Department of Engineering Sciences, Nanotechnology & Functional Materials Institution, Uppsala University, Uppsala, Sweden.
Nanomedicine (Lond). 2013 Jan;8(1):57-64. doi: 10.2217/nnm.12.77. Epub 2012 Aug 14.
Mesoporous silica particles are highly promising nanomaterials for biomedical applications. They can be used to improve bioavailability, solubility and drug stability and to protect drugs from the acidic conditions of the stomach, leading to increased drug effectiveness. Their biocompatibility in vivo has recieved little attention, in particular regarding oral administration.
To study the oral tolerance of micron-sized nanoporous folic acid-templated material-1 (cylindrical, 2D hexagonal pore structure) and nanometer-sized anionic-surfactant-templated mesoporous silica material-6 (cylindrical, 3D cubic pore structure) mesoporous silica particles in Sprague Dawley rats.
MATERIALS & METHODS: A dose stepwise procedure or range finding test was followed by a consequent confirmatory test. The confirmatory test included daily administrations of 2000 and 1200 mg/kg doses for nanoporous folic acid-templated material-1 and anionic-surfactant-templated mesoporous silica material-6, respectively.
The maximum tolerated dose for anionic-surfactant-templated mesoporous silica material-6 was not reached. Similar results were observed for nanometer-sized anionic-surfactant-templated mesoporous silica material-1 in most of the animals, although adverse effects were observed in some animals that are most probably due to the administration by oral gavage of the formulated particles.
The results are promising for the use of mesoporous silica materials as drug-delivery systems in oral administration.
介孔硅颗粒是一种很有前途的生物医学应用纳米材料。它们可以用来提高生物利用度、溶解度和药物稳定性,并保护药物免受胃酸的影响,从而提高药物的疗效。它们在体内的生物相容性很少受到关注,特别是关于口服给药的情况。
研究微米级纳米多孔叶酸模板材料-1(圆柱形,二维六方孔结构)和纳米级阴离子表面活性剂模板介孔硅材料-6(圆柱形,三维立方孔结构)介孔硅颗粒在 Sprague Dawley 大鼠中的口服耐受性。
采用剂量逐步法或范围试验法,然后进行确证试验。确证试验包括每日给予 2000 和 1200mg/kg 剂量的纳米多孔叶酸模板材料-1 和阴离子表面活性剂模板介孔硅材料-6。
阴离子表面活性剂模板介孔硅材料-6 的最大耐受剂量未达到。在大多数动物中,纳米级阴离子表面活性剂模板介孔硅材料-1 也观察到了类似的结果,尽管一些动物出现了不良反应,这很可能是由于通过口服灌胃给予制剂颗粒。
这些结果为介孔硅材料作为口服给药的药物传递系统的应用提供了希望。