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Biomedical subjects

R Zander

Publications and source records attributed to R Zander.

At least 37 records · Page 2Linked to original sources

Physiological HEPES buffer proposed as a calibrator for pH measurement in human blood.

N-(2-hydroxyethyl)-piperazine-N'-2-ethanesulfonic acid, known as HEPES buffer, with pK in the physiological range was studied for use as an alternative to conventional phosphate buffer for the calibration of pH in modern clinical analyzers. In different series of aqueous equimolar HEPES buffer, pH was measured at 37 degrees C with a capillary glass electrode standardized previously using phosphate, and variations due to changes in total HEPES buffer concentration (0.025 to 0.320 mol/l), and NaCl (0 to 0.250 mol/l) were monitored. For 0.05 equimolar HEPES buffer without NaCl, the pH of 7.362+/-0.003 (n = 15) obtained coincided well with the reference pH (7.364) from the National Institute of Standards and Technology (NIST). In particular, in the preferred 0.05 equimolar HEPES buffer/0.110 mol/l NaCl, which is isotonic to human plasma (0.160 mol/l), and termed physiological HEPES buffer (PHB), the pH of 7.346+/-0.003 (n = 84) can be related to the calculated corresponding reference pH from NIST without liquid junction (7.374), and is also compatible with the pH measured in normal arterial blood, pH = 7.403+/-0.003 (n = 20). Hence, in the two-point calibration of clinical analyzers, PHB, which is defined operationally with respect to the glass electrode and to phosphate buffer, may be useful as a calibrator in the range of buffer adjustment control to meet the correct values for pH when measuring in blood. Whereas Na-HEPES salt is hygroscopic and does not meet the declared purity grade (> 99%), pure HEPES acid is non-hygroscopic and conforms to the manufacturer's purity grade (> or = 99%). Therefore, for easy preparation of PHB, HEPES acid is the preferred starting material.

Blood Chemical Analysis↗

Solubility of NH3 and apparent pK of NH4+ in human plasma, isotonic salt solutions and water at 37 degrees C.

The solubility of ammonia, alphaNH3 (mM/mmHg), was determined at 37 degrees C and low ammonia partial pressure (0.02-1 mmHg) in pure water (n =24) as 46.70+/-0.40; aqueous isotonic salt solutions (n = 7) as 46.8+/-0.81; and human plasma (n = 5) as 42.0+/-0.66. The last figure increases to 45.3+/-0.63 if expressed in molal units (mmol/kg plasma water x mmHg) instead of molarity with respect to the water content of the plasma (mean from four healthy and fasting donors: 0.908+0.005 kg H2O/kg plasma; mean density at 37 degrees C: 1.020+/-0.002 kg/l). In pure water, the solubility value is the mean of three different methods: (a) extrapolation of the salting-out effect of ammonia in aqueous NaOH to zero concentration; (b) slope of Henry-Dalton's law and (c) directly measured in pure water and 0.001 M aqueous NaOH. Based on the Henderson-Hasselbalch equation for the system NH4/NH3 in isotonic salt solutions and human plasma, both constants, apparent pK and solubility, can be derived from total ammonia concentration and pH at equilibrium with defined ammonia gas phase, if additionally the concentration of NH4 or NH3 is known. This was verified, in the first case, by determining the concentration of NH4+ by the experimental conditions, and in the second, by two measurements of total ammonia concentration at two different pH values. Total ammonia concentration was measured by a specific enzymatic standard test and pH with the glass electrode. The mean apparent pK was 8.968+/-0.013 in isotonic salt solutions (n = 7), and in human plasma (n = 10) it was 9.014+/-0.033.

Ammonia↗

Mathematical model for the calculation of oxygen concentrations in a closed circuit oxygen rebreathing apparatus.

BACKGROUND: Closed circuit oxygen rebreathing diving apparatus are used by armed forces in special tasks because of their advantages of long endurance, low noise and minimal gas escape. There is little knowledge about the administered oxygen concentrations in these systems. Closed circuit oxygen rebreathing apparatus are also used as a first aid device for the treatment of severe disorders. Because of similar constructive components, these rebreathing apparatus are comparable to the Dräger LAR V model. HYPOTHESIS: This study was conducted to measure the oxygen concentrations in the LAR V and estimate the correlation between oxygen concentration and pre-breathing purges. METHOD: Subjects were 12 males who performed the pre-breathing procedure. The oxygen concentrations in the breathing loop were measured after each purge. RESULTS: The oxygen concentrations depended on the volume of the apparatus dead space, the total capacity of the divers breathing system respective to the volume of the breathing purges and the number of pre-breathing purges. The maximum oxygen concentration was reached after eight purges (O2 = 85%). An equation to estimate the oxygen concentration inside the LAR V and first aid rebreather was derived. CONCLUSIONS: The results indicated that the present purging procedure (three purges) before diving is normally not sufficient to remove the nitrogen totally from the deadspace of the LAR V, the divers airways and lungs. Only a small modification (six purges) is necessary to improve the safety of the diver in case of a diving apparatus malfunction during the mission profile.

Administration, Inhalation↗