卵盒复合物的脂质移植物:一种新的5-氟尿嘧啶传递的超分子生物载体

Surekha Nagaich, A.J Khopade, N.K Jain
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引用次数: 15

摘要

将5-氟尿嘧啶(5-FU)掺入脂蛋白模拟合成载体“超分子生物载体(SMBV)”中,以改善其药代动力学行为,这是实现其更好的抗癌效果的重要前提。采用亲离子凝胶技术,将海藻酸盐分子中的聚gulur酸盐单元与钙离子交联,形成所谓的“蛋盒结构”,制备了SMBVs多糖核。对配方和工艺参数进行优化,得到纳米级颗粒。疏水性是通过在表面进行脂肪酰化,然后涂覆磷脂来实现的。棕榈酰聚乙二醇(p-PEG)被锚定以赋予隐身行为。扫描电镜显示平均直径为748 nm的离散球体。多分散性估计为0.37。总zeta电位为- 21.3 mV。其载药量为10.0%,包封率为97.9%。药物溶液(AP)释放符合零级动力学。在p-PEG锚定前(AP3)和锚定后(AP4),脂肪酰化(AP2)和脂质包被(AP4)的蛋盒复合核呈一阶释放模式。24h内药物释放量顺序为:AP>AP1>AP2>AP4>AP3。获得的释放模式是药物通过蛋盒基质扩散以及在SMBV周围的疏水层和p-PEG层中分配的联合作用。稳定性研究表明,在不同温度下储存时,泄漏可以忽略不计,颗粒大小没有明显变化,这表明SMBV制剂具有良好的稳定性。血浆清除率数据显示药物循环半衰期和生物利用度增加。获得的组织分布数据是组织巨噬细胞和淋巴竞争性吸收制剂的结果,这取决于其表面特征和在血管系统中的停留时间。增强的药物输送到淋巴管和改善其半衰期使得smbv对控制转移和肿瘤生长有用。
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Lipid grafts of egg-box complex: a new supramolecular biovector for 5-fluorouracil delivery

An attempt was made to improve the pharmacokinetic behaviour of 5-fluorouracil (5-FU) by incorporating it into lipoprotein imitating synthetic carrier `supramolecular biovector (SMBV)' which is an important prerequisite for achieving its better therapeutic performance against cancer. The polysaccharide core of SMBVs was prepared by ionotropic gelation technique by cross-linking polyguluronate units in the alginate molecules with calcium ions to form so called `egg-box structure'. The formulation and process variables were optimized to obtain particles of nanometer size range. Hydrophobization was carried out by fatty-acylation on the surface followed by phospholipid coating. Palmitoyl polyethylene glycol (p-PEG) was anchored to impart stealth behaviour. The scanning electron microscopy showed discrete spheres of average diameter 748 nm. Polydispersity was estimated to be 0.37. Overall zeta potential was −21.3 mV. The drug loading capacity and encapsulation efficiency was found to be 10.0% and 97.9%, respectively. The release from drug solution (AP) followed zero-order kinetics. Higuchi release pattern was obtained for egg-box complex cores (AP1) while first-order pattern was followed for fatty acylated (AP2) and lipid coated cores before (AP3) and after p-PEG anchoring (AP4). The amount of drug liberated in 24 h was in the order AP>AP1>AP2>AP4>AP3. The release pattern obtained was a combined effect of drug diffusion through egg-box matrix as well as partitioning in hydrophobic layer and p-PEG layer around the SMBV. The stability study showed negligible leakage and no appreciable change in particle size upon storage at different temperatures which is an indication of good stability of SMBV formulation. The plasma clearance data revealed increase in circulation half-life of drug and bioavailability. Tissue distribution data obtained was a result of competitive uptake of formulations from tissue macrophages and lymphatics depending upon its surface characteristics and residence period in vascular system. The enhanced delivery of drug to lymphatics and improvement in its half-life render SMBVs useful for control of metastasis and tumour growth.

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