Search PubMed⌕ Search

Biomedical subjects

J Seghatchian

Publications and source records attributed to J Seghatchian.

At least 37 records · Page 2Linked to original sources

Monitoring universal leucodepletion performance: the current issues within components production and testing.

The UK NBS completed the introduction of universal leucodepletion in November 1999. This involved the implementation of new methods of production, testing and monitoring, the development of which is still ongoing. Whilst important lessons have been learnt, much remains to be achieved in respect of quality improvement through standardisation of procedures, processes and product modifications to improve safety/efficacy of therapeutic blood components. Since the introduction of universal leucodepletion, many changes in component production and testing have occurred. The primary goal of this report is to review the level of standardisation and harmonisation currently achieved for low leucocyte counting within the NBS and discuss remedial actions undertaken to improve the standard of blood component production and quality monitoring and to highlight some of the related issues which are currently being worked on. The following issues are discussed.

Blood Component Removal↗

Residual red cell and platelet content in WBC-reduced plasma measured by a novel flow cytometric method.

BACKGROUND: The levels of residual red blood cells (RBC) and platelets (PLT) in WBC-reduced plasma are often below the lower detection limit of automated blood cell counters. This study established a novel flow cytometric method for the enumeration of residual RBC and PLT in plasma. Furthermore, their levels in WBC-reduced plasma prepared by using various filters were investigated. MATERIALS AND METHODS: WBC-reduced plasma was prepared from two sources: (i) filtration of buffy-coat reduced plasma using dock-on Baxter, Pall and Maco Pharma plasma filters; (ii) filtered whole blood using integral Asahi RZ2000, Maco Pharma LST1, NPBI, and Pall WBF2 whole blood filters. Residual RBC and PLT counts were assessed by using a TruCount tube (Becton Dickinson) containing a known number of lyophilized fluorescent beads. RBC and PLT were labelled with dual monoclonal antibodies, anti-CD41-R-phycoerythrin and anti-glycophorin A-fluorescein isothiocyanide, and analyzed by flow cytometer. RESULTS: The flow cytometric method used in this method can detect residual RBC, PLT as well as RBC-MV simultaneously. The sensitivity of the assay was 50 x 10(6) cells/l with the coefficient of variations < or = 10%. Baxter and Maco Pharma plasma filters consistently reduced both RBC, RBC-MV and PLT to below 50 x 10(6/)l. Plasma derived from day 1 RZ2000 filtered whole blood contained PLT below 50 x 10(6) cells/l, whereas day 0 NPBI filtered whole blood showed the highest level of residual PLT. CONCLUSION: A sensitive and accurate method for the detection of low levels RBC, RBC-MV, and PLT was established to measure their levels in WBC-reduced plasma. The procedure is simple and practical for routine quality monitoring of plasma, as well as for setting a new specification for WBC-reduced plasma.

Automation↗

Bacterial contamination of blood components.

Despite considerable advances in the safety of blood components, transfusion associated bacterial infection (TABI) remains an unresolved problem. As yet there are no perfect preventative, screening and/or detection methodologies for eliminating contaminated units. Until a practical, rapid, cost-effective and logistically acceptable test becomes available, we should be satisfied with the choice of various limited solutions that at least partially improve the bacterial safety of blood components. It is also necessary to establish standardised guidelines and agreed upon systematic procedures for the recognition and reporting of the laboratory and clinical evaluation of adverse reactions in recipients of contaminated blood components.

Bacteremia↗

What's happening? The quality of methylene blue treated FFP and cryo.

It is currently unclear to what degree methylene blue in combination with removal, of cells from plasma, by filter, can directly influence the loss of active components of plasma and whether the co-precipitation of FVIII/vWf with fibrinogen/fibronectin is affected by combined methylene blue and light treatment (MBLT). These questions are investigated using the Fenwal system. Our results indicate that up to 15% of the FVIII and IX are lost due to exposure of plasma to filters and methylene blue (MB). The illumination leads to a further 10-15% loss of all other major clotting factors. Factor XI appears to be highly sensitive to the MBLT-process, while inhibitors of the coagulation system are less affected. MBLT did not grossly influence the distribution of fVIII/vWf:Ag between cryoprecipitate and cryosupernatant using a paired control/test protocol, although the fVIII/vWf recovery is reduced in MBLT samples. The three commercially available MBLT processes differ in terms of operational aspects. These may have some impact on overall quality/safety and bioequivalency.

