来自双层核心外聚合物微球的药物输送的数学建模
bioRxiv : the preprint server for biology
|January 31, 2024
概括
这项研究引入了数值模型来预测双层微球中的药物释放,优化药物输送系统,以改善患者的服药性和减少剂量频率.
科学领域:
- 生物材料科学 生物材料科学
- 制药科学 制药科学
- 计算建模 计算建模
背景情况:
- 慢性疾病需要频繁的药物管理,往往导致患者不适应.
- 先进的药物输送系统旨在减少剂量频率并延长药物释放时间,但进入市场是漫长的.
- 双层核心外微球为控制药物释放提供了一个有希望的平台.
研究的目的:
- 开发和验证数值模型,用于估计从双层核心外微球中扩散控制的药物释放中的关键参数.
- 为优化微球设计和指导实验开发提供见解.
- 提高药物输送装置的整体有效性.
主要方法:
- 采用两种不同的数值方法来估计关键释放参数.
- 专注于包括爆发释放,构成聚合物的药物扩散系数和药物分区系数在内的参数.
- 对实验数据进行验证的模型预测.
主要成果:
- 在数值模型和实验观测之间取得了良好的一致性.
- 成功估计了控制药物扩散和释放动态的关键参数.
- 证明了模型在理解和预测药物释放行为的实用性.
结论:
- 开发的数值方法准确地预测了双层微球中的药物释放.
- 这些模型可以加速优化和开发新型药物输送系统.
- 该方法可以适应多层球形系统,扩大其适用性.
相关概念视频
Factors Affecting Dissolution: Particle Size and Effective Surface Area
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Dissolution kinetics, an essential aspect of oral drug delivery, is significantly influenced by the drug's particle size. According to the Noyes-Whitney dissolution model, the dissolution rate correlates directly with the drug's surface area. The larger the surface area, the higher the drug's solubility in water, leading to a faster drug dissolution rate. Reducing particle size increases the effective surface area, enhancing the dissolution process. Micronization and nanosizing are...
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Theories of Dissolution: Diffusion Layer Model
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Dissolution, the process by which drug particles dissolve in a solvent, is explained by the diffusion layer model, a theoretical framework that simulates the absorption of oral drugs and allows us to analyze experimental data.
This process starts with a thin layer, saturated with the drug, forming at the interface between the solid and liquid. The solute then diffuses from this layer into the main solution. The Noyes-Whitney equation suggests that the rate of dissolution relies on the diffusion...
This process starts with a thin layer, saturated with the drug, forming at the interface between the solid and liquid. The solute then diffuses from this layer into the main solution. The Noyes-Whitney equation suggests that the rate of dissolution relies on the diffusion...
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Three-Compartment Open Model
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The three-compartment open model is a pharmacokinetic model used to describe the distribution and elimination of drugs following extravascular administration. It comprises a central compartment representing the plasma and two peripheral compartments. The highly perfused peripheral compartment represents organs and tissues with a rich blood supply, such as the liver, kidneys, and lungs. The scarcely perfused peripheral compartment represents tissues with lower blood supply, such as adipose...
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One-Compartment Open Model for IV Bolus Administration: General Considerations
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The one-compartment model is a pharmacokinetic tool that models the body as a single, uniform compartment, facilitating the understanding of drug distribution and elimination. This model is particularly beneficial for intravenous (IV) bolus administration, where the drug rapidly circulates throughout the body.
The drug's presence in the body is defined by an equation representing the difference between the rates of drug entry and exit. Key parameters—elimination rate constant,...
The drug's presence in the body is defined by an equation representing the difference between the rates of drug entry and exit. Key parameters—elimination rate constant,...
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One-Compartment Open Model for Extravascular Administration: Zero-Order Absorption Model
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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...
Zero-order absorption maintains a steady rate irrespective of the amount of drug left to be absorbed, making it a constant process. In the...
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Two-Compartment Open Model: IV Bolus Administration
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The two-compartment model for intravenous (IV) bolus administration illustrates drug distribution in the body, subdividing it into central and peripheral compartments. This model operates on the concept of two-compartment kinetics. The drug's plasma concentration shows a bi-exponential decline following IV bolus administration, signaling the presence of two disposition processes: distribution and elimination.
The disparity between drug input and the sum of drug transfer rates between...
The disparity between drug input and the sum of drug transfer rates between...
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