long as 30 days in patients receiving nonleukocyte-depleted allogeneic blood transfusions (28). In the largest randomized, controlled study to date, van de Watering et al. (30) assigned 914 patients undergoing cardiac surgery to one of three RBC transfusion groups: (A) buffy-coat depleted packed RBCs, (B) prestorage leukocyte-filtered RBCs, and (C) poststorage leukocyte filtered RBCs. The incidence of infection was similar among the three groups (30). However, when the prestorage and poststorage leukocyte-filtered RBC groups were combined and compared with the buffy-coat reduced RBC group, patients receiving buffy-coat depleted RBCs had a statistically higher infection rate (30). In patients receiving more than 4 U of RBCs, the infection rate in the buffy-coat depleted group was 31.4% compared with 23.8% and 21.3% (P < 0.05) in the prestorage and poststorage leukocyte-reduced groups, respectively. The infection rate was 8% in patients receiving no transfusions (30). The authors concluded that in cardiac surgical patients requiring more than 3 U of packed RBCs, leukocyte reduction by filtration significantly reduced postoperative infections and mortality. The results of eight prospective studies are summarized in Table 3.Table 3: Incidence of Infections Following Allogeneic Blood TransfusionsDifferences in investigational design, nature of blood components transfused, and patient populations make comparisons among published studies difficult. Most investigations have occurred in Europe where the buffy-coat method is used to prepare leukocyte-depleted blood components. In the United States and Canada, filtration is preferred, and the buffy-coat method is rarely used. In contrast to third generation leukocyte reduction filters that remove 99.9% of leukocytes, blood products generated by the buffy-coat method retain a greater concentration of leukocytes and, therefore, provide only partially leukocyte-reduced blood components. Major controversy continues as to whether associations between allogeneic blood transfusions, immunosuppression, and postoperative infectious complications are causal. The definition of “infection” may be partially responsible. Defining infectious complications by the presence of positive blood cultures likely underestimates the number of clinically significant adverse events. In contrast, defining infectious complications by the presence of a fever likely overestimates the same. Prevention of Bacterial Growth Transfusion of blood components containing bacteria may lead to potentially fatal sepsis. Estimates as to the frequency of these rare reactions have been as high as 1 in 700 random donor platelet transfusions, 1 in 4000 single donor platelet transfusions, and 1 in 31,000 RBC transfusions (37). Most bacterial contamination occurs at collection as a result of inadequate skin preparation before venipuncture. Other causes include asymptomatic bacteremia at the time of blood donation and bacterial contamination during component processing. Common pathogens include Gram-negative endotoxin producing organisms such as Yersinia enterocolitica, Pseudomonas, and Enterobacter (38). The role of leukocyte reduction to remove bacteria from contaminated blood components has been studied (39). Y enterocolitica was inoculated into fresh blood. After several hours of storage, leukocyte filtration was performed while a control aliquot of blood was retained without undergoing filtration. The incidence of positive cultures for Y enterocolitica after 42 days of storage was 8% in the leukocyte-filtered group as compared with 67% in the nonfiltered group. Optimal storage time before filtration to allow for maximal leukocyte ingestion of bacteria appeared to be between 2 and 12 hours. However, in a separate study, Wenz et al. (40) demonstrated bacterial growth of four organisms in leukocyte-reduced platelet concentrates after one day of storage. The beneficial effect of leukocyte reduction may lie in removal of leukocytes containing ingested bacteria (41). Newer leukocyte reduction filters remove up to 75% to 100% of Yersinia bacteria. Similar results have been demonstrated with Staphylococcus xylosus (42). Cancer Recurrence Numerous studies have explored the relationship between transfusion and cancer recurrence. Results of these studies are mixed, with approximately half suggesting an adverse effect of allogeneic transfusion on cancer recurrence (43–50). In most observational studies, cancer recurrence rates were evaluated in surgical patients who received allogeneic blood transfusions as compared with patients who received no blood transfusions. Perioperative blood transfusions are associated with several confounding variables that by themselves predict an overall worse outcome. Some of these variables include the difficulty of the operative procedure, skill of the surgeon, extent of tumor invasion and resection, and the overall health of the patient. Despite multivariate statistical analyses, it is possible that unaccounted for confounding variables could have influenced subsequent outcomes (51,52). The most recent, relevant, and prospective human studies involve patients undergoing colorectal surgery (4,53) Two recent meta-analyses have addressed this issue. Both identified an association between allogeneic blood transfusion and colorectal cancer recurrence after surgery (54,55). Duke’s classification and blood transfusion were the only clinical variables that independently predicted cancer recurrence (56). Blood transfusions in colorectal