Anti-Infective Agents↗

The effect of leucocyte depletion on the quality of fresh-frozen plasma.

The aim of this study was to evaluate the quality of leucodepleted (LD) fresh-frozen plasma (FFP) produced using one of five whole blood filters (Baxter RS2000 & RZ2000, NPBI T2926, Macopharma LST1 and Terumo WBSP) or two plasma filters (Pall LPS1 and Baxter FGR7014). Whole blood or plasma was filtered within 8 h of collection at an ambient temperature. Samples were taken pre- and post filtration for analysis of coagulation factors and complement activation (n = 7--12 for each type of filter). All filtered units (209--286 ml) contained < 5 x 10(6) residual leucocytes and < 30 x 10(9)/l platelets. Statistically significant losses of factors V, VIII, IX, XI and XII and increases in markers of coagulation activation were observed (0--21%), which were dependent on filter type. None of the filters had a significant effect on von Willebrand factor (VWF) multimeric distribution or the activity of VWF and factors II, VII or X. The effect on levels of C3a appeared to be related to the filter surface charge: positively charged filters resulted in C3a generation, whereas negatively charged resulted in C3a removal. None of the observed changes are likely to be clinically significant unless subsequent processing of plasma (such as pathogen inactivation) results in further losses of coagulation factors.

Blood Coagulation Factors↗

Counting of residual WBCs in WBC-reduced blood components: a multicenter evaluation of a microvolume fluorimeter by the United Kingdom National Blood Service.

BACKGROUND: Implementation of universal WBC reduction of blood components means that automated analytical methods may be the only satisfactory way for production laboratories to meet increased testing requirements. STUDY DESIGN AND METHODS: A multicenter study on the performance of a microvolume fluorimeter (IMAGN 2000, Becton Dickinson) was undertaken on 519 RBC, 353 platelet, and 27 fresh plasma units. RESULTS: WBC counts for the RBC samples ranged from 0.02 to 6.94 x 10(6) per unit (mean, 0.57) as determined by FC and from 0.02 to 5.53 x 10(6) per unit (mean, 0.40) as determined by MVF with a mean FC bias of +0.15 x 10(6) WBCs per unit, and discrepancies outside the 95% limits of agreement were mainly associated with higher FC counts. The series of platelet samples showed means of 0.90 (range, 0.06-19.45) and 0.66 (range, 0.01-18.95) x 10(6) WBCs per unit for FC and MVF methods, respectively. FC and MVF results were in good agreement at low counts, although significant discrepancies were noted at higher counts. Overall, for the platelet units, there was a mean FC bias of +0.34 x 10(6) WBCs per unit. The intermethod agreement exceeded 99 percent for both types of blood component when the single (both UK and United States) decision point of 5.0 x 10(6) WBCs per unit was applied. The mean WBC counts for the 27 analyzed fresh plasma units were 61.8, 56.0, and 46.0 per microL by Nageotte hemocytometry, FC, and MVF, respectively. CONCLUSIONS: This evaluation found that the level of intersite consistency for FC was relatively poor compared to that for MVF. The results nevertheless validated the broad equivalence of FC and MVF results for the current Council of Europe and UK/US decision points of <1.0 and <5.0 x 10(6) WBCs per unit.

Blood Component Removal↗

Statistical process monitoring of WBC-reduced blood components assessed by two types of software.

BACKGROUND: Statistical process control is required for monitoring of the WBC-reduction process. This study focused on some factors that may influence the outcomes of statistical process monitoring, such as WBC-reduction technologies, the anticoagulant used, and WBC-counting technologies, by using two types of software. STUDY DESIGN AND METHODS: Data were collected from January to September 1999, before the implementation of universal WBC reduction. The effects of three major factors were investigated: methods of preparation, the addition of EDTA to the sample, and the WBC-counting technologies used (microvolume fluorimetry, flow cytometry, and Nageotte chamber). The WBC-reduction process capability was assessed by two types of software, EZQC (Gambro BCT) and NWA (Northwest Analytical). In addition, the differences between various sets of results were compared by the t test or ANOVA. RESULTS: There was no statistical difference (at the 0.05 level of significance) in WBC content when the three types of platelets in citrate samples were compared with EDTA samples. In general, the Nageotte chamber appeared to count the lowest, and microvolume fluorimetry appeared to count lower than flow cytometry. There were minor but significant methodologic differences between the software packages. However, these differences had negligible effects on the percentage of conforming components at both <1 x 10(6) and <5 x 10(6) WBCs per unit. CONCLUSION: Only the counting technologies were sufficiently different to warrant consideration. This difference may make unacceptable the interchange of results obtained from various counting methods.

