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At least 19 recordsLinked to original sources

Simultaneous determination of ethylene glycol, propylene glycol, 1,3-butylene glycol and 2,3-butylene glycol in human serum and urine by wide-bore column gas chromatography.

A method has been developed for the separation and measurement of ethylene glycol and three other glycols (propylene glycol, 1,3-butylene glycol and 2,3-butylene glycol) in biological samples by wide-bore column gas chromatography with a flame ionization detector. The method used 1,3-propylene glycol (1,3-propanediol) as an internal standard. The method was linear at least from 2 to 1000 micrograms/ml, with a detection limit of 1 microgram/ml. Analytical recoveries were 89-98% for the different concentrations. Precision studies showed coefficients of variation of 1.5-7.7% for the different concentrations. The assay was applied to the analysis of biological samples from two patients who had ingested ethylene glycol and/or other glycols in a suicide attempt.

Adult↗

Taste responses of dogs to ethylene glycol, propylene glycol, and ethylene glycol-based antifreeze.

Although it is widely believed that ethylene glycol-based antifreeze (AF) is an attractive tastant to dogs and other animals, empirical data on this point are not available. In experiment 1, we examined the propensity of 178 adult mixed-breed dogs to approach, sniff, and lick a concentration of AF commonly used in automotive cooling systems (50%). Despite the fact that most of the dogs approached and sniffed the AF in these 5-minute tests, only 9% initiated lick responses and most of these were brief and not followed by additional licking. In experiment 2, the lick responses of five gastric-cannulated dogs to aqueous solutions of 20% sucrose, 50% ethylene glycol, 50% propylene glycol, water, and 50% AF were examined in 14-minute tests before and after periods of food and water deprivation. Under the latter conditions, 2 of the 5 dogs drank amounts of ethylene glycol that would have been lethal to uncannulated dogs. None of the five dogs drank potentially lethal amounts of AF. The preference order for these tastants was sucrose greater than water greater than ethylene glycol greater than AF = propylene glycol. Although these findings question the general belief that AF is highly palatable to most dogs, they do imply that large individual differences in responsiveness exist and that AF ingestion is likely influenced by motivational state. Furthermore, they suggest the possibility that unpleasant-tasting additives could be successfully developed to eliminate the ingestion of AF, because the initial attractiveness of AF is relatively low. Such additives would have to be stable in vehicular cooling systems and not adversely affect the functional aspects of AF performance.

Animals↗

[Heat resistance of "Bacillus subtilis" and "Bacillus stearothermophilus" spores in ethylene glycol, propylene glycol and butylene glycol solutions. Criticism of the use of thermodynamic parameters (author's transl)].

Increasing concentrations of ethylene glycol (EG), 1,2-propylene glycol (PG) or 2,3-butylene glycol (BG) lower the heat resistance of B. subtilis SJ2 and B. stearothermophilus 1518 spores, and there is a linear relationship between logarithm of decimal reduction time (D) and glycol concentration. D120 degreesc values of B. subtilis spores in 0.02M, pH 7.0 phosphate buffer containing 20 per cent (w/w) EG, PG and BG are respectively 1, 0.7 and 1.1 min compared to 1.5 min in buffer alone. Corresponding values for B. stearothermophilus spores are 2, 2.4 and 3 min compared to 3.2 min. The type of glycol has little effect upon temperature coefficient z for destruction of the B. subtilis spores (average 6.9 degrees C). On the contrary, in the case of B. stearothermophilus, z increases when the number of carbons increases in the glycol molecule (from 7 to 15 degrees). The thermodynamic parameters which characterize the activation of the spore destruction reaction cannot lead to a general conclusion about a possible mechanism of destruction in the presence of chemical compounds belonging to an homologous series: the two behave diversely, and there is no "isokinetic temperature".

Bacillus subtilis↗

Final report on the safety assessment of PEG-25 propylene glycol stearate, PEG-75 propylene glycol stearate, PEG-120 propylene glycol stearate, PEG-10 propylene glycol, PEG-8 propylene glycol cocoate, and PEG-55 propylene glycol oleate.