surgery patients have been reported to increase cancer recurrence by 37% (55). Blood transfusions also have been associated with increased recurrence of breast, lung, kidney, prostate, stomach, cervical, laryngeal, soft tissue, and bone malignancies (57). Studies of leukocyte reduction in animal models have demonstrated reduced tumor growth and fewer lung metastases (58). These beneficial effects occurred only if leukocyte reduction occurred before blood storage (56,59). GVHD GVHD is a potentially lethal condition caused by donor T lymphocytes. Nearly all types of blood components (i.e., whole blood, platelet concentrates, and granulocyte concentrates) have been associated with this condition. In immunocompromised recipients, host defense mechanisms fail to suppress viable transfused donor lymphocytes, which engraft within the recipient’s marrow, ultimately resulting in death (60). GVHD may also occur in immunocompetent recipients. This most often occurs when the donor and recipient share an HLA haplotype. The use of directed-donor blood from first degree relatives increases the potential for GVHD. The number of donor lymphocytes necessary for initiation of GVHD is unclear; however, animal studies suggest 107 lymphocytes per kilogram of body weight are needed (61). Host injury, and eventual death, results from epithelial damage and hematopoietic stem cell destruction. Cytokines, namely tumor necrosis factor and interleukins released by donor cytotoxic T lymphocytes and NK cells, mediate GVHD pathophysiologic responses (60). Several methods are available to reduce the number of viable T lymphocytes before transfusion. Gamma-irradiation has been the traditional approach and remains the most widely accepted method for prophylaxis against GVHD. The recommended minimal dose, 25 Gy (γ-irradiation), decreases lymphocyte mitogen response by 90% (62). Ultraviolet- irradiation has been shown in animals to reduce the incidence of GVHD. In vitro studies have suggested that third generation leukocyte reduction filters also may decrease the incidence of GVHD (63). Cytomegalovirus (CMV) Infections CMV antibody prevalence rates in North America range from 30% to 80% (61). Transfusion-associated CMV infections are recognized as a significant cause of morbidity and mortality in immunocompromised patients and especially in organ transplant recipients. After either kidney or liver transplants, more than 60% of patients develop antibodies against CMV (64). CMV has been isolated from peripheral blood leukocytes of many infected patients. Studies in neonates suggest that transfusion of washed RBCs (87% leukocyte removal) from CMV-positive donors is associated with a lower incidence of CMV seroconversion (1.3%) than that seen in recipients of unwashed RBCs (13% to 35%) (65). Data from patients undergoing bone marrow transplantation indicate that the use of leukocyte-reduced blood products is equivalent to the use of CMV-seronegative blood products in preventing transfusion-associated CMV infection (66). In the heart transplant setting, leukocyte-reduced blood transfusion resulted in none of patients receiving transfusions developing CMV whereas of patients transfused with nonleukocyte-depleted blood infected The use of leukocyte-reduced blood products may also be associated with decreased of human T which has been with T cell and multiple The role of leukocytes in of disease remains Infectious have been isolated from tissue, and subsequent into the blood is a European have concluded that of leukocyte-reduced blood products may decrease the potential for of this date, no of disease have been reported in association with a transfusion. of RBC of RBCs to and Reduction in in of 30% substantially RBC survival after transfusion Other of RBC survival include increased free and in the plasma The presence of leukocytes in blood components and leukocyte lysis to of that reduce RBC survival Studies demonstrate that is significantly in leukocyte-reduced RBC components of Platelet Similar studies with platelet concentrates demonstrate that increased leukocyte concentrations are associated with decreases in and increases in and with leukocyte the used to prepare platelet concentrates is also for the storage condition of platelet The of leukocyte-reduced platelets prepared by the buffy-coat method is higher than that of leukocyte-reduced platelets prepared by the plasma The platelets from whole blood of within eight hours of 500 mL of whole blood centrifugation to allow for of the The a second centrifugation to platelet and et al. concluded that platelets prepared from are more than platelets prepared by the buffy-coat and have demonstrated that leukocytes in platelet concentrates have adverse effects on platelet Platelets with leukocytes decreased of decreased and a response to Platelet to by to factor and the of platelet can impair platelet adhesion and potentially result in a Prevention of of after may result in necrosis and is to be associated with adhesion generation of oxygen-free radicals by leukocytes and Studies have the role of leukocyte reduction in after et al. studied the effects of leukocyte reduction in a of and The results of this study that as by response to and was in the group that underwent leukocyte reduction by filtration. et al. in a randomized study of heart transplant found that leukocyte reduction The demonstrated that leukocyte reduction was associated with reduced of for injury, were to in postoperative in the investigational In a separate study, of