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Formulation and Manufacturing Process: Physical Attributes of Generic Tablets and Capsules01:18

Formulation and Manufacturing Process: Physical Attributes of Generic Tablets and Capsules

293
Bioequivalence in generic drugs, such as tablets and capsules, refers to their pharmaceutical equivalence to the brand-name counterparts. However, for therapeutic equivalence, manufacturers must also consider physical attributes like size, shape, and weight (FDA Guidance for Industry, December 2003). Discrepancies in these aspects could impact patient compliance and cause medication errors. For instance, swallowing difficulties, often experienced with larger tablets or capsules, can lead to...
293
Factors Influencing Drug Absorption: Pharmaceutical Parameters01:28

Factors Influencing Drug Absorption: Pharmaceutical Parameters

386
Solid dosage forms such as tablets and capsules undergo rigorous manufacturing processes to ensure stability and effectiveness. Their dissolution and absorption properties are influenced significantly by the choice of excipients (inactive ingredients that serve various roles in the formulation), and the methodology applied during production. The manufacturing parameters, such as compression force and granulation techniques, significantly affect dissolution rates. Elevated compression forces...
386
Pharmaceutical Alternatives: Polymorphic Form-Related and Particle Size-Related Therapeutic Nonequivalence01:27

Pharmaceutical Alternatives: Polymorphic Form-Related and Particle Size-Related Therapeutic Nonequivalence

141
Changes in polymorphic forms can significantly influence the bioavailability of poorly soluble drugs. Although the FDA defines pharmaceutical equivalence based on having the same active ingredient, dosage form, and route of administration, it does not automatically disqualify products with different polymorphic forms. This means two products with different polymorphs can still be deemed pharmaceutically equivalent. However, polymorphic differences can affect properties like wettability,...
141
Factors Affecting Dissolution: Particle Size and Effective Surface Area01:23

Factors Affecting Dissolution: Particle Size and Effective Surface Area

1.6K
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...
1.6K
Factors Affecting Dissolution: Polymorphism, Amorphism and Pseudopolymorphism01:21

Factors Affecting Dissolution: Polymorphism, Amorphism and Pseudopolymorphism

649
Polymorphism refers to the existence of a drug substance in multiple crystalline forms, known as polymorphs. Recently, this term has been expanded to include solvates (forms containing a solvent), amorphous forms (non-crystalline forms), and desolvated solvates (forms from which the solvent has been removed).
Some polymorphic crystals possess lower aqueous solubility than their amorphous counterparts, leading to incomplete absorption. For instance, the oral suspension of Chloramphenicol, which...
649
In Vitro Drug Dissolution: Compendial Testing Models I01:13

In Vitro Drug Dissolution: Compendial Testing Models I

211
Compendial dissolution methods are standardized procedures defined by pharmacopeias to evaluate the rate at which a drug dissolves in a specific medium. These methods ensure batch-to-batch consistency, enable quality control, and support the prediction of drug bioavailability. They are critical for both immediate and modified-release drug products.The apparatuses used for dissolution testing differ in their design and mechanical function, but all aim to simulate the physiological environment of...
211

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Updated: Jan 11, 2026

Formation of Dispersible Taohong Siwu Tablets
05:44

Formation of Dispersible Taohong Siwu Tablets

Published on: February 3, 2023

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快速分解的颗粒:配方和评估

Suhad Anabousi1, Hani Naseef1, Moammal Qurt1

  • 1Department of Pharmacy, Faculty of Pharmacy, Nursing and Health Professions, Birzeit University, West Bank,, State of Palestine, 14, Palestinian Territory.

F1000Research
|November 10, 2025
PubMed
概括

这项研究开发了快速分解的基于微晶纤维素 (MCC) 的颗粒,使用挤出-球体化. 优化的配方含有曼尼托尔,聚乙烯甘醇400,聚普拉斯顿和croscarmellose,在2分钟内实现了快速分解.

科学领域:

  • 制药技术 制药技术 制药技术
  • 药物输送系统 药物输送系统
  • 材料科学 材料科学 材料科学

背景情况:

  • 挤出球化是一种使用微晶纤维素 (MCC) 的常见颗粒生产方法.
  • 传统的MCC颗粒表现出不良的分解和延长的药物释放.
  • 这项研究解决了传统MCC颗粒的局限性.

研究的目的:

  • 开发基于MCC的快速分解颗粒.
  • 为了优化挤出-球形化参数,以提高颗粒的性能.
  • 为了研究配方辅助剂对分解时间的影响.

主要方法:

  • 用MCC,曼尼托尔,聚乙烯糖醇400 (PEG 400),聚普拉斯顿 (PPXL) 和十字卡梅洛斯 (CCS) 的挤出球化制备颗粒配方.
  • 包括挤出和球化速度在内的工艺参数得到了优化.
  • 评估了颗粒的物理特性和分解时间 (DT).

主要成果:

  • 最佳挤出速度被确定为500 RPM.
  • 一个从3000 RPM开始的球形化速度配置文件,并将其降低到1000 RPM,提高了颗粒球形性和减少了罚款.
  • 将PEG 400含量提高到20%,其中15%是CCS和5%是PPXL,显著减少了分解时间.
关键词:
挤出-球形化-球形化快速分解的小颗粒.颗粒 颗粒是一种颗粒.组合 组合 组合 组合 组合微晶纤维素的微晶纤维素.超级分解性的超级分解性

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结论:

  • 通过挤出-球体化成功生产了基于MCC的快速分解颗粒.
  • 曼尼托尔,PEG 400,CCS和PPXL的组合创造了一个多孔矩阵,增强了水的吸收和颗粒的快速分解 (2分钟内).
  • 这种配方策略克服了传统MCC颗粒的局限性,提供了改进的分解配置.