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E Simson

Publications and source records attributed to E Simson.

14 recordsLinked to original sources

The international consensus group for hematology review: suggested criteria for action following automated CBC and WBC differential analysis.

In the half century since the first use of automated analyzers, manual techniques, especially microscopic examination of a stained blood film, have complemented analyzer results to provide a comprehensive hematology report on a patient's blood sample. Over the years, as the capabilities and performance of automated analyzers have improved, the respective roles of the automated analyzer and the complementary procedures have changed. Manual action (most commonly smear review) following automated analyzer results is usually triggered by determining whether the results trigger one of a series of criteria for review of results. There is little uniformity among different laboratories on criteria for action. Recognizing the long-standing need for generally accepted guidelines ("rules") which could be applied to criteria for review of CBC and differential results from automated hematology analyzers, Dr. Berend Houwen invited 20 experts to a meeting in the Spring of 2002 to discuss the issues and determine the most appropriate criteria. At this meeting, 83 rules were developed by consensus agreement. These rules were then tested in 15 laboratories on a total of 13,298 blood samples. After a detailed analysis of the data, the rules were refined and consolidated to produce 41 rules that are presented here. They include rules for first-time samples as well as delta rules for repeat samples within 72 hours from a patient. It is hoped that these rules will be useful to a large number of hematology laboratories worldwide. To facilitate validating these rules in individual laboratories before implementation in routine operation for patient samples, a suggested protocol is attached to this paper.

Automation↗

Implementation, management and continuous quality improvement of point-of-care testing in an academic health care setting.

Point-of-care testing (POCT) has economic and medical benefits in the areas of immediate medical management, resource utilization and time management. Starting with bedside glucose, the Mount Sinai Medical Center has, over the past 11 years, implemented 23 POC tests, spanning complexity from blood gas/electrolyte testing to occult blood, in compliance with all regulatory and accreditation requirements. QC data are reviewed on a daily and weekly basis and all patient results are in the electronic medical record. A variety of healthcare workers; nurses, physicians, respiratory therapists and technologists, perform testing. Since POCT impacts on a variety of hospital departments, proper implementation and management requires a multi-disciplinary team approach with focus on the financial, regulatory, quality assurance and data integration issues. Established in 1996, the institutional committee, with laboratory leadership, handles the establishment, compliance review and future direction setting of the program. In 1999, over 1300 individuals performed over 440,000 POC tests within the institution. A formalized continuous quality improvement (CQI) program for the POCT program was developed in the fall of 1999. All testing sites are reviewed on a monthly basis for various quality indicators that cover QC performance, maintenance performance, proficiency testing, patient identification, and alert value confirmations.

Academic Medical Centers↗

Variability in absolute lymphocyte counts obtained by automated cell counters.

There is increasing interest in the absolute lymphocyte count. This is partly driven by the need to obtain absolute values for lymphocyte subsets such as absolute CD4+ counts in human immunodeficiency virus (HIV)-infected persons. The absolute total lymphocyte count is usually determined in the routine hematology laboratory on a separate sample from the same patient specimen and then combined with percentage results from flow cytometry to obtain the absolute value of the lymphocyte subsets. We have studied analytic variability in the absolute lymphocyte determination and compared it to the variability of the total white blood count (WBC). In a series of 524 specimens, four different automated methods were compared to each other and to the traditional eye count differential. The automated methods were four widely used automated cell counters (Technicon H*1, TOA NE8000, Coulter STKS, and Abbott CD3000). The results indicate that analytic variability in the absolute lymphocyte counts, due, primarily, to method variability, is significant and is larger than the variability typically observed on interlaboratory trials of relative CD4 counts. These method biases cannot easily be reduced by calibration, since the cell classification algorithms are built-in features of the various cell counters. Analytic variability of the absolute lymphocyte counts was found to be 12.4% compared with analytic variability of only 4.9% for total WBC counts on the same samples. Our data suggest that more precise results would be obtained if flow cytometry results expressed each phenotype as a fraction of the leukocytes as well as total lymphocytes. Conversion to absolute values could then be accomplished through determination of the total WBC in the routine hematology laboratory.

Automation↗

The MAXM hematology autoanalyzer. An alternative?

