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Biomedical subjects

Thomas H Müller

Publications and source records attributed to Thomas H Müller.

8 recordsLinked to original sources

Basics of flow cytometry-based sterility testing of platelet concentrates.

BACKGROUND: Flow cytometry (FACS) is a common technique in blood banking. It is used, for example, for the enumeration of residual white blood cells in plasma and in cellular blood products. It was investigated whether it can also be applied for sterility testing of buffy coat-derived platelet concentrates (PCs). STUDY DESIGN AND METHODS: Plasma-reduced PCs were spiked with bacteria and stored at 20 to 24 or 37 degrees C for various times. The following 10 species were used: Bacillus cereus, Enterobacter cloacae, Escherichia coli, Klebsiella pneumoniae, Propionibacterium acnes, Pseudomonas aeruginosa, Staphylococcus aureus, Staphylococcus epidermidis, Serratia marcescens, and Yersinia enterocolitica. Bacterial DNA was stained with thiazole orange. After the platelets were lysed, bacteria were enumerated by FACS. RESULTS: All bacteria species used were detectable by FACS. The lower detection limit was approximately 100 bacteria per microL, that is, 10(5) per mL. In general, the titers measured were 1.2- to 3-fold higher than those determined by colony forming assay. In one case (K. pneumoniae) in which the dot plot of the bacteria cloud overlapped with that of bacteria debris, they were consistently lower. When PC samples were inoculated with approximately 1 colony-forming unit per mL of bacteria and kept at 37 degrees C, most species were detected within 21 hours or less. Exceptions were E. cloacae and P. acnes, which were detected after 24 to 40 and 64 hours, respectively. At 20 to 24 degrees C, the detection times were strongly prolonged. CONCLUSION: Sterility testing of PCs by FACS is a feasible approach. The present data suggest incubating PC samples for 20 to 24 hours at 37 degrees C before testing. For slow-growing bacteria, the incubation period must be prolonged by 1 to 2 days.

Bacteria↗

Sterility testing of platelet concentrates prepared from deliberately infected blood donations.

BACKGROUND: In general the bacterial count in freshly donated blood is low and even lower in the corresponding platelet concentrates (PCs). By use of flow cytometry (FACS) for sterility testing, the reliability of early versus later sampling times was evaluated. STUDY DESIGN AND METHODS: Blood donations were spiked with various numbers of Staphylococcus epidermidis, Staphylococcus aureus, Bacillus cereus, and Klebsiella pneumoniae. The corresponding PCs were prepared by the buffy-coat method and stored at 22 degrees C. A 20-mL sample was collected from each PC directly after preparation and after 8 hours. Samples were stored at 35 degrees C. Sterility testing of both PCs and samples was by FACS analysis at different time points. RESULTS: All stored PCs were found positive by FACS analysis, with detection times ranging between 8 and 24 hours (K. pneumoniae, B. cereus), 8 and 91 hours (S. aureus), and 144 hours (S. epidermidis). In the samples incubated at 35 degrees C, bacteria were detected after 8 to 19 hours (K. pneumoniae, B. cereus), 8 to 67 hours (S. aureus), and 19 to 43 hours (S. epidermidis). Some of the samples did not contain bacteria. CONCLUSION: Detection times for slow-growing bacteria are significantly shortened when PC samples are incubated at 35 degrees C: the numbers of bacteria in freshly prepared PCs may, however, be so low that the samples drawn for sterility testing do not contain a single bacterium. Our results do not support a shortening of the 24-hour or greater sampling time recommended by the manufacturers of established test systems, because also for consistent detection by FACS, bacteria need to grow in the PCs to sufficient numbers.

Bacteria↗

Elimination and multiplication of bacteria during preparation and storage of buffy coat-derived platelet concentrates.

BACKGROUND: The prevalence of bacterial contamination of random-donor platelet concentrates (PCs) is considerably lower than that of blood donations. Which key steps of the preparation procedure contribute to the elimination of bacteria was investigated. STUDY DESIGN AND METHODS: Ten bacteria species were used. Blood donations were spiked with bacteria and stored at 22 degrees C for 8 hours. The buffy coats were kept for 6 hours. PCs were prepared from pools of 4 buffy coats. At each preparation step and during PC storage, bacteria contents were measured. In additional experiments, the titers of spiked blood and buffy coats were determined after storage at 20, 22, or 24 degrees C for 8 and up to 24 hours, respectively. RESULTS: Enterobacter cloacae, Escherichia coli, Pseudomonas aeruginosa, Serratia marcescens, and Yersinia enterocolitica were completely inactivated during storage in blood or buffy coats. Titer reduction was between 3.32 and 4.62 log. Bacillus cereus, Propionibacterium acnes, Staphylococcus aureus, and Staphylococcus epidermidis did not multiply. Compared with their values in spiked blood the titers in the PCs were reduced by 1.7 to 2.8 log. Klebsiella pneumoniae was the only species that grew in blood. With the exception of P. acnes, those species that were not removed by the preparation process multiplied in the PCs. Remarkable donor-to-donor variations of the bactericidal activities of buffy coats were detected when the storage time was prolonged to 24 hours. CONCLUSIONS: Bacteria are significantly eliminated by the preparation procedure for random donor PCs. Also, blood and buffy coats are bactericidal for most species. When buffy-coat storage is prolonged, it cannot, however, be predicted whether specific strains vanish or multiply.

Bacteria↗

Central IT-Structures for Integrated Medical Research and Health Care of Viral Hepatitis--Hep-Net.

