乙醇及其非氧化代谢物的死后/动态分布在被毒害的子中
Qianwen Shi1,2,3, Lele Wang1,2,3, Wenyue Li1,2,3,4
1School of Forensic Medicine, Shanxi Medical University, Jinzhong, 030600, Shanxi, China.
Scientific reports
|November 14, 2024
概括
乙醇代谢物的法医毒动力学尚不清楚. 这项研究研究了子中乙醇及其非氧化代谢物的死后分布和动态,确定了检测的最佳样本类型.
科学领域:
- 法医毒理学 法医毒理学
- 药理动力学 药理动力学
- 乙醇的新陈代谢过程
背景情况:
- 非氧化乙醇代谢物在法医毒理学中被认为是潜在的生物标志物.
- 这些代谢物的死后毒动力学仍然不完全理解.
- 澄清它们的分布对于准确的法医解释至关重要.
研究的目的:
- 调查乙醇及其非氧化代谢产物的同时死后和动态分布.
- 确定在法医调查中检测乙醇及其代谢物的最佳生物矩阵.
- 为了阐明代谢物度的依赖时间的变化.
主要方法:
- 在这项研究中使用了62只子.
- 在32只子中评估了死后分布,分为三组,使用不同剂量的乙醇.
- 研究了30只子的动态分布,在乙醇注射后的10个时间点被牺牲.
主要成果:
- 乙醇及其非氧化代谢产物在死后显示出类似的分布趋势.
- 身体液体是最佳的乙醇检测,而心脏,肝脏,脏和丸是首选的非氧化代谢物.
- 乙醇和代谢物度在8小时内达到峰值,然后下降;乙烯酸在肌肉和玻璃体中显示长时间检测.
结论:
- 这项研究提供了有关乙醇及其非氧化代谢产物的死后和动态分布的关键数据.
- 建议使用特定的组织来检测乙醇与其非氧化代谢产物.
- 这些发现增强了对法医科学中乙醇代谢产物实用性的理解.
相关概念视频
Types of Toxins
3.7K
Humans continually engage with an environment rich in potentially harmful chemicals. These are introduced to our bodies through inhalation, ingestion, or skin contact. These chemicals exist in various forms, such as air and environmental pollutants, agricultural chemicals, organic solvents, and heavy metals.
Air pollutants, primarily gases, pose significant threats to respiratory health, leading to conditions like hypoxia, lung cancer, and in extreme cases, death.
Environmental pollutants like...
Air pollutants, primarily gases, pose significant threats to respiratory health, leading to conditions like hypoxia, lung cancer, and in extreme cases, death.
Environmental pollutants like...
3.7K
Toxic Reactions: Overview
4.3K
When toxic substances penetrate the human body, they disseminate to various tissues, undergoing metabolic changes. This process yields reactive metabolites that may covalently bind with specific target molecules, resulting in toxicity.
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...
4.3K
Drug Elimination: Non-Renal Routes
3.2K
The liver plays a pivotal role in eliminating drugs and their metabolites, primarily through a process known as biliary excretion. This process involves the hepatocytes, the primary cells in the liver that generate bile. A range of transporters actively expels polar drugs or hydrophilic drug metabolites into the bile, which transports the drugs and metabolites into the small intestine. From here, they are eventually expelled from the body through feces. In some instances, the original drug or a...
3.2K
Enhanced Elimination of Poison
1.1K
Poison can be effectively removed from the gastrointestinal (GI) tract through various decontamination procedures.
Antidotes serve a crucial role in counteracting the effects of poison by inhibiting enzymes responsible for producing harmful drug metabolites. In some cases, these toxic metabolites can be neutralized by endogenous cosubstrates, which are maintained at specific concentrations to prevent interaction with cellular macromolecules and subsequent cell death.
Renal excretion is the...
Antidotes serve a crucial role in counteracting the effects of poison by inhibiting enzymes responsible for producing harmful drug metabolites. In some cases, these toxic metabolites can be neutralized by endogenous cosubstrates, which are maintained at specific concentrations to prevent interaction with cellular macromolecules and subsequent cell death.
Renal excretion is the...
1.1K
Drug Excretion: Miscellaneous Routes
515
Drug excretion involves various organs, including the liver, intestines, skin, and eyes. In the case of drugs or toxins, they can be actively secreted into bile by transporters in the hepatocyte's canalicular membrane. These substances enter the GI tract during digestion and may be reabsorbed into the body from the intestine. This process, known as enterohepatic recycling, can significantly prolong the presence and effects of a substance in the body. To interrupt this cycle, specific...
515
Toxicokinetics: Overview
330
Studies that assess how a drug is absorbed, distributed, metabolized, and excreted (ADME) at toxic doses are termed toxicokinetics. Understanding toxicokinetics helps predict adverse drug reactions (ADRs) and manage toxicity in humans.Toxicokinetics differs from pharmacokinetics mainly in the dose levels studied, with toxicokinetics focusing on higher toxic doses. The kinetics at these levels can be non-linear due to altered physiological processes. Toxicodynamics examines the relationship...
330


