Division of Pharmaceutical Chemistry and Technology, Faculty of Pharmacy, University of Helsinki, FI-00014 Helsinki, Finland.
Laboratory of Industrial Physics, Department of Physics, University of Turku, FI-20014 Turku, Finland.
Acta Biomater. 2017 Jan 15;48:238-246. doi: 10.1016/j.actbio.2016.10.042. Epub 2016 Nov 1.
Harsh conditions of the gastrointestinal tract hinder the oral delivery of many drugs. Developing oral drug delivery systems based on commercially available materials is becoming more challenging due to the demand for simultaneously delivering physicochemically different drugs for treating complex diseases. A novel architecture, namely nanotube-in-microsphere, was developed as a drug delivery platform by encapsulating halloysite nanotubes (HNTs) in a pH-responsive hydroxypropyl methylcellulose acetate succinate polymer using microfluidics. HNTs were selected as orally acceptable clay mineral and their lumen was enlarged by selective acid etching. Model drugs (atorvastatin and celecoxib) with different physicochemical properties and synergistic effect on colon cancer prevention and inhibition were simultaneously incorporated into the microspheres at a precise ratio, with atorvastatin and celecoxib being loaded in the HNTs and polymer matrix, respectively. The microspheres showed spherical shape, narrow particle size distribution and pH-responsive dissolution behavior. This nanotube/pH-responsive polymer composite protected the loaded drugs from premature release at pH⩽6.5, but allowed their fast release and enhanced the drug permeability, and the inhibition of colon cancer cell proliferation at pH 7.4. Overall, the nano-in-micro drug delivery composite fabricated by microfluidics is a promising and flexible platform for the delivery of multiple drugs for combination therapy.
Halloysite nanotubes (HNTs) are attracting increasing attention for drug delivery applications. However, conventional HNTs-based oral drug delivery systems are lack of the capability to precisely control the drug release at a desired site in the gastrointestinal tract. In this study, a nanotube-in-microsphere drug delivery platform is developed by encapsulating HNTs in a pH-responsive polymer using microfluidics. Drugs with different physicochemical properties and synergistic effect on colon cancer therapy were simultaneously incorporated in the microspheres. The prepared microspheres prevented the premature release of the loaded drugs after exposure to the harsh conditions of the gastrointestinal tract, but allowed their simultaneously fast release, and enhanced the drug permeability and the inhibition of colon cancer cell proliferation in response to the colon pH.
胃肠道的恶劣条件阻碍了许多药物的口服递送。由于需要同时递送给治疗复杂疾病的物理化学性质不同的药物,因此基于市售材料开发口服药物递送系统变得更加具有挑战性。
通过使用微流控技术将羟丙基甲基纤维素醋酸琥珀酸酯聚合物中的 halloysite 纳米管(HNTs)封装在 pH 响应性聚合物中,开发了一种新型纳米管-微球药物递送平台。选择 HNTs 作为可口服接受的粘土矿物,并通过选择性酸蚀刻扩大其管腔。将具有不同物理化学性质和协同作用的模型药物(阿托伐他汀和塞来昔布)以精确比例同时掺入微球中,阿托伐他汀和塞来昔布分别装载在 HNTs 和聚合物基质中。
微球呈球形,粒径分布较窄,具有 pH 响应性溶解行为。该纳米管/pH 响应性聚合物复合材料在 pH ⩽6.5 时保护载药免受过早释放,但在 pH 7.4 时允许其快速释放并增强药物渗透性和抑制结肠癌细胞增殖。
总之,通过微流控技术制备的纳米-微药物递送复合材料是一种很有前途和灵活的平台,可用于多种药物的联合治疗。