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Effect of trichloroacetic acid treatment on certain properties of spores of Bacillus cereus T.

Spores of Bacillus cereus T treated with trichloroacetic acid (6.1--61.2 mM) were compared with untreated spores, and as the concentration of the chemical increased, the following alterations in spore properties were found: (1) the extent of germination decreased irrespective of the germination medium used; (2) the spores became sensitive to sodium hydroxide (1 N) and hydrochloric acid (0.27 N), but not to lysozyme (200 micrograms/ml); (3) loss of dipicolinate increased on subsequent heating; and (4) the spores became more sensitive to heat. However, trichloroacetic acid-treated spores were still viable and there was no significant change in spore components. The mechanism of action of trichloroacetic acid is discussed.

Bacillus cereus↗

Distribution of two types of mast cells in the nasal mucosa after chemosurgical treatment of allergic rhinitis using trichloroacetic acid.

To evaluate the efficacy of chemosurgery using trichloroacetic acid (TCA) for allergic rhinitis, two types of tissue mast cells [tryptase-positive, chymase-negative mast cells (MCT) and tryptase-positive, chymase-positive mast cells (MCTC)] in the nasal turbinate mucosa were immunohistochemically identified and their distribution was assessed in clinical cases of patients who underwent unilateral TCA treatment. A comparison of the number of MCT and MCTC between the treated and nontreated sides indicates that both types of mast cells are significantly decreased in number in the treated side both in epithelial and lamina propria layers. The results indicate that TCA treatment was effective in suppressing MCT infiltration, regarded as a major cause of antigen-dependent allergy.

Administration, Topical↗

Trichloroacetic acid in Norway spruce/soil-system. I. Biodegradation in soil.

Trichloroacetic acid (TCA) as a phytotoxic substance affects health status of coniferous trees. It is known as a secondary air pollutant (formed by photooxidation of tetrachloroethene and 1,1,1-trichloroethane) and as a product of chlorination of humic substances in soil. Its break-down in soil, however, influences considerably the TCA level, i.e. the extent of TCA uptake by spruce roots. In connection with our investigations of TCA effects on Norway spruce, microbial processes in soil were studied using 14C-labeling. It was shown that TCA degradation in soil is a fast process depending on TCA concentration, soil properties, humidity and temperature. As a result, the TCA level in soil is determined by a steady state between uptake from the atmosphere, formation in soil, leaching and degradation. The process of TCA degradation in soil thus participates significantly in the chlorine cycle in forest ecosystems.

Biodegradation, Environmental↗

A new method for the determination of trichloroacetic acid in spruce foliage and other environmental media.

Trichloroacetic acid (TCAA) is a phytotoxic chemical, present throughout the environment. The majority of methods for analysis of TCAA require chemical derivatisation and multiple extraction steps prior to analysis by gas-chromatography. Here, a new analytical method for TCAA determination in environmental matrices is reported. The method is based on a modified Nielsen-Kryger steam distillation that combines into one 1 h reflux the thermal decarboxylation of TCAA to CHCl3 and the partitioning and concentration of the CHCl3 into 5 ml of hexane, which is analysed by GC. Sample preparation is minimal and no matrix standard additions are required. The background CHCl3 in the sample is removed prior to extraction by degassing the solution for 1 h with nitrogen. Optimisation of the method gave recoveries from three separate solutions of 0.31 ppb aqueous TCAA standards of 93 +/- 15% (n = 9), 110 +/- 9% (n = 9) and 105 +/- 11% (n = 6). The extraction method has been compared with a decarboxylation and headspace GC method for determination of TCAA in Sitka spruce needles. No significant difference in TCAA concentration or replicate precision between the two methods was observed.

Caustics↗

[Spectrophotometric and gas chromatographic analysis of trichloroacetic acid in urine].

Some chlorinated hydrocarbon solvents--1,1,1-trichloroethane, trichloroethylene and perchloroethylene--have a common biotransformation product, trichloroacetic acid, which can be used as their biological exposure index. The spectrophotometric and gas chromatographic methods for the determination of trichloroacetic acid were studied and used as well as in its determination in the urine of workers exposed to 1,1,1-trichloroethane. Both methods showed good precision and no statistically significant difference was found although the gas chromatographic method presented a lower detection limit.

Chromatography, Gas↗

[The treatment of cervical human papillomavirus (HPV) infection with trichloroacetic acid].

