1.Four Cases of Ocular Injury caused by Gramoxone.
Joon Soon KIM ; Woojin LEE ; Jae Ho LEE
Journal of the Korean Ophthalmological Society 1997;38(11):2071-2076
Parquat, more commonly used in its commercial name, Gramoxone, is a widely used herbicide for it is inexpensive and effective. It is lethal when ingested accidentally or for the purpose of committing suicide. Having experienced four patients who were injured accidentally in the eye by Gramoxone (herbicide containing paraquat and diquat), we report these cases with the review of the literatures.
Diquat
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Humans
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Paraquat*
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Suicide
2.Analysis of 1 case of convulsion death caused by large dose of diquat poisoning.
Yu Quan CHEN ; Kai Ju CHEN ; Yue LYU ; Zhi Qian YANG ; Wen Zhong JIANG ; Yi Min LIU
Chinese Journal of Industrial Hygiene and Occupational Diseases 2022;40(1):75-77
A retrospective analysis of a case of death from sudden convulsions caused by oral high-dose diquat was conducted, and the mechanism and treatment of central damage caused by diquat were investigated to lay the foundation for increasing the success rate of treatment of high-dose diquat poisoning. At the same time, at the same time, our clinical treatment experience has also been accumulated.
Diquat
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Humans
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Poisoning
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Retrospective Studies
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Seizures
3.The research progress of nervous system damage caused by diquat poisoning.
Xiao Ying ZHANG ; Guo Qiang LI ; Bin LIU
Chinese Journal of Industrial Hygiene and Occupational Diseases 2022;40(8):636-640
In recent years, with the withdrawal of paraquat (PQ) pesticides from the market, the number of poisoning cases caused by its substitute diquat (DQ) has shown an increasing trend year by year. Among the clinical manifestations of DQ poisoning, the damage to the central nervous system is relatively common and serious, but the specific toxicity mechanism is not clear, and there is no clear treatment. This article reviews the nervous system damage caused by DQ poisoning in order to improve the understanding systen of DQ poisoning.
Diquat
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Herbicides
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Humans
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Nervous System
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Paraquat
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Poisoning
4.A case of delayed peripheral neuropathy caused by diquat poisoning.
Qi CUI ; Zhen Kai LI ; Bin LI ; Chao WANG ; Chun Hua SU
Chinese Journal of Industrial Hygiene and Occupational Diseases 2023;41(4):309-312
Diquat is a kind of conductive contact-killing herbicides. The damage of central nervous system is relatively common, but the peripheral neuropathy caused by diquat has not been reported yet. In September 2021, we treated a patient with diquat poisoning. During the hospitalization, the patient was diagnosed with peripheral neuropathy. Therapy for peripheral nerve injury was given on the basis of conventional treatment of poisoning. The patient was discharged after his condition was stable. The follow-up showed that the peripheral neuropathy of patient was better than before. According to the condition of this patient, it is suggested that we should not only protect the function of gastrointestinal tract, liver, kidney, and central nervous system early, but should also pay attention to the damage of peripheral nervous system in clinical work. We should intervene earlier to improve the prognosis of patients.
Humans
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Diquat
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Herbicides
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Kidney
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Liver
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Peripheral Nerve Injuries
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Poisoning
5.Experimental study on the toxicokinetics and gastrointestinal damage in rats poisoned with acute diquat poisoning at different exposure doses.
Jianshuang ZHANG ; Yiqing SUN ; Hengbo GAO ; Lin YUAN ; Dongqi YAO ; Liang LIU ; Baopu LYU ; Yingping TIAN
Chinese Critical Care Medicine 2023;35(6):651-657
OBJECTIVE:
To observe the toxicokinetic parameters, absorption characteristics and pathomorphological damage in different parts of the gastrointestinal tract of rats poisoned with different doses of diquat (DQ).
METHODS:
Ninety-six healthy male Wistar rats were randomly divided into a control group (six rats) and low (115.5 mg/kg), medium (231.0 mg/kg) and high (346.5 mg/kg) dose DQ poisoning groups (thirty rats in each dose group), and then the poisoning groups were randomly divided into 5 subgroups according to the time after exposure (15 minutes and 1, 3, 12, 36 hours; six rats in each subgroup). All rats in the exposure groups were given a single dose of DQ by gavage. Rats in the control group was given the same amount of saline by gavage. The general condition of the rats was recorded. Blood was collected from the inner canthus of the eye at 3 time points in each subgroup, and rats were sacrificed after the third blood collection to obtain gastrointestinal specimens. DQ concentrations in plasma and tissues were determined by ultra-high performance liquid chromatography and mass spectrometry (UPHLC-MS), and the toxic concentration-time curves were plotted to calculate the toxicokinetic parameters; the morphological structure of the intestine was observed under light microscopy, and the villi height and crypt depth were determined and the ratio (V/C) was calculated.
