Tablet fragmentation without a disintegrant: A novel design approach for accelerating disintegration and drug release from 3D printed cellulosic tablets

被引:134
作者
Arafat, Basel [1 ,2 ]
Wojsz, Magdalena [1 ,3 ]
Isreb, Abdullah [1 ]
Forbes, Robert T. [1 ]
Isreb, Mohammad [4 ]
Ahmed, Waqar [5 ]
Arafat, Tawfiq [6 ]
Alhnan, Mohamed A. [1 ]
机构
[1] Univ Cent Lancashire, Sch Pharm & Biomed Sci, Preston, Lancs, England
[2] Anglia Ruskin Univ, Fac Med Sci & Publ Hlth, Chelmsford, England
[3] Med Univ Warsaw, Fac Pharm, Lab Med Div, Warsaw, Poland
[4] Univ Bradford, Sch Pharm, Richmond Rd, Bradford, W Yorkshire, England
[5] Univ Lincoln, Coll Sci, Sch Math & Phys, Lincoln, Lincs, England
[6] Petra Univ, Fac Pharm & Med Sci, Amman, Jordan
关键词
Cellulose; Patient-centred; Bespoke; Personalized; Gaplet; Additive manufacturing; Complex geometry; WATER-SOLUBLE DRUG; PHARMACEUTICAL EXCIPIENTS; ORAL BIOAVAILABILITY; DISSOLUTION RATE; FABRICATION; DOSAGE;
D O I
10.1016/j.ejps.2018.03.019
中图分类号
R9 [药学];
学科分类号
100702 [药剂学];
摘要
Fused deposition modelling (FDM) 3D printing has shown the most immediate potential for on-demand dose personalisation to suit particular patient's needs. However, FDM 3D printing often involves employing a relatively large molecular weight thermoplastic polymer and results in extended release pattern. It is therefore essential to fast-track drug release from the 3D printed objects. This work employed an innovative design approach of tablets with unique built-in gaps (Gaplets) with the aim of accelerating drug release. The novel tablet design is composed of 9 repeating units (blocks) connected with 3 bridges to allow the generation of 8 gaps. The impact of size of the block, the number of bridges and the spacing between different blocks was investigated. Increasing the inter-block space reduced mechanical resistance of the unit, however, tablets continued to meet pharmacopeial standards for friability. Upon introduction into gastric medium, the 1 mm spaces gaplet broke into mini-structures within 4 min and ma the USP criteria of immediate release products (86.7% drug release at 30 min). Real-time ultraviolet (UV) imaging indicated that the cellulosic matrix expanded due to swelling of hydroxypropyl cellulose (HPC) upon introduction to the dissolution medium. This was followed by a steady erosion of the polymeric matrix a a rate of 8 mu m/min. The design approach was more efficient than a comparison conventional formulation approach of adding disintegrants to accelerate tablet disintegration and drug release. This work provides a novel example where computer-aided design was instrumental a modifying the performance of solid dosage forms. Such an example may serve as the foundation for a new generation of dosage forms with complicated geometric structures to achieve functionality that is usually achieved by a sophisticated formulation approach.
引用
收藏
页码:191 / 199
页数:9
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