The ingredients considered in this safety assessment are polyethylene glycol ethers of either propylene glycol itself, propylene glycol stearate, propylene glycol oleate, or propylene glycol cocoate. They function in cosmetic formulations as surfactant--cleansing agents; surfactant-solubilizing agents; surfactant--emulsifying agents; skin conditioning agents--humectant; skin-conditioning agents--emollient; and solvents. Those in current use are used in only a small number of cosmetic formulations. Some are not currently used. Polyethylene Glycol (PEG) Propylene Glycol Cocoates and PEG Propylene Glycol Oleates are produced by the esterification of polyoxyalkyl alcohols with lauric acid and oleic acid, respectively. Although there is no information available on the method of manufacture of the other polymers, information was available describing impurities, including ethylene oxide (maximum 1 ppm), 1,4-dioxane (maximum 5 ppm), polycyclic aromatic compounds (maximum 1 ppm), and heavy metals-lead, iron, cobalt, nickel, cadmium, and arsenic included (maximum 10 ppm combined). In an acute oral toxicity study, PEG-25 Propylene Glycol Stearate was not toxic. An antiperspirant product containing 2.0% PEG-25 Propylene Glycol Stearate was nonirritating to mildly irritating to the eyes of rabbits. This product was also practically nonirritating to the skin of rabbits in single-insult occlusive patch tests. In a guinea pig sensitization test, PEG-25 Propylene Glycol Stearate was classified as nonallergenic at challenge concentrations of 25% and 50% in petrolatum. PEG-25 Propylene Glycol Stearate and PEG-55 Propylene Glycol Oleate were negative in clinical patch tests. Based on the available data, it was concluded that these ingredients are safe as used (concentrations no greater than 10%) in cosmetic formulations. Based on evidence of sensitization and nephrotoxicity in burn patients treated with a PEG-based antimicrobial preparation, the ingredients included in this review should not be used on damaged skin.

Animals↗

[Skin irritation caused by propylene glycols].

Propylene glycol is used in foods, medicine and cosmetics because it is a good solvent which has, simultaneously, moisture-regulating, antiseptic, and preservative effects. Propylene glycol may produce eczematous skin reactions of toxic and, more rarely, of allergic nature. Positive patch test reactions to propylene glycol are difficult to interpret. Allergic reactions may be confirmed by a clear clinical relevance, repeated local skin provocation (usage test), or oral provocation. In the Department of Dermatology, University of Oregon, 84 patients were patch tested with 100% propylene glycol. Five of 12 patch test-positive patients had allergic reactions while seven had irritant reactions. In the Department of Dermatology, Gentofte Hospital, 248 consecutive eczema patients were patch-tested with propylene glycol in concentrations of 100%, 20%, and 2% in water. Two of five patients with positive reactions to patch tests showed an itchy eczematous eruption after oral provocation with 15 ml propylene glycol. Skin reactions due to propylene glycol are rare and should not bring the preparation into unnecessary discredit. The possibility of propylene glycol allergy should be recognized by dermatologists as propylene glycol is used in local steroids and other topical preparations.

Adult↗

Skin reactions to propylene glycol.

Propylene glycol (PG), ethylene glycol (EG), and polyethylene glycol 400 (PEG 400) were tested, as is, in a total of 1,556 cases of eczema using the chamber test method. All the year round, the number of positive reactions to PG was 12.5% to EG 4.9%, and to PEG 400 0.3%. A total of 30% of the positive reactions to PG were allergic in appearance. Also the new fatty alcohol-PG bases of Metosyn ointment and Topilar ointment as well as Metosyn ointment (fluocinonide) itself provoked reactions in a great number of patients with positive reactions to PG, as is. The reactions to PG were considered to be truly allergic in four cases. In them, positive reactions were elicited by testing with high dilutions of PG and by applying the glycol in the patients' armpits as an open test. It is concluded that PG and topical preparations containing it in high concentrations should not be used with occlusion, and that allergic reactions must be watched.

Anti-Inflammatory Agents, Non-Steroidal↗

A positive chemical ionization GC/MS method for the determination of airborne ethylene glycol and propylene glycols in non-occupational environments.

An analytical method for ethylene glycol and propylene glycols has been developed for measuring airborne levels of these chemicals in non-occupational environments such as residences and office buildings. The analytes were collected on charcoal tubes, solvent extracted, and analyzed by gas chromatography-mass spectrometry using a positive chemical ionization technique. The method had a method detection limit of 0.07 microg m(-3) for ethylene glycol and 0.03 microg m(-3) for 1,2- and 1,3-propylene glycols, respectively, based on a 1.44 m3 sampling volume. Indoor air samples of several residential homes and other indoor environments have been analyzed. The median concentrations of ethylene glycol and 1,2-propylene glycol in nine residential indoor air samples were 53 microg m(-3) and 13 microg m(-3) respectively with maximum values of 223 microg m(-3) and 25 microg m(-3) detected for ethylene glycol and 1,2-propylene glycol respectively. The concentrations of these two chemicals in one office and two laboratories were at low microg m(-3) levels. The maximum concentration of 1,3-propylene glycol detected in indoor air was 0.1 microg m(-3).