Ever since the alterations caused by the HPV on the cervix were discovered, countless treatments have been employed but the ideal method still remains unknown. The objective of the experiment was to assess the efficiency of handling the cervical infection caused by the HPV, by means of trichloroacetic acid, 85% rate. During the period comprised between April 1989 and March 1990, 60 patients were subject to close analysis. The general diagnosis drawn cytology, colposcopy, and histopathology was cervical condyloma, lacking any collateral evidence of intraepithelial cervical neoplasia. The treatment consisted of 3 weekly applications of trichloroacetic acid at 85% rate directly upon the cervix. They were all assessed through cytology and colposcopy every 3 months, during a year's period. After the first 3 months, a 73.4% healing rate was observed, which decreased to 68% after 6 months and to a 65% after 9 months; this last healing rate remained unchanged after 12 months. Pregnant patients showed higher healing rates. We have drawn the conclusions that the trichloroacetic acid is an efficient agent to treat the referred injuries, and it offers as well the advantages of low costs, no secondary effects and an easy application and handling.

Adult↗

Lack of formic acid production in rat hepatocytes and human renal proximal tubule cells exposed to chloral hydrate or trichloroacetic acid.

The industrial solvent trichloroethylene (TCE) and its major metabolites have been shown to cause formic aciduria in male rats. We have examined whether chloral hydrate (CH) and trichloroacetic acid (TCA), known metabolites of TCE, produce an increase in formic acid in vitro in cultures of rat hepatocytes or human renal proximal tubule cells (HRPTC). The metabolism and cytotoxicity of CH was also examined to establish that the cells were metabolically active and not compromised by toxicity. Rat hepatocytes and HRPTC were cultured in serum-free medium and then treated with 0.3-3mM CH for 3 days or 0.03-3mM CH for 10 days, respectively and formic acid production, metabolism to trichloroethanol (TCE-OH) and TCA and cytotoxicity determined. No increase in formic acid production in rat hepatocytes or HRPTC exposed to CH was observed over and above that due to chemical degradation, neither was formic acid production observed in rat hepatocytes exposed to TCA. HRPTC metabolized CH to TCE-OH and TCA with a 12-fold greater capacity to form TCE-OH versus TCA. Rat hepatocytes exhibited a 1.6-fold and three-fold greater capacity than HRPTC to form TCE-OH and TCA, respectively. CH and TCA were not cytotoxic to rat hepatocytes at concentrations up to 3mM/day for 3 days. With HRPTC, one sample showed no cytotoxicity to CH at concentrations up to 3mM/day for 10 days, while in another cytotoxicity was seen at 1mM/day for 3 days. In summary, increased formic acid production was not observed in rat hepatocytes or HRPTC exposed to TCE metabolites, suggesting that the in vivo response cannot be modelled in vitro. CH was toxic to HRPTC at millimolar concentrations/day over 10 days, while glutathione derived metabolites of TCE were toxic at micromolar concentrations/day over 10 days [Lock, E.A., Reed, C.J., 2006. Trichloroethylene: mechanisms of renal toxicity and renal cancer and relevance to risk assessment. Toxicol. Sci. 19, 313-331] supporting the view that glutathione derived metabolites are likely to be responsible for nephrotoxicity.

Adolescent↗

Short-lived mutagen in Salmonella produced by reaction of trichloroacetic acid and dimethyl sulphoxide.

A chemical reaction occurs when trichloroacetic acid (TCA) is dissolved in dimethyl sulphoxide (DMSO), with the production of a short-lived mutagenic derivative which was detected using the Salmonella/mammalian-microsome plate overlay assay. Other interactions between test chemicals and solvents are discussed. Choice of proper solvents in mutagenicity testing is emphasized.

Dimethyl Sulfoxide↗

Topical applications of trichloroacetic acid as therapy for nasal allergy.

A group of 22 patients (27 nostrils) with nasal allergies was treated with 80 w/v trichloroacetic acid applied to the inferior turbinates. Patients were then evaluated prospectively based on both subjective responses and clinical examinations. Allergic symptoms were reduced significantly, especially those involving nasal obstruction and watery rhinorrhea. Nasal airflow resistance also improved after treatment (P < 0.001). Nasal provocation testing revealed a significant decrease in post-treatment responses (P < 0.001). No severe side effects were noted after treatment. Findings demonstrated that local application of trichloroacetic acid is a safe, effective and simple treatment for outpatients with symptomatic nasal allergies.

Administration, Intranasal↗

[Endogenic intoxication markers: data from capillary electrophoresis of trichloroacetic acid supernatant].

