Cheah C M, Leong K F, Chua C K, Low K H, Quek H S
Design Research Centre, School of Mechanical and Production Engineering, Nanyang Technological University, Singapore.
Proc Inst Mech Eng H. 2002;216(6):369-83. doi: 10.1243/095441102321032166.
From initial applications in the fields of prosthesis, implants, surgery planning, anthropology, paleontology and forensics, the scope of rapid prototyping (RP) biomedical applications has expanded to include areas in tissue engineering (TE) and controlled drug delivery. In the current investigation, the feasibility of utilizing selective laser sintering (SLS) to fabricate polymeric drug delivery devices (DDDs) that are difficult to make using conventional production methods was studied. Two features, namely porous microstructure and dense wall formation, inherent in SLS fabricated parts were investigated for their potential roles in drug storage and controlling the release of drugs through the diffusion process. A study to determine the influence of key SLS process parameters on dense wall formation and porous microstructure of SLS fabricated parts was carried out. Composite-type DDDs incorporating dense wall and porous matrix features were designed and fabricated using SLS. The characteristics of the fabricated devices were investigated through microstructural examination and in vitro release tests carried out using a drug model or dye in a simulated body environment.
从快速成型(RP)技术最初在假肢、植入物、手术规划、人类学、古生物学和法医学领域的应用开始,其生物医学应用的范围已经扩展到组织工程(TE)和可控药物递送等领域。在当前的研究中,研究了利用选择性激光烧结(SLS)制造使用传统生产方法难以制造的聚合物药物递送装置(DDD)的可行性。研究了SLS制造部件固有的两个特征,即多孔微观结构和致密壁形成,它们在药物储存以及通过扩散过程控制药物释放方面的潜在作用。开展了一项研究,以确定关键的SLS工艺参数对SLS制造部件的致密壁形成和多孔微观结构的影响。使用SLS设计并制造了具有致密壁和多孔基质特征的复合型DDD。通过微观结构检查以及在模拟人体环境中使用药物模型或染料进行的体外释放试验,对制造出的装置的特性进行了研究。