RESULTS:
DQ was detected in the plasma of the rats in the low, medium and high dose groups 5 minutes after exposure. The time to maximum plasma concentration (Tmax) was (0.85±0.22), (0.75±0.25) and (0.25±0.00) hours, respectively. The trend of plasma DQ concentration over time was similar in the three dose groups, but the plasma DQ concentration increased again at 36 hours in the high dose group. In terms of DQ concentration in gastrointestinal tissues, the highest concentrations of DQ were found in the stomach and small intestine from 15 minutes to 1 hour and in the colon at 3 hours. By 36 hours after poisoning, the concentrations of DQ in all parts of the stomach and intestine in the low and medium dose groups had decreased to lower levels. Gastrointestinal tissue (except jejunum) DQ concentrations in the high dose group tended to increase from 12 hours. Higher doses of DQ were still detectable [gastric, duodenal, ileal and colonic DQ concentrations of 6 400.0 (1 232.5), 4 889.0 (6 070.5), 10 300.0 (3 565.0) and 1 835.0 (202.5) mg/kg respectively]. Light microscopic observation of morphological and histopathological changes in the intestine shows that acute damage to the stomach, duodenum and jejunum of rats was observed 15 minutes after each dose of DQ, pathological lesions were observed in the ileum and colon 1 hour after exposure, the most severe gastrointestinal injury occurred at 12 hours, significant reduction in villi height, significant increase in crypt depth and lowest V/C ratio in all segments of the small intestine, damage begins to diminish by 36-hour post-intoxication. At the same time, morphological and histopathological damage to the intestine of rats at all time points increased significantly with increasing doses of the toxin.
CONCLUSIONS
The absorption of DQ in the digestive tract is rapid, and all segments of the gastrointestinal tract may absorb DQ. The toxicokinetics of DQ-tainted rats at different times and doses have different characteristics. In terms of timing, gastrointestinal damage was seen at 15 minutes after DQ, and began to diminish at 36 hours. In terms of dose, Tmax was advanced with the increase of dose and the peak time was shorter. The damage to the digestive system of DQ is closely related to the dose and retention time of the poison exposure.
Animals
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Male
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Rats
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Diquat/toxicity*
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Gastrointestinal Diseases
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Intestines
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Poisons
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Rats, Wistar
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Toxicokinetics
6.Imaging features of 10 patients with toxic encephalopathy caused by diquat.
Chinese Journal of Industrial Hygiene and Occupational Diseases 2022;40(5):362-365
Objective: To explore the CT and MRI imaging findings of diquat toxic encephalopathy. Methods: CT and MRI imaging features of 10 patients with diquat poisoning encephalopathy who had been clinically diagnosed were retrospectively reviewed. Results: CT was performed in all 10 patients, and MRI was performed in 8 patients. In 10 patients, 7 had positive signs on CT, and 8 patients with MRI examination had abnormal changes in the images. The main CT findings were symmetrical hypodensity in bilateral cerebellar hemisphere, brainstem, thalamus and basal ganglia, and swelling of brain tissue. The main MRI findings were symmetrical lesions and brain edema in the deep nuclei of cerebellar hemisphere, brainstem, thalamus and basal ganglia, low signal on T1WI, high signal on T2WI and T2-FLAIR, and cytotoxic edema on diffusion weighted imaging (DWI) . On review after treatment, both CT and MRI showed resorption of the lesion, which narrowed in size. Conclusion: The imaging findings of diquat poisoning encephalopathy are characteristic and the location of the lesion is characteristic, and CT and MRI have a certain diagnostic value in diquat poisoning encephalopathy, which is important for clinical treatment.
Brain Diseases
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Diffusion Magnetic Resonance Imaging/methods*
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Diquat
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Humans
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Magnetic Resonance Imaging/methods*
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Neurotoxicity Syndromes/etiology*
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Retrospective Studies