Air Pollution, Indoor↗

Facilitation of mouse neuromuscular transmission by propylene glycol.

Propylene glycol (PG) has an excitatory effect on the skeletal muscle of the frog. To determine whether PG has a facilitating effect on the neuromuscular transmission of the mammalian as well as on that of the amphibian and to elucidate the mode of action, we have investigated the effects of PG on the neuromuscular junction of the mouse. PG (1.0% v/v) significantly increased the amplitude of endplate potential. PG raised the frequency of miniature endplate potential and increased its amplitude. PG increased the mean quantal content of the endplate potential. These results indicate that PG facilitates the mouse neuromuscular transmission by accelerating the transmitter release from the nerve terminals and by raising the acetylcholine sensitivity of the endplates.

Animals↗

Heat sterilization of bioindicators in propylene glycol and propylene glycol-water mixtures: arrhenius equation, thermodynamic data, and Z values.

Our interest in calculating the thermodynamic data by means of the Arrhenius equation was based on two observation: (a) the thermal death time increases considerably when the bioindicators Bacillus subtilis var. niger and Bacillus stearothermophilus are sterilized in nonaqueous hydrophilic solutions as found in propylene glycol (PG) with low water concentrations; and (b) the inactivation kinetics of Bac. stearothermophilus does not follow a first-order reaction. The frequency factor A and the entropy of activation delta S* have the highest values in water and the lowest value in PG; delta S* for Bac. stearothermophilus in water is 812 J/mol K; however, in PG it is -9.6 J/mol K. A good correlation between delta S* and the enthalpy delta H* is found, indicating possible protein denaturation during thermal inactivation. The moderate positive and negative delta S* values in PG and PG with low water concentrations might be explained by (a) rigid conformation of proteins due to stabilization and (b) slow reaction, making the complex a less probable structure, when the activated complex is built only under considerable rearrangement of the structure of the reactant molecules. The opposite was observed with the Z and Z* values, the latter being defined as Z values of nonlogarithmic survival curves. The Z values increase with increasing concentrations of PG, i.e., for Bac. subtilis of Z = 8 degrees C in water up to Z = 23 degrees C in PG and for Bac. stearothermophilus of Z = 6 degrees C up to Z* = 27 degrees C.(ABSTRACT TRUNCATED AT 250 WORDS)

Bacillus subtilis↗

Fatalities by ingestion of propylene glycol.

Propylene glycol (PG), a widely used solvent and lubricant, is thought to have low toxicity when ingested. Three cases were identified where PG, either alone or in combination with other chemical agents, contributed to death. The decedent in whom PG was the sole agent was a 32-year-old schizophrenic man with cardiomegaly and renal impairment. The blood PG concentration was 4410 mg/L at least 9.5 h following ingestion.

Adult↗

Contact allergy from propylene glycol.

Propylene glycol (PG) 20% in water was tested in a group of 400 subjects with eczematous contact dermatitis. In six inpatients (1.5%) reactions were recorded as considered positive according to the following criteria: 1. the relevant history of prolonged contact with PG-containing topical pharmaceutical and cosmetic preparations; 2. the reaction extended in time outside the area of application of the test substance, and persisted locally for several day; 3. a similar reaction was obtained on repetition of the test with a lower concentration of PG; 4. the prompt improvement in clinical manifestations of eczema on withdrawal of PG-containing topical preparations. With the PG concentration employed no irritant reactions were observed.

Adult↗

Subzero nonfreezing storage of the mammalian cardiac explant. I. Methanol, ethanol, ethylene glycol, and propylene glycol as colligative cryoprotectants.

