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CDI Blood Parameter Monitoring System 500--a new tool for the clinical perfusionist.

Sarns/3M Health Care has recently introduced the CDI 500 Blood Parameter Monitoring System. In addition to parameters previously available, this system now offers continuous monitoring of the patient's oxygen consumption (VO2/min) and potassium concentration ([K+]). The purpose of this study was: (1) to compare the [K+] from the CDI 500 with the [K+] derived from our hospital's laboratory; and (2) to compare the VO2/min from the CDI 500 with the results obtained utilizing the "gold-standard" Fick equation. The mean absolute difference in [K+] was 0.10 mEq/L with a mean percentage error of only 3.93%. The mean absolute difference in VO2/min was 18.78 ml O2/min, with a mean percentage error of 11.63%. We concluded that the [K+] correlated well and that 9.13% of the oxygen consumption percentage error was attributable to the exclusion of dissolved oxygen in the calculation used by the CDI 500, with the remaining 2.5% attributable to differences in technology. We recommended that future upgrades to the CDI 500 should include dissolved O2 when measuring oxygen consumption and consideration should be given to increasing the operating range for [K+].

Blood Gas Analysis↗

Environmental radiation real-time monitoring system permanently installed near Qinshan Nuclear Power Plant.

An environmental radiation real-time monitoring system with high pressure ionization chamber was developed. It has been installed permanently in the vicinity of Qinshan Nuclear Power Plant, the first built in mainland China. The system consists of four basic components: environmental radiation monitors; data communication network; a data processing center; and a remote terminal computer situated in Hangzhou. It has provided five million readings of environmental radiation levels as of January 1993.

Air Pollutants, Radioactive↗

Improved metabolic control in diabetic adolescents using the continuous glucose monitoring system (CGMS).

OBJECTIVE: To determine the utility of the continuous glucose monitoring system (CGMS) as an outpatient procedure to improve management of diabetes in adolescents. RESEARCH DESIGN AND METHODS: Twelve adolescents (mean age: 16.2 +/- 3 years) with poorly controlled type 1 diabetes (HbA(1c) > 8%) were included in this trial. Mean HbA(1c) during the previous year was 10.1 +/- 1.2%. Insulin treatment consisted of 2 or 3 daily injections in 10 cases and CSII in 2. At the beginning of the study, HbA(1c) was determined and low blood glucose index (LBGI) was calculated. Continuous glucose monitoring was performed for three days. After downloading and analyzing data, results were discussed with the patient and insulin treatment was adjusted. Two months later testing was repeated and all parameters were reassessed. RESULTS: Initial CGMS profiles demonstrated glycemic excursions unrecognized by capillary measurements in all twelve patients. Glycemia before and after meals varied from<60 mg/dL to > 200 mg/dL in 2 patients (2 episodes). Postprandial hyperglycemia exceeded 200 mg/dL in 10 patients (24 episodes). Prolonged overnight hyperglycemia was observed in 5 patients (7 episodes), dawn phenomenon in 4 patients (6 episodes) and nighttime hypoglycemia in 4 patients (4 episodes). A day-to-day reproducibility of glycemic profiles was observed in 8 patients. Then insulin treatment was adjusted according to CGMS data. Changes involved dose levels in 3 patients, insulin type in 7, number of injections, i.e. 3 instead of 2, in 5 or change from insulin injection to CSII in 1. Reassessment two months later demonstrated a significant reduction of glycemic excursions in 8 patients. HbA(1c) (m +/- SD) decreased from 10.3 +/- 2.1% to 8.75 +/- 1.06% (p<0.05). LBGI increased from 1.7 +/- 0.9 to 2.4 +/- 1.4 but the difference was not significant. CONCLUSIONS: Use of CGMS in diabetic adolescent outpatients achieved a significant improvement in metabolic control not only by providing accurate data for adjustment of insulin treatment but also by promoting patient communication and motivation.

Adolescent↗

Unconstrained cardiorespiratory and body movement monitoring system for home care.

