Iovanov Rareș, Cornilă Andreea, Bogdan Cătălina, Hales Dana, Tomuță Ioan, Achim Marcela, Tăut Andrada, Iman Nela, Casian Tibor, Iurian Sonia
Department of Pharmaceutical Technology and Biopharmacy, Faculty of Pharmacy, "Iuliu Hațieganu" University of Medicine and Pharmacy, 41 Victor Babeș Street, Cluj-Napoca, Romania.
Department of Pharmaceutical Technology and Biopharmacy, Faculty of Pharmacy, "Iuliu Hațieganu" University of Medicine and Pharmacy, 41 Victor Babeș Street, Cluj-Napoca, Romania.
Eur J Pharm Sci. 2024 Jul 1;198:106801. doi: 10.1016/j.ejps.2024.106801. Epub 2024 May 15.
Orodispersible tablets (ODTs) represent a growing category of dosage forms intended to increase the treatment acceptability for special groups of patients. ODTs are designed to rapidly disintegrate in the oral cavity and to be administered without water. In addition, ODTs are easy to manufacture using standard excipients and pharmaceutical equipment. This study adds to previously published research that developed an instrumental tool to predict oral disintegration and texture-related palatability of ODTs with different formulations. The current study aimed to challenge the predictive capacity of the models under variable process conditions. The studied process parameters with potential impact on the pharmaceutical properties, texture profiles, and palatability were the compression pressure, punch shape and diameter. Subsequently, for all the placebo and drug-loaded ODTs, the in vivo disintegration time and texture-related palatability were determined with healthy volunteers. Previously developed regression models were applied to predict the formulation's disintegration time and texture-related palatability characteristics of ODTs obtained under different experimental conditions. The influence of process variables on the predictive performance of the models was estimated by calculating the residuals as the difference between the predicted and observed values for the investigated response. Increasing the speed of the analyser`s probe from 0.01 mm/s to 0.02 mm/s led to an improved differentiation of the texture profiles. The in vivo disintegration time and texture-related palatability scores were only influenced by the mechanical resistance and the tablet shape. Lower score was observed for the larger diameter tablets (10 mm). Overall, the prediction of the disintegration time at 0.02 mm/s was more accurate, except for stronger tablets. The best prediction of texture-related palatability was achieved for the 10 mm tablets, tested at 0.01 mm/s speed. The same model achieved good predictions of the oral disintegration time for all API-loaded formulations, which confirmed the ability of the texture analysis to capture process-related variability. Drug loading decreased the predictive capacity of the texture-related palatability because of the taste effect.
口腔崩解片(ODTs)是一类不断发展的剂型,旨在提高特殊患者群体的治疗接受度。口腔崩解片的设计目的是在口腔中迅速崩解,无需用水即可给药。此外,使用标准辅料和制药设备即可轻松生产口腔崩解片。本研究补充了之前发表的研究,该研究开发了一种工具来预测不同配方口腔崩解片的口腔崩解时间和质地相关的适口性。当前研究旨在挑战模型在可变工艺条件下的预测能力。对药物性质、质地特征和适口性有潜在影响的研究工艺参数包括压缩压力、冲头形状和直径。随后,针对所有安慰剂和载药口腔崩解片,测定了健康志愿者的体内崩解时间和质地相关的适口性。应用先前开发的回归模型来预测在不同实验条件下获得的口腔崩解片的配方崩解时间和质地相关的适口性特征。通过计算残差(即预测值与观察值之间的差值)来估计工艺变量对模型预测性能的影响,该残差用于所研究的响应。将分析仪探头的速度从0.01 mm/s提高到0.02 mm/s可改善质地特征的区分度。体内崩解时间和质地相关的适口性评分仅受机械阻力和片剂形状的影响。较大直径(10 mm)的片剂得分较低。总体而言,除了硬度较大的片剂外,以0.02 mm/s预测崩解时间更为准确。对于以0.01 mm/s速度测试的10 mm片剂,质地相关适口性的预测效果最佳。同一模型对所有载有活性成分(API)的配方的口腔崩解时间都有良好的预测,这证实了质地分析能够捕捉与工艺相关的变异性。由于味道的影响,药物负载降低了质地相关适口性的预测能力。