Capillary electrophoresis is suggested for characterization of trichloroacetic acid (TCA) supernatant in various visceral diseases involving endogenous intoxication. The technique of electrophoresis is described. Examples of electrophoregrams are offered with extrapolation to common clinical laboratory values. The appearance of a positive "cationic peak" instead of a negative systemic peak observed in health is a specific electrophoretic sign of endogenous intoxication. The area of the peak (proportionate to intoxication) and its ratio to the group undivided peak observed in the distal part of electrophoregram (minutes 8-14, anionic constituents) are significant. The values of the latter peak characterize the defense characteristics of the organism and are in proportion to them. Capillary electrophoresis is a perspective diagnostic method.

Adult↗

The effect of chloral hydrate and its metabolites, trichloroethanol and trichloroacetic acid, on bilirubin-albumin binding.

Chloral hydrate is used as a sedative in infants requiring ventilatory support. The metabolites, trichloroethanol and trichloroacetic acid, accumulate in the serum and are protein bound. The possibility that these chemicals might compete with bilirubin for albumin binding was tested using the peroxidase method and a dialysis rate method. Chloral hydrate and trichloroethanol had no effect on bilirubin-albumin binding. Trichloroacetic acid affects bilirubin-albumin binding but to a degree that would be dangerous only in infants with an unusual accumulation of this metabolite.

Bilirubin↗

Trichloroethylene, trichloroacetic acid, and dichloroacetic acid: do they affect fetal rat heart development?

Trichloroethylene (TCE), trichloroacetic acid (TCA), and dichloroacetic acid (DCA) are commonly found as groundwater contaminants in many regions of the United States. Cardiac birth defects in children have been associated with TCE, and laboratory studies with rodents report an increased incidence of fetal cardiac malformations resulting from maternal exposures to TCE, TCA, and DCA. The objective of this study was to orally treat pregnant CDR(CD) Sprague-Dawley rats with large bolus doses of either TCE (500 mg/kg), TCA (300 mg/kg), or DCA (300 mg/kg) once per day on days 6 through 15 of gestation to determine the effectiveness of these materials to induce cardiac defects in the fetus. All-trans retinoic acid (RA) dissolved in soybean oil was used as a positive control. Soybean oil is commonly used as a dosing vehicle for RA teratology studies and was also used in this study as a dosing vehicle for TCE. Water was used as the dosing vehicle for TCA and DCA. Fetal hearts were examined on gestation day (GD) 21 by an initial in situ, cardiovascular stereomicroscope examination, and then followed by a microscopic dissection and examination of the formalin-fixed heart. The doses selected for TCA and DCA resulted in a modest decrease in maternal weight gain during gestation (3% to 8%). The fetal weights on GD 21 in the TCA and DCA treatment groups were decreased 8% and 9%, respectively, compared to the water control group and 21% in the RA treatment group compared to soybean oil control group. The heart malformation incidence for fetuses from the TCE-, TCA-, and DCA-treated dams did not differ from control values on a per fetus or per litter basis. The rate of heart malformations, on a per fetus basis, ranged from 3% to 5% for TCE, TCA, and DCA treatment groups compared to 6.5% and 2.9% for soybean oil and water control groups. The RA treatment group was significantly higher with 33% of the fetuses displaying heart defects. For TCE, TCA, and DCA treatment groups 42% to 60% of the litters contained at least one fetus with a heart malformation, compared to 52% and 37% of the litters in the soybean oil and water control groups. For the RA treatment group, 11 of 12 litters contained at least one fetus with a heart malformation. Further research is needed to quantify the spontaneous rates of heart defects for vehicle control rats and to explain the disparity between findings in the present study and other reported findings on the fetal cardiac teratogenicity of TCE, TCA, and DCA.

Animals↗

Chemical composition of phase I Coxiella burnetii soluble antigen prepared by trichloroacetic acid extraction.

Optimal conditions of extraction (time and temperature) by trichloroacetic acid of soluble antigen from phase I Coxiella burnetii (TCAE), possessing protective properties and used as a chemovaccine against Q fever in men, were studied. Extracts prepared under various conditions were analysed for their polysaccharide, protein and phosphorus contents. Forty-five min of extraction at 0 degrees C were sufficient to obtain a soluble antigen reacting in immunodiffusion with hyperimmune rabbit antiserum. The polysaccharide contents decreased with prolonged extraction at 0 degrees C. At higher extraction temperatures (37 and 100 degrees C), the polysaccharide contents increased while that of proteins decreased. TCAE prepared at 100 degrees C gave no positive immunodiffusion reaction.

