Division of Pharmaceutical Chemistry and Technology, Faculty of Pharmacy, University of Helsinki, FI-00014 Helsinki, Finland.
Division of Pharmaceutical Chemistry and Technology, Faculty of Pharmacy, University of Helsinki, FI-00014 Helsinki, Finland; Department of Physics, School of Engineering and Applied Physics, Harvard University, Cambridge, 02138 MA, USA.
Biomaterials. 2015 Jan;39:249-59. doi: 10.1016/j.biomaterials.2014.10.079. Epub 2014 Nov 20.
An advanced nanocomposite consisting of an encapsulated porous silicon (PSi) nanoparticle and an acid-degradable acetalated dextran (AcDX) matrix (nano-in-nano), was efficiently fabricated by a one-step microfluidic self-assembly approach. The obtained nano-in-nano PSi@AcDX composites showed improved surface smoothness, homogeneous size distribution, and considerably enhanced cytocompatibility. Furthermore, multiple drugs with different physicochemical properties have been simultaneously loaded into the nanocomposites with a ratiometric control. The release kinetics of all the payloads was predominantly controlled by the decomposition rate of the outer AcDX matrix. To facilitate the intracellular drug delivery, a nona-arginine cell-penetrating peptide (CPP) was chemically conjugated onto the surface of the nanocomposites by oxime click chemistry. Taking advantage of the significantly improved cell uptake, the proliferation of two breast cancer cell lines was markedly inhibited by the CPP-functionalized multidrug-loaded nanocomposites. Overall, this nano-in-nano PSi@polymer composite prepared by the microfluidic self-assembly approach is a universal platform for nanoparticles encapsulation and precisely controlled combination chemotherapy.
一种由包裹多孔硅(PSi)纳米颗粒和可酸降解缩醛化葡聚糖(AcDX)基质组成的先进纳米复合材料(纳米内纳米),通过一步微流控自组装方法高效制备。所得的纳米内纳米 PSi@AcDX 复合材料表现出改善的表面光滑度、均匀的尺寸分布和显著增强的细胞相容性。此外,多种具有不同物理化学性质的药物可以通过比例控制同时装载到纳米复合材料中。所有负载物的释放动力学主要由外部 AcDX 基质的分解速率控制。为了促进细胞内药物递送,通过肟点击化学将九聚精氨酸细胞穿透肽(CPP)化学偶联到纳米复合材料的表面。利用显著提高的细胞摄取,CPP 功能化多药负载纳米复合材料显著抑制了两种乳腺癌细胞系的增殖。总的来说,这种通过微流控自组装方法制备的纳米内纳米 PSi/聚合物复合材料是一种用于纳米颗粒封装和精确控制联合化疗的通用平台。