An unconstrained respiratory rate (RR) and heart rate (HR) monitoring system to be used during sleeping is proposed. The system consisted of eight polyvinylidene fluoride cable sensors, charge amplifiers and measuring software, together with an analogue-to-digital converter unit. The cable sensors were horizontally embedded into a textile sheet on a bed surface covering the upper half of the body. The digital infinite impulse response filters were constructed to extract cardiorespiratory signals from displacement of the sensors. The system software automatically searched the optimum sensor(s) based on the power of the respective filter outputs. Then, the system obtained the 5 s average HR and 15 s average RR by measuring the intervals between the peaks of the respective autocorrelation functions of the filtered output. If the subject changed his posture, the system captured the image of the body position as a time stamp using a CCD camera. To show the validity of this method, the HR and RR obtained by this monitor were compared with those simultaneously measured using respiratory flow and an electrocardiogram. The results showed that the mean frame-by-frame difference ranged from -1.2 to 0.2 beats min(-1) for the HR and, for RR, ranged from -0.8 to 1.4 breath min(-1) during the short-term recordings. Similar differences were obtained during the first 2 h of overnight recordings. The proposed system is feasible for the combined long-term monitoring of a person's RR and HR with sleep posture changes and may be helpful for practical use in the home.

Adult↗

National Nutrition Monitoring System: implications for public health policy at FDA.

The National Nutrition Monitoring System (NNMS) plays an essential role in major nutrition activities of the Food and Drug Administration (FDA). In relation to the current sodium initiatives, it permits the measurement over time of changes in the sodium content of the food supply and in typical diets; in sodium labeling in the marketplace; in public awareness, concerns, and practices; and in the prevalence of hypertension and related factors, such as obesity. The FDA is responsible for U.S. fortification policy and its regulation. Currently, fortification policies and practices are being reexamined, largely on the basis of analysis and interpretation of data from the 1976-1980 second National Health and Nutrition Examination Survey, which is a core component of the NNMS. FDA studies that are components of the NNMS, such as a recent survey of dietary supplement consumption, provide comprehensive data in specialized areas. Department-wide nutrition programs are also heavily dependent upon the NNMS for monitoring capabilities. Two current activities that will rely on NNMS data are the monitoring of progress in the Nutrition Objectives for the Nation for the 1990s and the development of departmental policy regarding diet, nutrition, and degenerative diseases.

Adolescent↗

Network-based real-time radiation monitoring system in Synchrotron Radiation Research Center.

The real-time radiation monitoring system (RMS) in the Synchrotron Radiation Research Center (SRRC) has been upgraded significantly during the past years. The new framework of the RMS is built on the popular network technology, including Ethernet hardware connections and Web-based software interfaces. It features virtually no distance limitations, flexible and scalable equipment connections, faster response time, remote diagnosis, easy maintenance, as well as many graphic user interface software tools. This paper briefly describes the radiation environment in SRRC and presents the system configuration, basic functions, and some operational results of this real-time RMS. Besides the control of radiation exposures, it has been demonstrated that a variety of valuable information or correlations could be extracted from the measured radiation levels delivered by the RMS, including the changes of operating conditions, beam loss pattern, radiation skyshine, and so on. The real-time RMS can be conveniently accessed either using the dedicated client program or World Wide Web interface. The address of the Web site is http:// www-rms.srrc.gov.tw.

Computer Communication Networks↗

A multi-channel continuous toxicity monitoring system using recombinant bioluminescent bacteria for classification of toxicity.

A multi-channel system for continuous toxicity monitoring and classification of toxicity was developed based upon a previously developed two-stage minibioreactor system. The multi-channel system consists of a series of a two-stage minibioreactor systems connected by a fiber optic probe to a luminometer. Each channel was used for cultivating different recombinant bacterial strains, such as TV1061 (grpE::luxCDABE), DPD2794 (recA::luxCDABE), and DPD2540 (fabA::luxCDABE), which are induced by protein-, DNA-, and cell membrane damaging-agents, respectively. GC2 (lac::luxCDABE) is a bacterium expressing bioluminescence constitutively, which shows a reduction in its light level as cellular toxicity increases. Artificial wastewater samples were made by combining toxic chemicals, including Mitomycin C (a representative DNA damaging agent), phenol (a representative protein damaging agent), and cerulenin (a representative cell membrane damaging agent), and injecting this sample into each channel in order to simulate the detection of toxicity for mixed chemical samples. Each channel showed a specific bioluminescent response due to the toxic chemicals contained in the sample wastewater, while GC2 showed a general response to cellular toxicity. By using this multi-channel continuous toxicity monitoring system, classification of toxicity in field samples was found to be possible.

Bioreactors↗

Multicenter evaluation of a new capillary blood prothrombin time monitoring system.