Animals↗

Serological study of trichloroacetic acid extracts of Bacteroides fragilis.

Immunodiffusion techniques were used on trichloroacetic acid extracts from 10 strains of Bacteroides fragilis in detecting precipitating antibodies against this species in immune rabbit sera. Species and even strain specificities were observed in these precipitin reactions. Multiple antigens were detected in the extracts from some strains, whereas only one precipitin band per extract developed during agar-gel diffusion tests of others. The antigen extracts were found to be both heat stable and resistant to hydrolysis by alpha-chymotrypsin. Four serological patterns were demonstrated in homologous and heterologous reactions with the B. fragilis. antigen-antibody systems used. The results showed that some strains were serologically distinct from others, indicating that the strains tested are of more than one serotype.

Animals↗

P-cadherin expression in skin peeled with phenol or trichloroacetic acid (TCA).

P-cadherin expression patterns were studied in trichloroacetic acid (TCA) or phenol treated skin. The expression was absent or very weak on the basal cell surfaces by day 2. Seven days after peeling, P-cadherin was clearly distributed in a continuous granular pattern over the cell surface of the entire epidermis of the 40% TCA treated skin, in a weak granular pattern on a few suprabasal cells and basal cells of the phenol treated skin, and very weakly expressed on the lateral surfaces and in the cytoplasm of basal cells of the 60% TCA treated skin. Based on the present results and previous reports, it is likely that there are distinct patterns of P cadherin expression. Furthermore, a specific type of P cadherin expression might be involved in wound healing in general, which could provide new insights into tissue repair mechanisms after chemical peeling.

Adult↗

Electrospray analysis of biological samples for trace amounts of trichloroacetic acid, dichloroacetic acid, and monochloroacetic acid.

Trichloroethylene (TCE) has been identified as a widespread groundwater contaminant. Trichloroacetic acid (TCA) and dichloroacetic acid (DCA) are toxicologically relevant metabolites of TCE that produce tumors in B6C3F1 mice. A sensitive method for measuring these metabolites in plasma has been developed to obtain pharmacokinetic data from TCE exposure. This is particularly important because DCA is more potent at producing hepatoproliferative lesions than TCA. At present, it is unclear whether DCA is produced by humans. Existing gas chromatographic methods cannot detect DCA at low nanogram-per-milliliter levels. A Finnigan TSQ 700 mass spectrometer (MS) with electrospray ionization was used to measure TCA, DCA, and monochloroacetic acid (MCA) in plasma. The MS was operated in negative ion tandem MS mode. The limit of detection for TCA and DCA was 4 ng/ml, and the limit of detection for MCA was 25 ng/mL. Plasma samples from human subjects exposed to 100 ppm TCE for 4 h contained TCA at concentrations as high as 10 micrograms/mL. DCA concentrations were less than 5 ng/mL, and MCA was not detected (less than 25 ng/mL).

Acetates↗

An immunohistological study of the localization characteristics of thymus and activation-regulated chemokine in the allergic inferior turbinate mucosa with reference to the effectiveness of trichloroacetic acid treatment.

To investigate the background of the effectiveness of trichloroacetic acid (TCA) treatment, we examined the localization of thymus and activation-regulated chemokine (TARC) on allergic inferior turbinate mucosa using immunohistological methods. After obtaining informed consent, only one side of the inferior turbinate was treated with 80% (wt/vol) TCA solution under topical anesthesia using 4% lidocaine with epinephrine in 19 cases of allergic rhinitis. Among those, 17 cases did not show clinical improvement and underwent nasal septal reconstruction surgery and turbinectomy. Bilateral inferior turbinate specimens were obtained. The untreated turbinate specimens showed positive TARC findings. The positive findings were confirmed in the outer side of cytoplasm in the stratified ciliated columnar epithelium but not in the goblet cell. In the lamina propria, the glandular tissue and afew of the infiltrated lymphocytes just beneath the epithelium up to the depth of 120 microm were found TARC-positive (TARC+). The average number of positive cells in one microscopic visual field using 100x magnification was 3.97 +/- 4.04. On the other hand, the epithelium of the TCA-treated side showed positive findings only in two cases. The TCA-treated side also showed a relative decrease in infiltrated cells. Even in areas where there still were infiltrated cells, they were confirmed to be TARC-negative (TARC-) after TCA treatment. It is considered that the regenerated epithelium after TCA treatment originates from the glandular epithelium with negative TARC expression existing in the area deeper than a 120-microm level and that this immunohistological change would lead to the effectiveness of TCA treatment.

Adult↗