The MAXM is a compact blood count and differential analyzer that appeals to both the space-limited, full-service laboratory and the large outpatient practice. The authors compared the performance of the Coulter MAXM to the larger Coulter STKS. Linearity and precision studies were comparable to the STKS. MAXM leukocyte differentials were closely correlated with STKS and manual readings, being excellent in the neutrophil, lymphocyte, and eosinophil categories but poorer on monocyte counts. Basophil counts did not correlate with STKS or manual counts. Analyzer suspect flagging was similar in both machines, with the MAXM exhibiting slightly reduced sensitivity and greater specificity. MAXM processing of a single sample requires twice the time. The MAXM functions well for a large office practice and as a backup for large medical laboratories but, because of its hands-on requirements and lack of speed, cannot replace the larger, more automated analyzers.

Autoanalysis↗

Flow cytochemical patterns of white blood cells in human hematopoietic malignancies: III. Miscellaneous hemopoietic diseases.

Peripheral blood samples from 48 untreated and 20 treated patients with disease entities that directly or indirectly affect hematopoiesis [dys-myelopoietic syndrome (DMS), refractory anemia with excess blasts (RAEB) or in transformation (RAEBIT), lymphoma, myeloma, acquired immunodeficiency syndrome (AIDS), and solid tumors with uninvolved bone marrow] were measured with the Technicon H-6000 automated hematology analyzer; this instrument provides a differential count on 10(4) white blood cells (WBC) effected by means of flow cytochemistry (peroxidase content) and volume (light scatter) discrimination. Cases with DMS and RAEB showed statistically significantly lower WBC counts than normal, whereas cases with lymphoma showed significantly higher values. No disease entity demonstrated changes in mean peroxidase activity (MPA) that were significantly different from normal, although all disease entities, including cases with solid tumors, showed significantly higher (two to severalfold) proportions of cells with high peroxidase (HPX) content, probably as a reflection of a disturbance of normal hemopoiesis with the emergence of younger granulocytic forms. All cases with paraleukemia (DMS, RAEB, and RAEBIT) showed significantly higher values of large unstained cells (LUC), whereas cases with lymphoma showed significantly lower LUC values. There were no statistically significant differences for any parameter (WBC counts, MPA, HPX, or LUC) among the paraleukemia subtypes. However, based on the displayed trends, a case presenting with dyserythropoiesis, relatively low WBC counts, abnormal HPX values, and LUC below 10% should be suspected for RAEB, whereas the presence of greater than 10% LUC and almost normal or even slightly elevated WBC counts should suggest a more accelerated phase of RAEB. Unless complicated by a leukemic phase, cases of lymphoma or myeloma did not display changes in any of the parameters analyzed by the H-6000. Similarly, patients with AIDS had no overt changes other than a trend to lower WBC counts with occasionally higher or lower absolute lymphocyte counts than normal. The peripheral blood of patients with solid tumors displayed a slight increase in HPX, suggesting an indirect effect on hemopoiesis since careful workup failed to demonstrate bone marrow involvement. Our data demonstrates that an H-6000 analysis has a role in the evaluation and follow-up of all these entities particularly to document leukemic transformation of either lymphoma, myeloma, or RAEB.

Flow Cytometry↗

Flow cytochemical patterns of white blood cells in human haematopoietic malignancies. II. Chronic leukaemias.

Peripheral blood samples from 73 patients with chronic leukaemia were measured with the Technicon H-6000 automated haematology analyser to provide flow cytochemical (peroxidase content) and volume (light scatter) discriminated scattergram patterns. For chronic granulocytic leukaemia (CGL), these patterns were so reproducible and distinct that they allowed an immediate diagnosis even without the benefit of microscopic examination. Relative and absolute basophilia was an invariable feature, and remained detected by the H-6000 even when the patient was in haematologic and cytogenetic remission or progressed into blast crisis (BC). Most patients in BC also demonstrated an inordinately high number of large unstained cells (LUC) and high proportions of 'lymphocytes' (small blasts with no peroxidase content by visual inspection). Thus, for patients with CGL, LUC values above 10%, and/or steady increments in the proportion of 'lymphocytes', merit concern as these changes may herald an accelerated phase of disease. The scattergram pattern of untreated chronic lymphocytic leukaemia (CLL) showed a dense accumulation of data points within the lymphocytic 'box' with a small cluster of granulocytic elements. Most patients also had a frankly abnormal proportion of LUC. Sixteen patients with CLL were compared for ratios of LUC to lymphocytes and stage of disease; patients with the most advanced stage (IV) had the highest, statistically significant values, than the patients with more benign disease. Thus, it is possible that follow up with this instrument of patients with CLL will also allow early detection of an impending prolymphocytoid transformation (accelerated phase) of this disease.

