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[Occurrence of chlormequat (CCC) in wheat straw and its excretion in milk following feeding of straw pellets containing chlormequat].

When the herbicide chlormequat (chlorocholine chloride or CCC) was correctly used at 2 kg per hectare at the five-leaf stage of growth, the residues in wheat straw did not exceed 3 ppm. Such residual amounts remained unchanged after storage and pelleting. However, the feeding of contaminated straw pellets to cows did not result in contaimination of the milk detectable by a method which was capable of determining concentrations down to 0.05 ppm.

Animal Feed

Effect of chlormequat and alar on some biochemical constituents in tomato plants and fruits.

The field experiment was conducted to study the effect of various levels of chlormequat (CCC) and alar on the biochemical changes in tomato plants and fruits at different stages of growth. This experiment included spraying with chlormequat and alar separately in two equal doses (250, 500 and 1000 ppm CCC or alar 25 and 40 days after transplanting). The different levels of chlormequat decreased the accumulation of dry matter in tomato plants, but alar increased it. Chlorophyll a, b, total chlorophyll and carotenoids content of tomato plants increased by the application of CCC or alar. The highest increase of concentration of chlorophyll a, b and carotenoids in tomato plants were found by spraying with 500 ppm alar or CCC. The application of CCC and alar declined the percentage of carbohydrates and the highest decrease resulted by adding of 1000 ppm alar or CCC. Alar caused an increase in the percentage of total nitrogen at the different stages of growth. The concentration of P, K, Ca and Mg increased by the foliar spray of all treatments. Alar application at all used levels significantly increased the yield and also the weight of fruits. Highest plant productivity was obtained by using alar and CCC at 250 ppm, followed by 500 ppm. However, the highest concentration (1000 ppm) depressed the plant productivity. The concentration of juice, total soluble solids and vitamin C in tomato fruits increased at most of the levels added. But the percentage of total sugars and total acidity seemed to exert another trend. The highest concentration of N, P, K, Ca and Mg in fruits was obtained by foliar application of 500 ppm CCC or alar.

Carbohydrates

Sudden death following accidental ingestion of chlormequat.

A 59-year-old white male accidentally ingested a mouthful of a plant growth chemical, Cycocel, containing 11.8% of the active ingredient (2-chloroethyl)trimethylammonium chloride (chlormequat). He was seen by a family physician and then transferred to a hospital where he died as a result of ventricular fibrillation, which progressed to asystole. Postingestion symptoms were typical of cholinergic crisis and included salivation, diaphoresis, bradycardia, visual disturbances, and seizure. Autopsy findings showed marked pulmonary edema, coronary atherosclerosis, atheromata of aorta, and localized adenocarcinoma of the prostate. Toxicological analyses of biological samples showed the presence of chlormequat in the stomach contents and urine.

Accidents, Occupational

[The effect of pesticides on the protozoan Tetrahymena pyriformis].

The toxic effect of the following pesticides was examined: metathion (doses from 1.49 micrograms to 100.0 g per litre of medium), phenmedipham (doses from 24.42 micrograms to 400.0 mg per litre of medium), gamma-hexachlorocyclohexane (doses from 122.07 micrograms to 250.0 mg per litre of medium), and chlormequat (doses from 305.16 micrograms to 20.0 g per litre of medium). The tests were performed on the protozoan Tetrahymena pyriformis. The LD50 of metathion was found to be 8.94 micrograms per litre and the LD100 ranged from 23.84 to 47.68 micrograms per litre. In phenmedipham the LD50 ranged from 12.5 to 25.0 mg per litre and its LD100 was above 400.0 mg per litre. The LD50 of gamma-hexachlorocyclohexane is 976.56 micrograms per litre and LD100 about 7.91 mg per litre. The LD50 of chlormequat ranged from 312.5 to 625.0 mg per litre and LD100 was about 20.0 g per litre of medium.

Carbamates

A review of the acceptable daily intakes of pesticides assessed by WHO.

Over the past three decades, WHO has evaluated and reevaluated, through the Joint FAO/WHO Meeting on Pesticide Residues, 230 pesticides. The acceptable daily intakes (ADIs) of these pesticides are analyzed along with their scientific bases. In most cases, the evaluation process was consistent with the stated general principles and procedures of JMPR. However, the safety factors used in allocating the ADIs of several pesticides seem to be inconsistent with the severity of the toxicity, and thus, may require further consideration. These chemicals are abamectin, dinocap, procymidone, chlormequat, ethion, glyphosate, fentin hydroxide, and fentin compounds. In addition, pesticides that were evaluated many years ago, e.g., bromomethane, might merit a reevaluation in light of any relevant recent data.

Animals

Effects of pesticides on isolated rat hepatocytes, mitochondria, and microsomes.