Anticoagulants↗

Platelet storage lesion of WBC-reduced, pooled, buffy coat-derived platelet concentrates prepared in three in-process filter/storage bag combinations.

BACKGROUND: With the implementation of universal WBC reduction in the United Kingdom, in-process WBC-reduction filters for pooled buffy coat (BC)-derived platelet concentrates (PCs) are used in routine production. The effects of three filter/storage bag combinations on platelet activation and microvesiculation and on the activation of coagulation were investigated. STUDY DESIGN AND METHODS: Using pooled BCs from the same donors, three filter/storage bag combinations (Autostop BC/CLX, Pall Biomedical; Sepacell PLX5/PL2410, Asahi Medical; and Imugard III-PL 4P/Teruflex, Terumo) were compared with unfiltered controls for their effects on microvesiculation and other storage-induced changes in platelets. Process efficiency was measured by platelet yield and residual WBC count. The storage changes were assessed: pH, activation of platelets measured by CD62P on the platelet surface and in supernatant plasma, quantitation of platelet-derived and RBC-derived microvesicles, cellular injury measured by annexin V in the supernatant plasma, and activation of the coagulation system measured by kallikrein-like and thrombin-like activities, prothrombin fragment 1+2, and thrombin-antithrombin complex. RESULTS: All three filters were comparable in terms of platelet recovery and WBC removal, and none induced immediate platelet activation or microvesiculation. With storage, platelet activation or microvesiculation increased in platelets prepared by all three filters and in unfiltered controls, but these effects were significantly less in the Imugard PCs than in controls. These findings were consistent with those for annexin V in the supernatant plasma, which were lower in Imugard PCs than in other products. Sepacell and Imugard filters reduced RBC-derived microvesicles to 50 percent of control levels, but the Autostop filter had no effect. On storage, levels of RBC-derived microvesicles in filtered products remained static, but levels in the unfiltered control doubled. Kallikrein- and thrombin-like activities were generated only by the Autostop filter without any further increment on storage. CONCLUSION: WBC-reduced pooled BC-PCs prepared by various filter/bag combinations were equivalent on Day 1 but differed during storage in terms of platelet activation or microvesiculation.

Annexin A5↗

Studies on the improvement of leucodepletion performance of the Haemonetics MCS+ for production of leucodepleted platelet concentrate.

With the implementation of universal leucodepletion, an in-line, negatively charged LRF6H leucodepleting filter became an essential part of the Haemonetics MCS+ plateletpheresis system. A larger-scale (968) study using the standard protocol revealed a 2.79% leucodepletion failure rate (standard < 5 x 10(6) leucocytes per adult therapeutic dose). Factors influencing the efficacy of the filter were investigated. The pH of the filtrate was 7.0, the temperature 28 degrees C and filtration rate 80 ml/min. Reduction of the filtration rate to 30 ml/min (784 doses) reduced leucodepletion failure to 0.38%. Measurement of the leucocyte count, pre- and post-filtration of the platelet products, revealed that donations from 1% of donors contained substantially larger numbers of leucocytes in pre-filter samples (300-1500/microl) than in control samples (35-70/microl). This number tends to increase progressively with subsequent donations in these individuals, leading to leucodepletion failure, whilst peripheral leucocyte counts remain normal. The new continuous filtration protocol (version C) using a less impact filter LRF-XL and a lower (7 ml/min) head pressure was also effective but failure still occurred twice on one of the donors who persistently showed high pre-filter count. We conclude that leucodepletion failures in the Haemonetics system are related to both donor leucocyte (i.e., being light and non-adherent) and operational/filter performance.

Blood Donors↗