标题: | 自组装水凝胶在生物显影与药物载体之应用 Applications of Self-Assembly Hydrogels in Bioimaging and Drug Carrier |
作者: | 林欣杰 Lin Hsin-Chieh 国立交通大学材料科学与工程学系(所) |
公开日期: | 2014 |
摘要: | 随着奈米科学与奈米科技的迅速进展因而提供许多研发新药的机会来治疗癌症以及改 善人类的生活品质。到目前为止,以奈米科技为中心的研究领域在生医方向上已经有一 些明显的成果,例如在药物输送载体以及新的治疗方法方面。在最近四十年来,成像科 学的发展也延伸到新药的发现与发展,因此,在本计画中,我们希望更进一步的发展利 用有机合成产生萤光基团-胜肽基团-抗癌药物的分子结构来发展由自组装产生的萤光 水凝胶抗癌药物。我们提出利用萤光水凝胶药物可以因为增加药物的局部浓度来提高抗 癌效果并预期可以抑制肿瘤的生长与转移,我们选用的萤光基团有着与艾霉素药物类似 的吸光与放光波长将预期可以增加观测萤光药物在活体中的灵敏度。本计画将利用将着 重在合成含萤光的超分子水凝胶药物并利用自组装产生水凝胶药物来治疗癌症,我们计 昼将达成两个主要目标,而透过这样的研究将可以提供一个合逻辑的方式让我们达到最 后目的-发展新的奈米药物。第一个目标将致力于发展含萤光团的胜肽分子来产生新的 萤光超分子水凝胶,这些萤光基团在500-600奈米之间有着很强的萤光,第二个目标将 整合抗癌药物到可自组装的萤光超分子水凝胶分子结构中以及研究这些水凝胶药物在 生物体中的作用,例如药物分布与累积。透过这样的研究,我们相信本计画的成功将会 开启一个发展抗癌奈米药物的全新方法。 Rapid development of new knowledge in nanoscience and nanotechnology is offering exceptional opportunities of creating new generation of diagnostics and therapeutics to treat cancer and improve the quality of human life. The considerable research interests in the area have already made significant progresses, such as drug delivery carriers and new treatment protocols. Besides, imaging sciences have also grown exponentially within the past four decades and many technologies have become indispensable in clinical use. Recently, imaging technologies and imaging probes for humans are now extending the applications of molecular imaging further into drug discovery and development. In this proposal, we wish to further develop new nanomedicines by the self-assembly of hydrogelators with the structure of fluorophore-peptide-drug. We propose that self-assembly of the hydrogelators will administrated into solid tumors to hinder their growths and prevent their metastasis by increasing the local concentration of drugs. The selected fluorophores have similar intense absorption and emission as those of doxorubicin drug which may result in higher contrast for bioimaging applications. The present work will focus on the synthesis of new hydrogelators and usage of self-assembly to create molecular nanofibers by supramolecular hydrogelators as novel nanomedicines for anticancer therapy. Two specific aims will be investigated and that will provide a logical approach for us to develop new nanomedicines. The first aim focuses on the development of fluorophore-capped peptides as new supramolecular hydroglators. These fluorophores hold intensive emissions in the range of 500-600 nm. The second aim is to combine anticancer drug into the structure of hydrogelator and study the effects of the drug distribution and accumulation by molecular imaging. We believe the success of the proposed research will open up a new strategy for the development of anticancer nanomedicines. |
官方说明文件#: | NSC102-2113-M009-006-MY2 |
URI: | http://hdl.handle.net/11536/96829 https://www.grb.gov.tw/search/planDetail?id=8116792&docId=431346 |
显示于类别: | Research Plans |