Cell Separation↗

Flow cytochemical patterns of white blood cells in human haematopoietic malignancies. I. Acute leukaemias.

Peripheral blood samples from 118 patients with acute leukaemia (68 untreated; 50 treated) were measured with the Technicon H-6000 automated haematology analyser. This instrument provides, in addition to measurements of the classical haematology parameters (i.e. cell counts, haemoglobin concentration, etc.), a differential count on 10(4) WBC effected by means of flow cytochemistry (peroxidase content) and volume (light scatter) discrimination. Disregarding RBC and platelet counts and their volume distribution profiles, the most important diagnostic parameters for leukaemic disease were the WBC count, the WBC differential count, and the proportions of large unstained cells (LUC) and high peroxidase (HPX) cells obtained by the automated differential count as well as the mean value of the WBC peroxidase content distribution (MPA). Granulocytic leukaemias had lower MPA than normal and lymphocytic leukaemias had MPA values above normal. M1 leukaemias were also characterized by large proportions of LUC and low fractions of HPX, while M2 leukaemias showed low LUC with high HPX. M3 leukaemias had low LUC and very high HPX. M4 leukaemias had large LUC and 'monocytic' components and a modest fraction of HPX. M5 leukaemias had very large numbers of LUC, 'monocytes' and 'lymphocytes' and a normal HPX. For M1 leukaemia, the presence of less than 7% LUC following induction treatment was related to morphological changes of normal cells induced by chemotherapy while LUC above 10% usually indicated unsuccessful induction associated with the presence of residual blasts. If treatment was successful, M2 and M3 leukaemias characteristically decreased their HPX population. All M4 leukaemias studied by us failed to enter remission and continued to display high proportions of HPX and LUC. Similarly, most M5 leukaemias had a poor response to treatment and always showed a very high proportion of LUC. Untreated lymphocytic leukaemias demonstrated high LUC, normal HPX and a high proportion of 'lymphocytes'. Hairy cell leukaemias showed almost equal proportions of 'lymphocytes' and LUC. Successful chemotherapy of all lymphoid leukaemia entities was associated with rapid decreases in LUC, slower decrements of 'lymphocytes' and moderate and transient increments in HPX. Thus, flow cytochemistry can assist not only in the segregation of acute leukaemias along with FAB classification with nonmorphologic criteria, but also in the follow up of patients with these diseases.

Acute Disease↗

Comparison of performance for leukocyte differential counting of the Technicon H6000 system with a manual reference method using the NCCLS standard.

The National Committee for Clinical Laboratory Standards (NCCLS) has published a tentative standard for leukocyte differential counting, by means of which a manual or automated method for leukocyte differential counting can be compared with a manual reference method. The performance of the Technicon H6000 system was evaluated using the standard at Stamford and Overlook Hospitals. A total of 502 patient samples were analyzed: 315 from Overlook and 187 from Stamford. The H6000 system was found to be approximately four times more precise than the 200-cell manual reference method for each cell type. Correlation of the H6000 system with the manual method was good, with correlation coefficients of 0.98 for neutrophils and lymphocytes, 0.96 for eosinophils, 0.72 for monocytes, and 0.5 for basophils. The clinical sensitivity of the H6000 system, measured in terms of false normals and false abnormals, was similar to that of the manual reference method when measured against itself. There were no clinically significant discrepancies in results from the H6000 system, except for possibly one case where a patient was already on antibiotic therapy. The NCCLS standard was found to be a useful but rather complex and involved method for evaluating the performance of the H6000 system, the major problem being the amount of work needed to count manually the number of cells required for the manual reference method.

Diagnostic Errors↗