Department of Chemistry, Indian Institute of Science Education and Research (IISER), Pune Dr. Homi Bhabha Road, Pune-411008, Maharashtra, India.
Biomacromolecules. 2012 Nov 12;13(11):3627-40. doi: 10.1021/bm301583s. Epub 2012 Oct 29.
Dextran vesicular nanoscaffolds were developed based on polysaccharide and renewable resource alkyl tail for dual encapsulation of hydrophilic and hydrophobic molecules (or drugs) and delivery into cells. The roles of the hydrophobic segments on the molecular self-organization of dextran backbone into vesicles or nanoparticles were investigated in detail. Dextran vesicles were found to be a unique dual carrier in which water-soluble molecules (like Rhodamine-B, Rh-B) and polyaromatic anticancer drug (camptothecin, CPT) were selectively encapsulated in the hydrophilic core and hydrophobic layer, respectively. The dextran vesicles were capable of protecting the plasma-sensitive CPT lactone pharmacophore against the hydrolysis by 10× better than the CPT alone in PBS. The aliphatic ester linkage connecting the hydrophobic tail with dextran was found to be cleaved by esterase under physiological conditions for fast releasing of CPT or Rh-B. Cytotoxicity of the dextran vesicle and its drug conjugate were tested on mouse embryonic fibroblast cells (MEFs) using MTT assay. The dextran vesicular scaffold was found to be nontoxic to living cells. CPT loaded vesicles were found to be 2.5-fold more effective in killing fibroblasts compared to that of CPT alone in PBS. Confocal microscopic images confirmed that both Rh-B and CPT loaded vesicles to be taken up by fibroblasts compared to CPT alone, showing a distinctly perinuclear localization in cells. The custom designed dextran vesicular provides new research opportunities for dual loading and delivering of hydrophilic and hydrophobic drug molecules.
葡聚糖囊泡纳米支架是基于多糖和可再生资源烷基链开发的,用于亲水性和疏水性分子(或药物)的双重包封和递送至细胞内。详细研究了疏水性片段在葡聚糖主链自组装成囊泡或纳米颗粒过程中的作用。发现葡聚糖囊泡是一种独特的双重载体,其中亲水性分子(如罗丹明 B,Rh-B)和多环芳烃抗癌药物(喜树碱,CPT)分别选择性地包封在亲水核和疏水性层中。葡聚糖囊泡能够比 PBS 中的单独 CPT 更好地保护对血浆敏感的 CPT 内酯药效团免受水解,保护能力提高了 10 倍。在生理条件下,连接疏水性尾巴和葡聚糖的脂肪族酯键被酯酶切断,从而快速释放 CPT 或 Rh-B。使用 MTT 测定法在小鼠胚胎成纤维细胞(MEFs)上测试了葡聚糖囊泡及其药物缀合物的细胞毒性。发现葡聚糖囊泡支架对活细胞无毒。与 PBS 中的单独 CPT 相比,负载 CPT 的囊泡在杀死成纤维细胞方面的效果提高了 2.5 倍。共聚焦显微镜图像证实,与单独的 CPT 相比,负载 Rh-B 和 CPT 的囊泡均被成纤维细胞摄取,在细胞内呈现明显的核周定位。这种定制设计的葡聚糖囊泡为亲水性和疏水性药物分子的双重负载和递送提供了新的研究机会。