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Trace gases in breath of healthy volunteers when fasting and after a protein-calorie meal: a preliminary study.

The selected ion flow tube technique was used to quantify in breath the trace gases acetone, ammonia, ethanol, isoprene, and methanol during single exhalations while fasting and in response to feeding. Six normal volunteers were fasted for 12 h, and, after baseline breath samples were obtained, were fed a liquid protein-calorie meal to provide 0.47 g/kg of protein (Fortisip). Further breath samples were obtained at 20, 40, and 60 min, and then hourly for a further 5 h. Breath acetone concentrations fell from a maximum during fasting, reaching their nadir between 4 and 5 h. Breath ammonia concentrations fell immediately to one-half their fasting levels before a steady increase to two or three times baseline values at 5 h. There was a brief increase in breath ethanol concentrations after feeding, reflecting detectable ethanol contamination of the food. Subsequently, breath ethanol levels remained low throughout the experimental protocol. Isoprene concentrations did not change significantly, whereas changes in methanol concentrations reflected those in the ambient air. This preliminary study indicates that the selected ion flow tube technique may be used to detect changes in the trace gases present in breath and define their concentrations in the fasting and replete state. Of particular interest is the biphasic response of the breath ammonia concentration after feeding.

Adult↗

Evaluation of subcutaneous tissue gases and pH during induction of acidosis and alkalosis. An experimental study in pigs.

Peripheral tissue oxygen utilization was studied during hypoxic-induced acidosis and sodium bicarbonate-induced alkalosis in 8 domestic pigs by measurements of subcutaneous oxygen tension (PscO2), carbon dioxide tension (PscCO2) and pH (pH(sc)) in relation to central hemodynamic parameters and oxygenation. Hypoxic-induced acidosis resulted in a decrease in P(sc)O(2) [corrected] and arterial oxygen tension (P(a)O(2)) to one third of baseline values (p < 0.05), an increase in PscCO2 and arterial carbon dioxide tension (PaCO2) from 41 to 55 and 34 to 39 mm Hg, respectively (p < 0.05), and a decrease in pH(sc) from 7.47 to 7.30 (p < 0.05). PscO2 and PaO2 increased during reversal of hypoxia and infusion of bicarbonate (p < 0.05), without reaching baseline values. In parallel PscCO2 decreased and pH(sc) increased but changes lagged behind changes in blood gases. Alkalosis established by further infusion of bicarbonate resulted in a decrease in PaO2 to 62 mm Hg whereas PscO2 remained below baseline values (p < 0.05). Correction of oxygen utilization in the subcutaneous tissue as measured by the markers PscCO2 and pH(sc) is slower than indicated by changes in tissue oxygen tension, blood gases and pH. Overcompensation of acidosis with bicarbonate resulting in alkalosis impairs oxygenation.

Acidosis↗

[Viscosity and density fluctuations of natural respiratory gases and of mixtures of helium, oxygen and nitrogen due to temperature and composition of the gas mixture (author's transl)].

For the estimation and correction of errors in the measurement of the respiratory flow with viscosity-affected respiratory flow receptors the viscosity of natural respiratory gases (N2, O2, CO2, H2O) and of the ternary system helium-oxygen-nitrogen, which is of importance in pulmonary function diagnosis, was determined. Corresponding density values were calculated. Allowance was made for such special features of spirometry as exchange of O2 for CO2 and water vapour saturation at 37 degrees C. The viscosity of the ternary system is shown in a graph. The formulae indicated have been simplified as far as this was compatible with the demands of accuracy. The fluctuations in density and viscosity of natural respiratory gases can be read directly from a table.

Carbon Dioxide↗

Acute pulmonary response of asthmatics to aerosols and gases generated by airbag deployment.

The purpose of this study was to determine whether the aerosols and gases that vent into an automobile's passenger compartment after airbag deployment pose a risk to the asthmatic population. After baseline pulmonary function measurements were taken, 24 diagnosed asthmatic subjects were placed in the rear seat of an automobile, and a driver-passenger airbag system was deployed. Subjects remained in the vehicle with the windows closed and no ventilation for 20 min or until they perceived or demonstrated signs of chest tightness and bronchoconstriction. They then exited the vehicle and were retested immediately after exposure and 2 and 4 h after exposure. Ten of the 24 subjects demonstrated clinically significant bronchoconstrictive episodes, three of which required medical intervention. These three events were quickly reversed by beta-agonist therapy. When eight of the responding subjects were reexposed at later dates to the same supplemental inflatable restraints emissions while wearing a high-efficiency particulate absolute respirator, which prevented inhalation of the particles but allowed passage of the gases, the pulmonary response was essentially eliminated. We conclude that the aerosols generated by deployment of automotive driver-passenger airbag systems can induce significant asthmatic reactions in some individuals.

