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片剂崩解过程中液体传递和溶胀性能的同步研究。

Simultaneous investigation of the liquid transport and swelling performance during tablet disintegration.

机构信息

Department of Chemical Engineering and Biotechnology, University of Cambridge, Cambridge CB3 0AS, UK.

Strathclyde Institute of Pharmacy and Biomedical Sciences, University of Strathclyde, 161 Cathedral Street, G4 0RE Glasgow, UK; EPSRC Centre for Innovative Manufacturing in Continuous Manufacturing and Crystallisation, University of Strathclyde, 99 George Street, G1 1RD Glasgow, UK.

出版信息

Int J Pharm. 2020 Jun 30;584:119380. doi: 10.1016/j.ijpharm.2020.119380. Epub 2020 May 11.

Abstract

Fast disintegrating tablets have commonly been used for fast oral drug delivery to patients with swallowing difficulties. The different characteristics of the pore structure of such formulations influence the liquid transport through the tablet and hence affect the disintegration time and the release of the drug in the body. In this work, terahertz time-domain spectroscopy and terahertz pulsed imaging were used as promising analytical techniques to quantitatively analyse the impact of the structural properties on the liquid uptake and swelling rates upon contact with the dissolution medium. Both the impact of porosity and formulation were investigated for theophylline and paracetamol based tablets. The drug substances were either formulated with functionalised calcium carbonate (FCC) with porosities of 45% and 60% or with microcrystalline cellulose (MCC) with porosities of 10% and 25%. The terahertz results reveal that the rate of liquid uptake is clearly influenced by the porosity of the tablets with a faster liquid transport observed for tablets with higher porosity, indicating that the samples exhibit structural similarity in respect to pore connectivity and pore size distribution characteristics in respect to permeability. The swelling of the FCC based tablets is fully controlled by the amount of disintegrant, whereas the liquid uptake is driven by the FCC material and the interparticle pores created during compaction. The MCC based formulations are more complex as the MCC significantly contributes to the overall tablet swelling. An increase in swelling with increasing porosity is observed in these tablets, which indicates that such formulations are performance-limited by their ability to take up liquid. Investigating the effect of the microstructure characteristics on the liquid transport and swelling kinetics is of great importance for reaching the next level of understanding of the drug delivery, and, depending on the surface nature of the pore carrier function, in turn controlling the performance of the drug mainly in respect to dissolution in the body.

摘要

速崩片常用于为吞咽困难的患者快速口腔给药。这些制剂不同的孔结构特征影响着液体在片剂中的传输,从而影响崩解时间和药物在体内的释放。在这项工作中,太赫兹时域光谱和太赫兹脉冲成像被用作有前途的分析技术,定量分析结构特性对与溶解介质接触时液体吸收和溶胀速率的影响。茶碱和对乙酰氨基酚片考察了孔隙率和配方的影响。药物分别与具有 45%和 60%孔隙率的功能化碳酸钙(FCC)或具有 10%和 25%孔隙率的微晶纤维素(MCC)制成制剂。太赫兹结果表明,液体吸收速率明显受到片剂孔隙率的影响,具有较高孔隙率的片剂具有更快的液体传输速度,表明样品在孔连通性和孔径分布特征方面具有结构相似性,渗透性。FCC 基片剂的溶胀完全由崩解剂的量控制,而液体吸收则由 FCC 材料和压缩过程中形成的颗粒间孔隙驱动。MCC 基配方更为复杂,因为 MCC 显著促进了整个片剂的溶胀。在这些片剂中观察到随着孔隙率的增加而增加的溶胀,这表明这些制剂的性能受到其吸收液体的能力的限制。研究微观结构特征对液体传输和溶胀动力学的影响对于深入了解药物输送具有重要意义,并且取决于孔载体功能的表面性质,反过来又主要控制药物在体内溶解方面的性能。

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