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Drug Distribution: Tissue Binding01:21

Drug Distribution: Tissue Binding

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Upon entering the systemic circulation, drugs can distribute into the interstitial and intracellular fluid of various tissue cells. This distribution is facilitated by the binding of drugs to different cellular components within tissues, which may lead to drug accumulation in specific areas. Drugs bound to tissue components serve as reservoirs that release free drugs back into the system, prolonging the drug's overall action. However, this accumulation can also result in local toxicity.
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Drug Abuse and Addiction: Pharmacological Phenomena01:15

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Drug dependence, abuse, and addiction are complex phenomena that can precipitate various abnormal states. Physical dependence refers to a state of pharmacological adaptation to a drug. This adaptation often results in tolerance—a reduced response to the drug after repeated administrations. When the drug use is abruptly stopped, withdrawal symptoms occur due to the body's need to readjust from the pharmacologically induced imbalance. However, tolerance and withdrawal symptoms do not...
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Opioid Analgesics: Synthetic and Semisynthetic Opioids01:15

Opioid Analgesics: Synthetic and Semisynthetic Opioids

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Synthetic and semisynthetic opioids are pivotal in pain management and tackling opioid addiction. Semisynthetic opioids, including morphinans (morphine derivatives), oxycodone, oxymorphone, hydrocodone, and hydromorphone, have improved pharmacokinetic profiles compared to morphine. Additionally, heroin and 6-MAM (6-Monoacetylmorphine) show better CNS penetration than morphine due to heightened lipid solubility. Hydromorphone, a potent opioid, undergoes hepatic metabolism to form the active...
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Noncompartmental Analysis: Mean Transit, Absorption and Dissolution Time01:02

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When drugs are administered extravascularly, a comprehensive evaluation through noncompartmental analysis becomes imperative. This analytical approach considers various parameters that play a crucial role in understanding the pharmacokinetics of these drugs.
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Compartment Models: Two-Compartment Model01:20

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The two-compartment model divides the body into central and peripheral compartments to account for varying blood perfusion rates among organs and tissues, affecting drug distribution. The central compartment includes blood and highly perfused tissues with rapid drug distribution, while the peripheral compartment contains tissues with slower drug distribution. After a single IV bolus dose, the drug concentration is high in plasma and low in tissues. The drug distribution between compartments...
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Drug Concentrations: Measurements01:23

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Drug concentration is the quantity of a drug present in a biological sample. Measuring drug amounts in biological samples allows the clinician to understand how a drug is absorbed, distributed, metabolized, and excreted. Samples can be obtained through invasive or non-invasive methods. Invasive techniques involve surgical or parenteral interventions to gather blood, cerebrospinal fluid, or tissue biopsy. Conversely, non-invasive approaches provide samples like urine, feces, and saliva.
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在慢性甲消费者中不典型的死后再分配.

Béatrice Garneau1, Cynthia Roy1, Julie Motard1

  • 1Department of Toxicology, Laboratoire de sciences judiciaires et de médecine légale, 1701 Parthenais St., Montréal, Québec H2K 3S7, Canada.

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|March 16, 2024
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概括

甲的重新分配导致死亡后血液度变化. 分析多个血液来源,而不仅仅是大腿,对于慢性使用者的准确解释至关重要.

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科学领域:

  • 法医毒理学 法医毒理学
  • 药理学 药理学是指药理学的学科.

背景情况:

  • 甲呈现出中度的死后再分配,其中中央至外周血液比率 (C/P) 的高变化.
  • 以前的文献表明C/P比通常高于1,但存在非典型的病例.

研究的目的:

  • 描述了一系列慢性甲使用者的病例系列,其非典型的C/P比率<1.
  • 调查非典型的C/P比率的原因及其对毒理学解释的影响.

主要方法:

  • 对10名慢性使用者的股骨,心脏和死前血液样本中甲及其代谢物EDDP的分析.
  • 审查病例史,病理发现和其他毒理学数据.

主要成果:

  • 确定了10例C/P比率在0.26到0.82之间.
  • 在中央和外围,EDDP度相似,这表明死后的甲重新分配.
  • 第4个案例表明,大腿血液中甲的度明显高于心脏和死前血液,突出显示了心脏血液的代表性.

结论:

  • 慢性甲使用者的非典型C/P比率<1很可能是由于死后从组织再分配到股骨血液.
  • 仅仅依靠大腿血液可以导致误导性的毒理学解释.
  • 对多个血液来源的分析对于在慢性使用者中准确的死后甲解释至关重要.