Twenty-seven pesticides, with which people are concerned, especially as residues in food, were examined in vitro for their effects on hepatocytes, mitochondria, and microsomes isolated from male rats. Nineteen pesticides returned non-protein sulfhydryl (NPSH) contents in hepatocytes to less than 80% of control at concentrations from 10(-3) to 10(-5) M after 90 min incubation. Among them, only dichlofluanid was reactive with glutathione non-enzymatically. Lipid peroxidation in hepatocytes was stimulated by five pesticides at 10(-3) M, with edifenphos being the most potent peroxidant. Cell viability was considerably decreased by incubation with chlorobenzilate, edifenphos, dichlofluanid, and chinomethionat at 10(-3) M, and in these cases, depletion of cellular adenosine 5'-triphosphate (ATP) contents proceeded to cell death. With respect to isolated mitochondrial respiration, six pesticides inhibited state 3 and/or state 4 respiration rates at concentrations from 10(-3) to 10(-5) M, whereas three pesticides uncoupled state 4 respiration at 10(-3) M. With respect to isolated microsomal lipid peroxidation, seven pesticides, five of which were organophosphorus compounds, were peroxidative at concentrations from 10(-3) to 10(-5) M, whereas seven pesticides were antioxidative at concentrations from 10(-3) to 10(-7) M. Only three pesticides, aldicarb, maleic hydrazide, and chlormequat chloride had no effect on any parameters tested at 10(-3) M. Pesticides that affected isolated mitochondria or microsomes did not necessarily have any effect on isolated hepatocytes.

Animals

Biological changes in the rhizosphere of wheat after foliar application of chlorocholinechloride, urea and 4-chloro-2-methylphenoxyacetic acid.

In field experiments wheat in the phase of shooting was sprayed with solutions of chlorocholinechloride (CCC) and urea, CCC and ammonium salt MCPA (Aminex) or CCC, urea and Aminex. The effect of the treatment on dry weight of overground parts of wheat, number of bacteria, production of carbon dioxide, urease activity and content of ammonium in the rhizosphere soil was investigated. In all cases evolution of carbon dioxide in the rhizosphere soil was higher than that in the control soil. Highest numbers of bacteria were found in the rhizosphere soil of plants treated with urea, the herbicide and their mixtures. Content of ammonium was higher in the control soil than in the rhizosphere soils, the urease activity was highest in the rhizosphere soil of plants treated with the solution of the herbicide and with the combination of the herbicide with urea.

Ammonia

Mutagenic actions of chlorocholine chloride.

Chlorocholine chloride, at concentrations of 0.2 to 0.5 M (3.2 to 7.9%) between pH 5 and 8, showed no significant mutagenic effect whereas at the same concentrations at pH 9 it caused mutations, in a valine-sensitive strain of E. coli K12. Treatment of E. coli B with chlorocholine chloride at 0.5 M and pH 9 resulted in auxotrophic and regulatory deficient (valine-sensitive) mutants. The mutagenic effects of chlorocholine chloride were compared with the effects caused by the food additive NaHSO3.

Chlormequat

Influence of feeding chlorocholine chloride and glyphosine on selected immune parameters in deer mice, Peromyscus maniculatus.

Exposure to the plant growth regulators, chlorocholine chloride (CCC) and glyphosine (GPS), resulted in significant immunomodulatory effects after feeding to deer mice (Peromyscus maniculatus) for 28 days. Cyclophosphamide (CP) and saline controls were included. Both CCC and GPS feeding levels were equivalent to 1, 10, 20, 40 and 80 mg/kg mouse/day. The parameters assessed were: spleen plaque forming cell (PFC) assays, hemolysin titers, white blood cell counts, bone marrow cellularity, hematocrits, plasma proteins, and spleen, liver, kidney, thymus and body weights. GPS significantly raised the ratio of liver/body wt, lymphocytes/g of spleen (at high doses only) and hemolysin titers (at low doses only). Lymphocyte viability was significantly reduced, while WBC counts and plasma protein levels were moderately lowered. CCC significantly reduced plasma proteins, PFCs/g of spleen, lymphocyte viability and hemolysin titers. It also affected thymus weights, WBC counts, lymphocytes/g of spleen and PFCs/10(6) lymphocytes. Most of the effects for both compounds followed a typical dose-response curve, but GPS gave a bimodal response in certain tests. The results demonstrate that CCC and GPS can act as immunomodulatory agents and show the feasibility of using deer mice for immunotoxicity studies of environmental contaminants and agricultural chemicals.

Animals

Effects of ingestion of chlorocholine chloride and cyclophosphamide on Venezuelan equine encephalitis virus infections in deer mice (Peromyscus maniculatus).

We investigated the effects of chlorocholine chloride (CCC), a plant growth regulator, and cyclophosphamide (CP), a known immunosuppressant, on the ability of deer mice (Peromyscus maniculatus) to resist challenge with a sublethal dose of Venezuelan equine encephalitis virus ( VEEV ). The toxicants were continuously delivered in low doses in the feed; CP at 20 mg/kg body wt/day and CCC at 1, 10, 20 or 40 mg/kg body wt/day. Mice were inoculated with 3 X 10(4) plaque forming units (pfu) of VEEV after eating experimental feed for 23 days. Mice were bled daily for 7 days and at selected intervals from 8 to 63 days post inoculation (PI) for viremia and antibody titer determinations. CP treatment increased the duration of viremia and significantly (P less than or equal to 0.05) decreased mean viremia titers. Antibody titers were significantly (P less than or equal to 0.05) depressed in CP-treated mice compared to controls. CP treatment increased mortality. CCC had no effect on viremia duration or titer except when given in doses of 1 mg/kg body wt/day when it significantly (P less than or equal to 0.05) decreased mean viremia titers compared to controls. Early antibody responses were increased by CCC treatment except in the 10 mg/kg body wt/day treatment group in which titers were decreased. By 30 days PI antibody titers of CCC-treated mice were no different from controls.

Animals