Adolescent↗

Oxidant gases.

The acute and chronic action of the oxidant gases ozone, nitrogen dioxide and oxygen on the morphological appearance of cells of the alveolar and bronchiolar epithelium is reviewed. Type I cells of the alveolar and ciliated cells of the bronchiolar epithelium appear to be sensitive targets for the oxidant gases. The degree of damage is influenced by age, nutritional status and the development of tolerance.

Animals↗

Indoor exposures to fine aerosols and acid gases.

Indoor exposures to aerosols and gases are associated with both indoor and outdoor air pollution sources. The identification of sources and the assessment of their relative contribution can be a complicated process due to a) the presence of numerous indoor sources, which can vary from building to building; b) the uncertainties associated with the estimation of the impact of outdoor sources on indoor air quality; c) the interactions between pollutants; and d) the importance of reactions between pollutants and indoor surfaces. It is well established that fine particles (diameter less than or equal to 2.5 microns) originating from outdoor sources such as automobiles, oil and coal combustion, incineration, and diverse industrial activities can penetrate into the indoor environment. Indoor/outdoor ratios, usually varying between 0.4 and 0.8, depend on parameters such as particle size and density, air exchange rate, and the surface-to-volume ratio of the indoor environment. Determining fine particle elemental composition makes it possible to identify the contribution of different outdoor sources. This paper focuses on the origin and the concentration of indoor aerosols and acid gases by highlighting the results from two indoor air quality studies.

Aerosols↗

Hydrogen and methane gases are frequently detected in the stomach.

AIM: To investigate the incidence of bacterial overgrowth in the stomach by using a new endoscopic method in which intragastric hydrogen and methane gases are collected and analyzed. METHODS: Studies were performed in 490 consecutive patients undergoing esophagogastroscopy. At endoscopy, we intubated the stomach without inflation by air, and 20 mL of intragastric gas was collected through the biopsy channel using a 30 mL syringe. Intragastric hydrogen and methane concentrations were immediately measured by gaschromatography. H pylori infection was also determined by serology. RESULTS: Most of intragastric hydrogen and methane levels were less than 15 ppm (parts per million). The median hydrogen and methane values (interquartile range) were 3 (1-8) ppm and 2 (1-5) ppm, respectively. The high hydrogen and methane levels for indication of fermentation were decided if the patient had the values more than 90 percentile range in each sample. When a patient had a high level of hydrogen or methane in one or more samples, the patient was considered to have fermentation. The overall incidence of intragastric fermentation was 15.4% (73/473). Intragastric methane levels were higher in the postoperative group than in other groups. None of the mean hydrogen or methane values was related to H pylori infection. CONCLUSION: Hydrogen and methane gases are more frequently detected in the stomach than expected, regardless of the presence of abdominal symptoms. Previous gastric surgery influences on the growth of methane-producing bacteria in the fasting stomach.

Adult↗

Assessment of concentration peaks in setting exposure limits for air contaminants at workplaces, with special emphasis on narcotic and irritative gases and vapors.

In various countries, concentration peaks of gaseous air contamination are assessed by a standard formula. Toxicologic data are not sufficient to warrant occupational short-term exposure limits for the majority of substances. In this article the literature on exposure to concentration peaks is reviewed, and the problem is analyzed from general toxicokinetic and physicochemical points of view. Several ways are suggested to achieve better standards. One straightforward and reasonably simple method is summarized in the following three points, which should be considered in the setting of occupational exposure limits: (i) For substances with fast or moderately fast action, only ceiling limits should be considered; (ii) when structure analogy is justified for narcotic and irritating gases, the correct way is to set the limits at the same thermodynamic activity (relative saturation) of the substances in question and not at the same concentration; (iii) for substances absorbed and eliminated slowly time-weighted exposure limits, combined with rules for excursions, or short-term exposure limits derived from such rules are appropriate, but the possible accumulation of large absolute quantities of the substances should be considered. This point is particularly important when the critical effect is narcosis or irritation, as the thermodynamic equipotency means that the effective concentration of water-soluble gases and vapors is higher than that of substances with low water solubility.

