Abdelbar Mostafa F, Shams Raef S, Morsy Ossama M, Hady Mayssa Adbel, Shoueir Kamel, Abdelmonem Rehab
Institute of Nanoscience & Nanotechnology, Kafrelsheikh University, 33516 Kafrelsheikh, Egypt.
Emergent Bioengineering Materials Research Team, RIKEN Center for Emergent Matter Science, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.
Int J Biol Macromol. 2020 Aug 1;156:858-868. doi: 10.1016/j.ijbiomac.2020.04.119. Epub 2020 Apr 21.
The controlled release of a drug considers the key feature of the delivery carrier that enhances therapeutic efficacy. This study was aimed at design, synthesis of nano valve and capping systems onto caged functionalized mesoporous silica nanoparticles (SBA15) with nanoflowers polylactic acid (PLA-NF). Levofloxacin (LVX) as a specific model drug was encapsulated onto series; SBA15, SBA15@NH, and SBA15@NH/PLA. The examined nanocarriers released in a controlled fashion by external stimuli. The delivery vehicle based on PLA-NF coated SBA15@NH, potent conjugated with LVX with experienced a high extent of trapping content with fast releasing by pH regulating mechanism. In vial LVX released profile and in vitro antifungal forceful of the selected microbes were detected. However, SBA15@NH/PLA exhibited pore size, surface area and pore volume 5.4 nm, 163 and 0.011 respectively, but the significantly clear zone was obtained with Staphylococcus aureus ATCC 6538 (G+ve), Escherichia coli ATCC 25922 (G-ve), Candida albicans ATCC 10231 (yeast) and Aspergillus niger NRRL A-326 (fungus). Viability test avouch that rising functionality enhanced cytocompatibility and non-toxicity profile. Based on the aforementioned promising data, this type of nanocarriers offers when functionalized with targeting cells, the accessibility to deliver antibiotics onto nanosystem for increased potency against microbes and reduce side effects.
药物的控释考虑了递送载体增强治疗效果的关键特性。本研究旨在设计、合成纳米阀以及在具有纳米花聚乳酸(PLA-NF)的笼形功能化介孔二氧化硅纳米颗粒(SBA15)上的封端系统。将左氧氟沙星(LVX)作为特定模型药物包封到系列载体中,即SBA15、SBA15@NH和SBA15@NH/PLA。所研究的纳米载体通过外部刺激以可控方式释放。基于PLA-NF包覆的SBA15@NH的递送载体,与LVX有效共轭,具有高捕获含量,并通过pH调节机制快速释放。检测了小瓶中LVX的释放曲线以及所选微生物的体外抗真菌效力。然而,SBA15@NH/PLA的孔径、表面积和孔体积分别为5.4nm、163和0.011,但对于金黄色葡萄球菌ATCC 6538(革兰氏阳性)、大肠杆菌ATCC 25922(革兰氏阴性)、白色念珠菌ATCC 10231(酵母)和黑曲霉NRRL A-326(真菌)获得了明显的抑菌圈。活力测试证明功能增强提高了细胞相容性和无毒性。基于上述有前景的数据,这种类型的纳米载体在与靶向细胞功能化时,能够将抗生素递送至纳米系统,以增强对微生物的效力并减少副作用。