Hep-Net is a German medical research and health care network dedicated to viral hepatitis. Its many activities include basic and clinical research, training and public awareness, and rely on modern information technology and the Internet. One major component is a central registry for medical data, serum and tissue samples. In order to build this registry, important legal and technological issues needed to be addressed. Specifically, commercially available electronic data capture systems for clinical trials are generally ill suited for this purpose. The framework of the solution described here may be the basis for similar networks dedicated to specific disease entities or other phenomena.

Biomedical Research↗

West Nile virus in plasma is highly sensitive to methylene blue-light treatment.

BACKGROUND: The epidemic of West Nile virus (WNV) in the US resulted in cases of transfusion-transmitted WNV. Effective pathogen reduction methods could have removed this infectious agent from the blood supply We have evaluated the efficacy of photodynamic treatment of fresh frozen plasma (FFP) with methylene blue (MB), a decontamination method applied in several European countries. STUDY DESIGN AND METHODS: FFP units (300 ml each) were spiked with WNV. MB was added, and the units were illuminated with white or monochromatic yellow light. WNV infectivity was determined by bioassay. WNV-RNA was quantitated by real-time PCR. The inactivation of WNV was investigated under standard and under suboptimal conditions, respectively. In addition, rechallenge experiments with multiple addition of WNV at maximal load (approx. 105 CFU/ml) and repeated illumination without replenishing MB were performed. RESULTS: Complete inactivation of WNV was achieved by MB (0.8-1 mmol/l) and illumination with white light (30,000-45,000 Lux) within 2 min. White yellow light 20-40 J/cm(2) (2.5-5 min) were sufficient for inactivation by 5.75 log10-steps. The rechallenge experiments revealed the substantial reserve capacity of the procedure to inactivate WNV. Quantitative PCR indicated that the viral RNA was rapidly destroyed. CONCLUSION: All experimental data demonstrate the enormous potency of phototreatment with MB to inactivate WNV in plasma.

Humans↗

[Late infectious complications after high-dose therapy and autologous blood stem cell transplantation].

AIM: Only a few data on frequency and character of late infectious complications after high-dose therapy (HDT) and autologous blood stem cell transplantation (ASCT) have been published. This prospective study was carried out to identify potential predictive factors for late infections (occurring after discharge following HDT) and to clarify the usefulness of prophylactic measures. PATIENTS AND METHODS: Clinical data of 192 consecutive patients treated with HDT and ASCT in a single hospital were analyzed on late infectious complications. After discharge following HDT, the 166 evaluable patients (84 with hematologic malignancies, 82 with solid tumors) had been examined and interviewed on infections every 4-12 weeks after ASCT. For Pneumocystis carinii prophylaxis, inhalation with pentamidine or oral cotrimoxazole was used for 3-4 months following ASCT. RESULTS: In the first 6 months following ASCT (after discharge) we saw on average one infectious episode per patient (median, range 0-6), usually light infections (mostly banal upper airway infections). 17 patients had to be treated in hospital for infectious (15 of whom with hematologic malignancies), three of whom (only with hematologic malignancies) died in spite of intensive care as a result of pneumonias due to opportunistic causative agents (mainly Pneumocystis carinii [PcP]). In the second half of the year after ASCT, five patients (with hematologic malignancies) had to be hospitalized due to infections. No further infection-related death occurred. Early documented infections (pneumonia, bacteremia or Clostridium difficile colitis) were associated with an increased risk for late serious infections. Zoster occurred in 18% of patients within 12 months, more frequently after increased pretreatment (25% vs. 11% after less pretreatment), most frequently in patients with relapsed lymphomas (32%). CONCLUSIONS: Significant late infectious complications after ASCT are uncommon. Patients with hematologic malignancies have a significantly increased risk of more serious infections and should be observed carefully. For risk patients with hematologic malignancies and possibly solid tumors, a strict PcP prophylaxis is required. Patients with relapsed lymphomas could possibly be treated preventively against zoster with low-dose aciclovir to reduce the extent of zoster disease. Each patient should be informed carefully that early signs of zoster require an effective zoster treatment as soon as possible.

Adolescent↗

A web-based central diagnostic data repository.

A central repository for diagnostic information about individual patients was created as a service to diagnostic laboratories participating in the Compentence Network for Acute and Chronic Leukemias in order to support health care delivery to patients suffering from leukemia. During the diagnostic phase several specialised laboratories perform different assays on samples from the same patient. The use of these assays in the diagnostic process and during the treatment phase may be improved in terms of both rapid delivery and cost if any one laboratory is aware of preliminary or final results from the assay carried out in other laboratories. In order to support a more efficient communication of these results, a central diagnostic data repository (CDDR) was created and web-based user interface was developed. Currently, the CDDR maintains documents in the form of portable document format (PDF) files. Several other formats are accepted and converted automatically upon entry. Patient identification is accomplished by pseudonym rather than proper name and the data is held on the CDDR for a limited time interval to accommodate the stringent privacy regulations in Germany. The principle operation of a CDDR may also be applied to the diagnostic or therapeutic process of other diseases.

Acute Disease↗

A web-based randomisation service for clinical studies.

The Competence Network for Acute and Chronic Leukemias is one of several networks of competence, each directed at a specific disease. Within this context, a web-based randomisation service was designed and implemented as a service to participating study groups. It provides centralised randomisation for several study centres that is independent of each of the centres. In order to minimise difficulties in using this service arising from the fact that it is only needed fairly infrequently, the user interface was kept as simple as possible. The major advantages of a web-based service lie in its "unpredictability" and its continuous availability at all times without the need for around-the-clock personnel. The experience gained with this service in the context of the Competence Network with a relatively small number of actual users may provide the basis for a more widespread application.

Germany↗