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相关概念视频

One-Compartment Open Model for IV Bolus Administration: Estimation of Clearance00:56

One-Compartment Open Model for IV Bolus Administration: Estimation of Clearance

329
Clearance is a key pharmacokinetic parameter that quantifies the volume of body fluid from which a drug is entirely removed within a specific time frame. It is crucial in assessing how a drug is eliminated from the body and has critical clinical applications.
In the one-compartment open model for intravenous (IV) bolus administration, clearance is estimated by dividing the elimination rate by the plasma drug concentration. This equation leverages the elimination rate constant and the apparent...
329
Drug Accumulation During Multiple Dosing: Repetitive IV Injections01:21

Drug Accumulation During Multiple Dosing: Repetitive IV Injections

239
Calculating drug dosage and accumulation in multiple-dose regimens is crucial for achieving therapeutic efficacy while avoiding toxicity. This involves determining the plasma drug concentrations over time to optimize dosing schedules. The principle of superposition is fundamental in this process, allowing for the prediction of drug concentration in plasma following multiple doses based on single-dose data.The principle of superposition asserts that the plasma concentration-time curves from...
239
Model Approaches for Pharmacokinetic Data: Compartment Models01:14

Model Approaches for Pharmacokinetic Data: Compartment Models

506
Compartmental analysis is a widely adopted approach to characterizing drug pharmacokinetics. It uses compartment models that conceptualize the body as a collection of reversibly communicating compartments, each representing a group of tissues exhibiting similar drug distribution characteristics. The movement rate of the drug between these compartments is typically described by first-order kinetics.
Two primary types of compartment models are recognized: mammillary and catenary. The more...
506
Nonlinear Pharmacokinetics: Drug Elimination for IV Bolus Injection00:59

Nonlinear Pharmacokinetics: Drug Elimination for IV Bolus Injection

388
In pharmacokinetics, the elimination rate of a drug following a capacity-limited model is primarily controlled by two parameters: Vmax and KM. These parameters are crucial in how the drug behaves inside the body after administration.
Following the administration of a single intravenous (IV) bolus injection, we can determine the concentration of the drug in the plasma at any given time. This calculation is achieved using a specific equation that integrates the values of Vmax and KM.
We can also...
388
One-Compartment Open Model for Extravascular Administration: Zero-Order Absorption Model01:12

One-Compartment Open Model for Extravascular Administration: Zero-Order Absorption Model

345
Extravascular administration, such as oral or intramuscular routes, is a non-invasive drug delivery method, often preferred for ease and patient compliance. A key factor here is absorption, which dictates how quickly and effectively the drug enters the bloodstream from the administration site. Absorption follows either zero-order or first-order kinetics.
Zero-order absorption maintains a steady rate irrespective of the amount of drug left to be absorbed, making it a constant process. In the...
345
Two-Compartment Open Model: Extravascular Administration01:12

Two-Compartment Open Model: Extravascular Administration

646
The two-compartment model for extravascular administration represents a drug's absorption and distribution process. It features a central compartment, where the drug is first absorbed, and a peripheral compartment, which illustrates the drug's distribution throughout the body. The rate of change in drug concentration in the central compartment is calculated by three exponents: absorption, distribution, and elimination.
The absorption exponent (ka) indicates the speed at which the drug...
646

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相关实验视频

Updated: Jan 10, 2026

An Alternative and Validated Injection Method for Accessing the Subretinal Space via a Transcleral Posterior Approach
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An Alternative and Validated Injection Method for Accessing the Subretinal Space via a Transcleral Posterior Approach

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一个用于预测皮下注射泄漏的计算框架.

Mario de Lucio1, Pavlos P Vlachos1, Hector Gomez1

  • 1School of Mechanical Engineering, Purdue University, 585 Purdue Mall, West Lafayette IN 47907, USA.

International journal of pharmaceutics
|November 26, 2025
PubMed
概括

计算模型现在可以预测注射后皮下药物泄漏,帮助确保药物的疗效. 这项研究解决了流体逆流的关键问题,改善了生物药物输送.

科学领域:

  • 生物医学工程 生物医学工程
  • 药理学 药理学是指药理学的学科.
  • 计算流体动力学的流体动力学.

背景情况:

  • 生物药物的皮下注射是慢性疾病的常见药物输送途径.
  • 注射药物从皮下组织泄漏或反流可能会降低药物的疗效.
  • 现有的计算模型无法预测药物泄漏动态.

研究的目的:

  • 开发一个高保真度的计算框架来建模皮下药物泄漏.
  • 通过实验数据验证模型.
  • 评估各种注射参数对泄漏的影响.

主要方法:

  • 开发一个模拟皮肤和皮下组织的计算模型.
  • 整合了简化的皮肤和皮下形态.
  • 使用关于组织胀和泄漏的实验数据进行验证.

主要成果:

  • 一个经过验证的计算框架,用于预测药物泄漏动态.
  • 评估影响泄漏的关键参数,包括注射深度,体积,针尺,位置和等待时间.

结论:

  • 开发的模型为了解和预测皮下注射泄漏提供了一个新的工具.
关键词:
自动注射器自动注射器逆流回流是指逆流的情况.泄漏情况 泄漏情况单克隆抗体是一种单克隆抗体.预装注射器注射器预装注射器皮下注射 皮下注射 皮下注射

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  • 这种框架可以优化药物输送策略并改善治疗结果.
  • 进一步的研究可以为各种临床应用改进该模型.