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Loading nanoliposome therapeutics into red blood cells using electroporation.

机译:使用电穿孔将纳米脂质体治疗剂加载到红细胞中。

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摘要

We aim to prepare a novel drug delivery system by loading nanoliposome therapeutics in human red blood cells (RBCs) by electroporation, and to enhance drug circulation profiles in vivo. During our rigorous evaluation of our delivery approach, we determined that the specific type and concentration of liposomes, as well as the number of electroporation pulses used are important considerations for efficient loading of nanosystems in RBCs. We also investigated the role of a cell preservative solution on the viability of electroporated red blood cells, in an effort to increase the life span of the cells following reinjection.;Anionic liposomes were prepared using DSPC, DOPG and Cholesterol (4:5:1). The size of RBCs and liposomes was measured using 90 Plus Zeta PALS/BI-MAS. Electroporation was carried out by using high voltage pulse BTX Electrocell Manipulator 600, Genetronics. Cell viability was calculated using the hemocytometer and Trypan Blue exclusion assay. In vitro and in vivo analysis was carried out using DIC, fluorescence and intravital microscopy. Cell viability of loaded erythrocytes decreased from 100% to 59% and was maintained at 59% after 48 hours on addition of the proprietary cell protective solution. In the absence of cell protective solution, cell viability decreased from 100% to 20%. The overall morphology of the cells was preserved for 48 hours with protective solution as observed in the DIC images.;Maximum uptake by RBCs was seen at 2mumole liposome concentration. The most efficient loading of nanoliposomes occurred following the application of 4 pulses of 480Volts, 400muF capacitance and 13 ohms. The total number and overall morphology of loaded erythrocytes was maintained for 48 hours using the cell protective solution, proving it beneficial in maintaining cell viability which may translate to enhanced in vivo circulation profiles.
机译:我们的目标是通过电穿孔将纳米脂质体治疗剂加载到人红细胞(RBC)中,从而制备一种新型的药物递送系统,并增强体内的药物循环特性。在对我们的给药方法进行严格评估的过程中,我们确定脂质体的具体类型和浓度以及所用电穿孔脉冲的数量是有效加载RBC中纳米系统的重要考虑因素。我们还研究了细胞防腐剂溶液对电穿孔红细胞活力的作用,以期增加注射后的细胞寿命。;使用DSPC,DOPG和胆固醇制备阴离子脂质体(4:5:1 )。使用90 Plus Zeta PALS / BI-MAS测量RBC和脂质体的大小。通过使用Genetronics的高压脉冲BTX Electrocell Manipulator 600进行电穿孔。使用血细胞计数器和台盼蓝排除法计算细胞活力。使用DIC,荧光和活体显微镜进行体外和体内分析。负载的红细胞的细胞活力从100%降至59%,并在添加专有的细胞保护液48小时后保持在59%。在没有细胞保护液的情况下,细胞活力从100%降低至20%。在DIC图像中观察到,用保护溶液可将细胞的整体形态保存48小时。在2摩尔脂质体浓度下,RBC的最大吸收量得以观察到。施加480伏,400μF电容和13欧姆的4个脉冲后,纳米脂质体的负载效率最高。使用细胞保护液将装载的红细胞的总数和总体形态维持48小时,证明它对维持细胞活力(可转化为增强的体内循环状况)有益。

著录项

  • 作者

    Mehta, Amrita.;

  • 作者单位

    Northeastern University.;

  • 授予单位 Northeastern University.;
  • 学科 Health Sciences Oncology.
  • 学位 M.S.
  • 年度 2009
  • 页码 57 p.
  • 总页数 57
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 肿瘤学;
  • 关键词

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