leukocyte filters in the removed Clinical were not in these patients. remains to be seen whether leukocyte reduction be clinically in reducing of Prevention of blood of leukocytes, and These have been associated with after transfusion filters remove these however, these filters have not been associated with a reduction in in randomized, controlled lung is a of associated with blood transfusions. develop severe and findings with This of lung is caused by of donor leukocytes by recipient antibodies Transfusion of leukocyte-reduced blood components may decrease the of this fatal of Leukocyte Reduction Leukocyte reduction increases the of one unit of blood by approximately (3). has been for the of that of leukocyte-reduced blood products increase transfusion in that by to (4). However, lower overall be as a result of a reduced incidence of adverse (i.e., postoperative refractoriness to platelet transfusions, and febrile nonhemolytic transfusion leukocyte reduction to reduced of the to of blood components be studies have addressed the of leukocyte-reduced blood components. et al. the of leukocyte-reduced blood transfusions in colorectal surgery patients. Postoperative infections were increased in patients receiving nonfiltered blood. hospital per patient were in patients receiving nonfiltered blood, in patients receiving filtered blood, and in those receiving no transfusions. Similar results have been reported by In patients with to the use of leukocyte-reduced blood products were to be per patient per on of per febrile transfusion reaction The effect of leukocyte reduction and effectiveness in patients undergoing was studied in a prospective, randomized clinical trial The results of this trial demonstrated that in low leukocyte reduction decreased hospital by one day and by to Clinical for Leukocyte Reduction on for use of leukocyte-reduced blood products include the of febrile nonhemolytic transfusion reduction of platelet and of CMV (Table Other currently investigation include reduction of postoperative cancer recurrence, of RBC and platelet storage reduction of reduction of reduction of injury, and the reduction of bacterial counts in contaminated RBC and platelet concentrates (Table of Leukocyte Effects of Leukocyte Reduction adverse effects have been reported in association with leukocyte-reduced blood components. A potential effect charged surfaces of leukocyte reduction filters may cause with of However, is likely not the only factor the concentrations of in not those to cause has been reported in patients and receiving leukocyte-reduced blood in decrease also may occur with charged leukocyte filters and in patients not The United States and an the association between and leukocyte reduction filters as the or has been to recipients of prestorage leukocyte-reduced RBCs This condition is by and In most within but may up to three for is that leukocyte reduction may cellular components of blood. A decrease in the of cellular blood components, namely RBCs, has been reported after filtration. it has been demonstrated that prestorage leukocyte reduction is associated with and the formation of platelet compared with filtered platelets increased concentrations of platelet in and of the remaining platelets were not and was no evidence of generation At present, the clinical of these platelet is In is evidence that of blood products investigations suggest that leukocyte-reduced platelet concentrates decrease the incidence of platelet CMV and febrile nonhemolytic transfusion Further clinical are needed to the of leukocyte-reduced blood products as to cancer recurrence, RBC and platelet storage, and Several European including the United and have a of leukocyte reduction for all blood components. At present, the American is a of leukocyte reduction for all blood components within the
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How this classification was reachedexpand
Full frame distilled prediction
Teacher imitationNot calibrated prevalence, not ground truth. Human validation pending. Learned from the 10,348 direct Codex labels and 10,348 direct Gemma labels. Candidate is the union of thresholded teacher heads; consensus is their intersection. These outputs are machine_predicted_unvalidated and are not human labels or direct frontier model labels.
Codex and Gemma teacher scores by category
| Category | Codex | Gemma |
|---|---|---|
| Metaresearch | 0.000 | 0.000 |
| Meta-epidemiology (narrow) | 0.001 | 0.001 |
| Meta-epidemiology (broad) | 0.003 | 0.001 |
| Bibliometrics | 0.001 | 0.002 |
| Science and technology studies | 0.000 | 0.000 |
| Scholarly communication | 0.000 | 0.000 |
| Open science | 0.000 | 0.000 |
| Research integrity | 0.001 | 0.001 |
| Insufficient payload (model declined to judge) | 0.001 | 0.000 |
Machine scores (provisional)
The two teacher heads of the student model, read on this work. A score orders the frame for review; it never asserts a category, and the validation status ships verbatim with every row.
Baseline scores from an immature model (maturity gate not passed, 7 training rounds). Scores rank; they never assert a category.
score_only:v0-immature-baseline · verbatim from the scoring run: score_only means the number may rank works, and no category label ships from itClassification
machine, unvalidatedMachine predicted; a candidate call from one teacher head, not a consensus.
How this classification was reached, model by model and score by score, is at the end of the page under "How this classification was reached".