We employed hyperosmotic concentrations of penetrating cryoprotective agents (CPA) to store the isolated rat hearts unfrozen at subzero temperatures. The effect of acute exposure to CPA was assessed by flushing the hearts with CP-14, a cardioplegic solution, containing methanol (MeOH), ethanol (EtOH), ethylene glycol (EG), or propylene glycol (PG) for 2 min and reperfusing immediately with Krebs-Henseleit buffer in a working-heart model. The maximal doses that did not cause irreversible suppression of heart function were: MeOH, 1.78 M; EtOH, 1.27 M; EG, 0.84 M; and PG, 0.87 M. For nonfreezing storage, the hearts were flushed with CP-14 containing the highest tolerable concentrations of MeOH, EtOH, EG, or PG, stored for 6 h at -3.7, -2.8, and -1.4 degrees C, respectively, and then reperfused. Control cardiac output (CO) was 76.2 +/- 1.8 ml/min. Post-reperfusional recovery of CO was 86% in MeOH hearts, 82% in EtOH hearts, 76% in EG hearts, and 79% in PG hearts. Thus MeOH offered not only the least cardiac-suppressing effect but the lowest nonfreezing storage temperature. When storage time was extended, recovery and myocardial ATP level decreased with time in hearts flushed with CP-14 + 1.78 M MeOH and stored at -3.7 degrees C. The decay of function was faster than the decay of ATP level, suggesting energy was better preserved than function. The low return of function, however, may be related to CPA toxicity, osmotic stress, and ischemia/reperfusion injury. Nonfreezing storage at subzero temperatures using these CPAs may provide a novel approach to long-term cardiac preservation.

Adenine Nucleotides↗

A review of the comparative mammalian toxicity of ethylene glycol and propylene glycol.

The purpose of this article is to review and interpret the scientific literature on the mammalian toxicity of ethylene glycol (EG) and propylene glycol (PG), with the goal of comparing the toxicity of the two chemicals. This type of review may serve as the basis for risk management decision-making. Because EG is not a GRAS (generally recognized as safe) chemical, its uses are restricted when compared with PG; thus, certain routes of exposure are not relevant here for toxicological comparison (e.g., subcutaneous, intramuscular, and intravenous). Therefore, this review is focused on the oral, inhalation, and dermal routes of exposure. However, where toxicological data derived from an alternative route of exposure serve to eludicate mechanisms of toxicity, data from these routes are considered. Based on the review provided herein, the following conclusions can be drawn. From the standpoint of lethality, acute effects, and reproductive, developmental, and kidney toxicity, the toxicity of EG exceeds that of PG. Further, localized dermal effects from EG and PG are both mild, with data suggesting that PG may have a skin contact sensitization potential. Finally, PG exposure in laboratory animals has been associated with reversible hematological changes; no data were located for EG from which to draw a toxicological comparison.

Animals↗

Antibacterial and antifungal properties of propylene glycol, hexylene glycol, and 1,3-butylene glycol in vitro.

The antimicrobial properties of three glycols, - propylene glycol, hexylene glycol, and 1,3-butylene glycol - against Candida albicans, Staphylococcus aureus, Staphylococcus epidermidis, Streptococcus pyogenes A, Streptococcus mitis, and E. coli were studied in vitro. Within 20 h, 10% and 30% hexylene glycol in fresh tryptic soy broth were able to kill all the micro-organisms listed above. Five percent hexylene glycol showed some antimicrobial properties but the 1% agent had no effect. Thirty percent 1,3-butylene glycol and 30% propylene glycol were approximately as effective as 10% HG. The results speak in favour of using hexylene glycol in cosmetic and dermatological vehicles instead of propylene glycol and 1,3-butylene glycol.

Anti-Bacterial Agents↗

Cardiovascular effects of intravenous administration of propylene glycol and of oxytetracycline in propylene glycol in calves.

Comparisons were made of the acute cardiovascular effects of oxytetracycline, oxytetracycline in propylene glycol, and propylene glycol alone given to conscious dairy calves. The calves were chronically instrumented with intravascular catheters and electromagnetic flowmeter transducers in and on the pulmonary and renal arteries. Injection (IV) of aqueous preparations of oxytetracycline produced no statistically significant (P greater than 0.05) cardiocirculatory changes in these calves. Oxytetracycline in propylene glycol and propylene glycol alone both produced transient (1 to 4 minute) periods of cardiovascular depression characterized by cardiac asystole, systemic hypotension, and decreased pulmonary and renal arterial blood flow. The two preparations, in equivalent doses and volumes, produced statistically similar hemodynamic changes in the calves. The data from this study support the conclusion that the monitored cardiovascular effects of the commercially available oxytetracycline in propylene glycol in the intact, awake calves were due to the solvent propylene glycol. This conclusion is consistent with reports of other injectable products containing the same solvent.

Animals↗