The analytical performance of the new capillary blood prothrombin time monitoring system CoaguChek was examined in a multicenter evaluation at six hospitals. The coefficients of variation of the INR obtained in the CoaguChek imprecision study were approximately 7% in the control plasma provided (within-run and day-to-day) and 4% in blood (within-run). The prothrombin times were ascertained in capillary blood (CoaguChek PT Test) and citrated venous plasma (Hepato Quick, Thromborel S) from 359 patients under oral anticoagulation therapy with phenprocoumon, acenocoumarin or warfarin. The agreement with the test results obtained with the comparison methods was acceptable versus Hepato Quick assay (n = 359; y = 1.23 x -0.49, r = 0.888) and good versus Thromborel S method (n = 359; y = 1.09 x -0.28, r = 0.895). A simplified assessment of all test results (n = 795) in a nine-field comparison table showed a concordance with the comparison methods of more than 80 (Hepato Quick: 81%, Thromborel S: 83%). The concordance between Hepato-Quick and Thromborel S was slightly higher (88%). Its good analytical performance and convenient handling recommend the CoaguChek system as a suitable system for decentralized prothrombin time testing.

Blood Chemical Analysis↗

Cut costly patient transfers, delays with networked monitoring systems.

Reengineering patient care as needs arise is becoming easier thanks to wireless monitoring systems. Find out how several health care facilities have put an end to bottlenecks in the ED and ICU and made more efficient use of patient beds--and reaped financial savings as a result.

Computer Systems↗

[Problems of designing cardiac monitoring systems].

The paper considers one of the ways of solving the problems arising from the design of up-to-date monitoring systems. It describes a Karmon 01M multifunctional fixed monitor manufactured by SEM (Systems of Electronics and Medicine), which may include as many as three randomly chosen modules and replace software for new versions.

Computers↗

Light-weight and low-cost infrared CCD eye monitoring system designed for routine vestibular clinic use.

A simple and low-cost eye monitoring system with infrared illumination was developed. This system consists of a small board mounted with an infrared sensitive CCD camera and its control unit and a swimming goggle; it is light-weight and visualizes eye movements by connecting the output lines of the board to the video input on a monitor. We have found the present system useful in the routine vestibular clinic practice.

Costs and Cost Analysis↗

A specialised computer-based monitoring system for intraoperative electrocorticography.

We have developed a computer-based intraoperative ECoG monitoring system which offers the flexibility of digital recording and allows detailed review of recorded events without interrupting monitoring. In addition, a diagram showing the electrode positions on the brain can be generated on computer screen and subsequently displayed during monitoring--this allows automatic indication of the electrode positions corresponding to specific ECoG channels and can provide the surgeon with a clear visual impression of the area of spiking.

Cerebral Cortex↗

Validation of a digitized Holter monitoring system by comparison with the Marquette case system.

Detection of silent myocardial ischaemia must be accurate and reliable. With the new digitized Holter monitoring systems these qualities are feasible. We tested one of these devices (Monitor One, Q Med) by comparison with a digitized and averaged ECG signal provided by the Marquette Case system during exercise tests in 30 patients with angiographically documented coronary artery disease. Detection and quantitation of ST segment depression episodes by the Holter system were excellent. Furthermore, indirect ECG criteria of ischaemia as R-wave amplitude variations were easily recognized. Thus digital monitors may be used to detect ischaemic events in prospective and multicentre studies for the diagnosis and prognosis of silent myocardial ischaemia.

Coronary Disease↗

Continuous glucose monitoring system--useful but expensive tool in management of diabetes.

Until recently, self monitoring of blood glucose (SMBG) was the only tool used for monitoring blood glucose levels. The limitation of SMBG is that it cannot continuously monitor blood glucose levels. In this paper, we present our initial experience with the continuous glucose monitoring system (CGMS) in three different clinical situations. With reduction in cost and further refinement in technology, CGMS could become a valuable tool for clinical practice and research studies in diabetes.

Blood Glucose↗

Development of a non-viable particulate monitoring system for drugs manufactured in an aseptic environment.

Automated non-viable particulate monitoring systems can significantly reduce sampling costs while providing increased assurance that pharmaceutical products are free of microbial contamination. The need for consistently reliable data in the batch release process requires incorporating adequate fail-safes to detect operator error and hardware malfunction. Use of the "Life Cycle Approach" in system design and validation is also needed to provide assurance that the system will continue to meet its specifications. The author has collaborated with an instrument vendor to design, install and validate a data gathering and reporting system. Test function design is also discussed.

Asepsis↗

[The development of a new central monitoring system for the operation room].

We developed a practically new central patient monitoring system for the operating room based on a system which had been developed in 1982. Since we introduced this system on May 19, 1992, we have utilized the system in more than 2,000 anesthesia cases. This system has been operating smoothly and accepted well by not only anesthesiologists but also surgeons and nurses. This system is easy to operate, and works automatically, contributing to the early detection of abnormalities in patient's condition. By introducing this system, the anesthesiologists have succeeded in controlling the patient during the operation more elaborately and effectively than before. Automated anesthesia recorder has reduced anesthesiologist's burden of the manual recording.

