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Design of a nanoplatform for treating pancreatic cancer.

机译:用于治疗胰腺癌的纳米平台的设计。

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摘要

Pancreatic cancer is the fourth leading cause of cancer-related deaths in the USA. Asymptomatic early cancer stages and late diagnosis leads to very low survival rates of pancreatic cancers, compared to other cancers. Treatment options for advanced pancreatic cancer are limited to chemotherapy and/or radiation therapy, as surgical removal of the cancerous tissue becomes impossible at later stages. Therefore, there's a critical need for innovative and improved chemotherapeutic treatment of (late) pancreatic cancers. It is mandatory for successful treatment strategies to overcome the drug resistance associated with pancreatic cancers. Nanotechnology based drug formulations have been providing promising alternatives in cancer treatment due to their selective targeting and accumulation in tumor vasculature, which can be used for efficient delivery of chemotherapeutic agents to tumors and metastases.;The research of my thesis is following the principle approach to high therapeutic efficacy that has been first described by Dr. Helmut Ringsdorf in 1975. However, I have extended the use of the Ringsdorf model from polymeric to nanoparticle-based drug carriers by exploring an iron / iron oxide nanoparticle based drug delivery system.;A series of drug delivery systems have been synthesized by varying the total numbers and the ratio of the tumor homing peptide sequence CGKRK and the chemotherapeutic drug doxorubicin at the surfaces of Fe/Fe3O 4-nanoparticles. The cytotoxicity of these nanoformulations was tested against murine pancreatic cancer cell lines (Pan02) to assess their therapeutic capabilities for effective treatments of pancreatic cancers. Healthy mouse fibroblast cells (STO) were also tested for comparison, because an effective chemotherapeutic drug has to be selective towards cancer cells.;Optimal Experimental Design methodology was applied to identify the nanoformulation with the highest therapeutic activity. A statistical analysis method known as response surface methodology was carried out to evaluate the in-vitro cytotoxicity data, and to determine whether the chosen experimental parameters truly express the optimized conditions of the nanoparticle based drug delivery system. The overall goal was to optimize the therapeutic efficacy in nanoparticle-based pancreatic cancer treatment. Based on the statistical data, the most effective iron/iron oxide nanoparticle-based drug delivery system has been identified. Its Fe/Fe3O4 core has a diameter of 20 nm. The surface of this nanoparticle is loaded with the homing sequence CGKRK (139-142 peptide molecules per nanoparticle surface) and the chemotherapeutic agent doxorubicin (156-159 molecules per surface), This nanoplatform is a promising candidate for the nanoparticle-based chemotherapy of pancreatic cancer.
机译:胰腺癌是美国癌症相关死亡的第四大主要原因。与其他癌症相比,无症状的早期癌症阶段和晚期诊断导致胰腺癌的存活率非常低。晚期胰腺癌的治疗选择仅限于化学疗法和/或放射疗法,因为在后期无法手术切除癌组织。因此,迫切需要对(晚期)胰腺癌进行创新和改良的化学治疗。成功的治疗策略必须克服与胰腺癌相关的耐药性。基于纳米技术的药物制剂因其选择性靶向和在肿瘤脉管系统中的积累而一直在为癌症治疗提供有希望的替代方法,可用于将化学治疗剂有效地递送至肿瘤和转移灶。 Helmut Ringsdorf博士于1975年首次描述了高疗效。但是,我通过研究基于铁/氧化铁纳米颗粒的药物递送系统,将Ringsdorf模型的使用范围从聚合物扩展到了基于纳米颗粒的药物载体。通过改变Fe / Fe3O 4纳米颗粒表面的肿瘤归巢肽序列CGKRK和化疗药物阿霉素的总数和比例,合成了一系列药物递送系统。测试了这些纳米制剂对小鼠胰腺癌细胞系(Pan02)的细胞毒性,以评估其对胰腺癌的有效治疗能力。还对健康的小鼠成纤维细胞(STO)进行了比较测试,因为必须对癌细胞具有选择性的有效化疗药物。;采用最佳实验设计方法来鉴定具有最高治疗活性的纳米制剂。进行了一种称为响应表面方法的统计分析方法,以评估体外细胞毒性数据,并确定所选的实验参数是否真正表达了基于纳米颗粒的药物递送系统的优化条件。总体目标是优化基于纳米颗粒的胰腺癌治疗的疗效。根据统计数据,已经确定了最有效的基于铁/氧化铁纳米颗粒的药物递送系统。其Fe / Fe3O4芯的直径为20 nm。该纳米颗粒的表面装有归巢序列CGKRK(每个纳米颗粒表面139-142个肽分子)和化疗剂阿霉素(每个表面156-159个分子),该纳米平台是基于胰腺的纳米颗粒化学疗法的有希望的候选者癌症。

著录项

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Chemistry Organic.;Nanotechnology.;Health Sciences Oncology.;Health Sciences Immunology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 144 p.
  • 总页数 144
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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