Air Pollutants, Occupational↗

Molecular evolution: first enzymes, gases as substrates and genetic templates.

A fundamental problem in biology is the self-assembly of the first cells capable of growth and division under anoxic conditions on the Earth. Evolution proceeded by self-assembling and self-replicating cells that reproduced their own genetic information and also changed their genetic code over time. Was it also possible that some of the first proteins were catalytic and used gases as substrates and also acted as genetic templates? This paper explores the possibility that primitive protein enzymes used gases as their substrates, and reverse translation may have been a feature in the self-assembly of the first cell(s).

Cells↗

[Bronchial and pulmonary diseases in workers exposed to irritant gases].

Individuals working in atmosphere of relatively medium (up to 3 MACs) levels of irritant gases demonstrate 1.7 times higher incidence of chronic bronchitis vs. general population does. Chronic bronchitis in these cases is often preceded by moderate bronchial obstruction. The contact with irritant gases is accompanied by immunity changes.

Bronchitis↗

Removal of organic contaminants from water or wastewater with liquefied gases.

This study utilized liquefied gases (LG) as extractant to remove various organic contaminants including halogenated hydrocarbons and phenols as well as aromatic compounds from aqueous matrices. Orthogonal experiments were performed to optimize the operating conditions such as temperature, co-solvents and so on. Under favorable conditions, high removal efficiencies can be readily achieved for a great number of representative model organic contaminants, the removal efficiencies for most of the hydrophobic contaminants were greater than 90% in a single extraction stage. Tentative effort was also done for the removal of extracted contaminants from recycled liquefied gases.

Butanes↗

The effects of selected gases on excystation of coccidian oocysts.

The mechanism of CO2 action in changing coccidian oocyst wall permeability was indirectly studied by substituting NO, NO2, N2O, H2S, SO2, CH4, NH3, and 8M urea in place of CO2 in an established excystation procedure. Changes in oocyst wall permeability of Eimeria stiedai, E. bovis, and E. tenella were determined by incubation in test gases and cysteine HCl followed by attempted activation of sporozoites by trypsin and bile and staining of intraoocyst components with methylene blue. The gases CH4, NO2, and N2O were negative for all 3 tests, as were SO2, NH3, and 8M urea which, in addition, were toxic to the oocysts. Both H2S and NO were capable of mimicking the action of CO2 and are related chemically to the reducing agent, and thus tend to underscore its importance in excystation. It now appears that the role of CO2 is that of an allosteric effector enhancing the action of the reducing agent.

Ammonia↗

Therapeutic gases for neonatal and pediatric respiratory care.

Though oxygen is the most frequently administered gas in respiratory care, the use of other specialty gases has become common practice in neonatal and pediatric intensive care and emergency departments across the United States. This report reviews the literature and evidence regarding 4 such specialty gases: heliox (helium-oxygen mixture), nitric oxide, hypoxic gas (ie, < 21% oxygen), and carbon dioxide. Because heliox is less dense than air or nitrogen, it offers less resistance and turbulence as an inhaled gas and therefore decreases the pressure and work of breathing necessary to ventilate the lung, which assists in the management of conditions that involve airway obstruction. Inhaled nitric oxide is a selective pulmonary vasodilator and during the last 2 decades research has focused on its potential value for treating disorders that involve pulmonary vasoconstriction. Hypoxic gas and carbon dioxide are used in the management of infants suffering hypoplastic left heart syndrome (a congenital heart defect), to equilibrate the pulmonary vascular resistance with the systemic vascular resistance, which is necessary to assure adequate oxygenation and tissue perfusion. Balancing the systemic and pulmonary vascular resistances requires increasing pulmonary vascular resistance and decreasing pulmonary blood flow; hypoxic gas does this by maintaining blood oxygen saturation at around 70%, whereas carbon dioxide does so by increasing P(aCO2) to the range of 45-50 mm Hg.

Administration, Inhalation↗

[Babylonian language confusion about the greenhouse potential of various gases].

For the development efficient abatement strategies on the national and international level for slowing down global climate warming, simple relationships between emissions and warming for the different greenhouse gases would be helpful. Attempts to solve this problem are the 'forcing'-concept and the 'global warming potential'-concept. The physical basis and the approximations as well as their application and limits are shown. Because of non-linearities there is no ideal solution to the problem. The exact warming potential of a gas depends on the concentrations of other gases hence is dependent on the assumed emission scenario. It is therefore never fully objective.

Air Pollutants↗

[Pollution of the workplace by anesthetic gases. Causes and prevention].