Anesthesia↗

Multisite evaluation of a continuous intraarterial blood gas monitoring system.

BACKGROUND: We compared the performance of a new, continuous intraarterial blood gas (CIABG) monitor with arterial values obtained periodically and analyzed by conventional equipment. METHODS: A CIABG monitoring system consisting of a sterile, disposable, fiberoptic sensor and a microprocessor-controlled monitor with a self-contained calibration unit and detachable display panel was used. The sensor was inserted through a 20-G radial artery cannula. Light was transmitted from the monitor to the sensor tip where it reacted with fluorescent dyes sensitive to oxygen or hydrogen ions (analytes). The change in the intensity of the photoluminescent radiation caused by the analytes was measured every 20 s and derived blood gas values were displayed. Twenty-nine sensors were evaluated in 29 surgical or intensive care unit patients at one of three institutions (Stanford University Hospital, Evanston Memorial Hospital, and the Palo Alto Veterans Administration Hospital). The duration of study averaged 6 h (5-8 h) in the operating room, and 46 h (7-121 h) in the intensive care unit. A total of 552 values were compared with those obtained at regular intervals and analyzed in the hospital blood gas laboratory. Average bias (mean difference between lab value and CIABG), precision (SD of difference), and drift (change in the bias with time were determined. RESULTS: At arterial oxygen tension (PO2) values of 32-528 mmHg, the average bias was -1% meaning that the average CIABG monitor values were 1% lower than those obtained by conventional equipment. The precision was 15%. At arterial PO2 values of 32-99 mmHg, average bias and precision were -0.3 +/- 8.9 mmHg. At arterial carbon dioxide tension (PCO2) values of 24-54 mmHg, average bias and precision were 1.3 +/- 3.3 mmHg, and at pHa values of 7.23-7.57, average bias and precision were 0.01 +/- 0.04. Observed drift per day was -1.2% for arterial PO2, 0.3 mmHg for arterial PCO2, and 0.01 for pH. Bias and precision for samples compared in two pairs of like-model in vitro blood gas analyzers were 0.4 +/- 4.6% for arterial PO2 over the full range, and 0.4 +/- 3.7 mmHg for values less than 100 mmHg, -0.5 +/- 1.8 mmHg for arterial PCO2, and 0.01 +/- 0.01 for pHa. Although the occasional marked discrepancies between one or more CIABG and in vitro values could sometimes be corrected by flushing the arterial catheter or repositioning the sensor, usually we could not determine the cause of the discrepancy or which values were the more accurate. CONCLUSIONS: Over the range of values and under the clinical conditions studied, CIABG monitoring provides immediate blood gas results and trend information with sufficient agreement with in vitro results to be reliable for decision making in most clinical circumstances. Generally, the differences in the values between the two methods of analysis were the result of the combination of the inherent errors of each method. Additional studies need to be undertaken to evaluate the performance of the CIABG monitor across wider ranges of blood gas values, especially for arterial PO2 values less than 60 mmHg and arterial PCO2 values greater than 50 mmHg.

Adult↗

The Continuous Glucose Monitoring System during pregnancy of women with type 1 diabetes mellitus: accuracy assessment.

BACKGROUND: The Continuous Glucose Monitoring System (CGMS, Medtronic MiniMed, Northridge, CA) allows close monitoring of glucose patterns and might be helpful in explaining the persistence of high complication rates in pregnancies of women with type 1 diabetes. It was the aim of this study to determine whether the CGMS accurately reflects glucose levels in pregnant women with type 1 diabetes mellitus. METHODS: Fifteen pregnant women with type 1 diabetes used the CGMS and were asked to determine at least seven fingerstick blood glucose levels each day, of which four were used for calibration. The patients were asked to keep a diary of the non-calibration blood glucose values. The accuracy of the CGMS was studied by comparing the non-calibration blood glucose values with simultaneously measured sensor glucose values using the Pearson correlation coefficient, the mean of absolute differences, and the Clarke error grid analysis. RESULTS: A total of 239 non-calibration blood glucose values were analyzed. The correlation coefficient between non-calibration blood glucose and sensor glucose value was 0.94 (P < 0.001). The mean of the absolute difference was 0.74 mmol/L. Of the non-calibration data 93.8% fell in the clinically acceptable zone of the Clarke error grid analysis. CONCLUSIONS: The CGMS is an accurate tool for additional glucose monitoring in pregnant women with type 1 diabetes mellitus.

Blood Glucose↗