Waste anesthetic gas concentrations were measured in areas corresponding to the breathing zones of the anesthetists and operating room nurses for personal exposure (n = 27, time-weighted values) and during special work practices (n = 65). Leaks related to anesthetic machines and high-pressure nitrous oxide components were investigated during (n = 60) and after anesthesia (n = 85). The effect of a local scavenging system on occupational exposure during inhalation induction of anesthesia in children was studied (n = 60). Concentrations of nitrous oxide, halothane, isoflurane, and enflurane were determined by using active dosimeters (SKC 222) and different infrared gas-analyzers. Factors that increase waste anesthetic gas concentrations in operating rooms can be divided into several categories, such as low air conditioning systems, anesthetists' work practices, equipment leakage, including leakage from high-pressure nitrous oxide systems, and inadequate scavenging devices. Equipment leakage is almost invariably present in low-pressure components of the anesthesia machine because so many seals and joints are necessary to permit disassembly for cleaning and replacement. Waste anesthetic gases are also distributed in the exhaled air of patients recovering from anesthesia. To restrict the levels, exposure must be as low as can be achieved with reasonable efforts. Thus, the anesthetic equipment should be designed to avoid leakage, leakage tests should be performed before the use of anesthetic machines, and waste anesthetic gases should be scavenged by central as well as by local systems. Regular and periodic use of a trace gas analyzer permits direct observation of gas leakage and enables anesthetists to modify their work technique in order to reduce avoidable leakage.

Air Pollutants, Occupational↗

Pathologic response of the lung to irritant gases.

The pathologic response of the lung to irritant gases ranges from the acute exudative phase through the subacute proliferative phase to the chronic fibrosing phase. These responses are based on damage to the Type I cells, and possibly endothelial cells, and the subsequent proliferative and repair processes in the surviving animals. Responses to high dose exposures appear at the microscopic level as exudation of protein rich fluids into alveoli (alveolar edema) and subsequent death due to anoxia. Physiologically, this could be described as a mismatch of ventilation with perfusion, resulting in impaired gas exchange. Animals surviving this acute exudative phase resolve the alveolar edema to fibrin, and Type II cells become hypertrophic and hyperplastic in the process of replacing the damaged Type I cells. The acute and subacute responses also elicit inflammatory changes in the interstitium of the lung that may progress to fibrosis in the chronic stage of a survivable exposure. Diagnostic cases in livestock involving irritant gases reflect similar toxic injuries to the lung.

Ammonia↗

Effects of hydrostatic pressure and inert gases on twitch tension.

Effect of pressure and inert gases on the twitch tension (Tmax) was measured on electrically stimulated and spontaneously beating rat atria. In stimulated preparations, pressurization to 10 MPa increased Tmax by 20-60% depending on the stimulating frequency (60-240 beats/min). The introduction of 5 MPa N2 or 5 MPa H2 at 10 MPa hydrostatic pressure decreased the Tmax by 17 +/- 6% and 13 +/- 6%, respectively. Gas effect did not depend on the stimulating frequency. Nitrous oxide (0.15 and 0.45 MPa) decreased Tmax both at "surface" and at 10 MPa. Nitrous oxide effect was slightly potentiated at pressure. In spontaneously beating preparations, compression to 10 and 15 MPa decreased beating frequency (BF) by 24 +/- 10% and 31 +/- 8% and increased Tmax by 60 +/- 35% and 105 +/- 33%, respectively. The tension increase is partly due to the direct pressure effect and partly due to the negative force-frequency relation in the rat atria. Introduction of inert gas increased BF and decreased Tmax. The potency of the gases was in the same order for both variables: He less than H2 less than N2.

Animals↗

[Intestinal gases and digestive pathology: clinical syndromes and their treatment].

A number of annoying and frequent disturbances caused by an increase in intestinal meteorism have aroused the interest of students since the last century. Aerophagy, abdominal distension, flatulence represent the commonest aspects of this frequent gastroenterological pathology. The new diagnostic approaches have made it possible to classify the principal mechanisms involved in the production and elimination of intestinal gases. It has thus been possible to study with greater precision the composition of gaseous content and the origin and removal of intestinal gases. It is possible to demonstrate an increase in intestinal gas in various conditions, not only in relation to concomitant organic factors but also following surgery and disease situations triggered by functional or reflex mechanisms. Basic diagnosis is important because if correctly classified these pathological conditions can be resolved with simple therapeutic aids.

Aerophagy↗