标题: | 一种具双性之有机-奈米金混成分子之设计, 分析及其生医应用 Design and Characterization of a New Amphiphilic Organic-Au Hybrid Molecule for Biomedical Applications |
作者: | 刘典谟 Liu Dean-Mo 国立交通大学材料科学与工程学系(所) |
关键字: | amphiphilic carboxymethyl-hexanoyl chitosan (CHC);peptide-modified chitosan hybrid;self-assembly;Au ligands;Au nanoparticles;drug delivery;colloidal stability;controlled drug release;nanoimaging;targeting;cancerous cells;amphiphilic carboxymethyl-hexanoyl chitosan (CHC);peptide-modified chitosan hybrid;self-assembly;Au ligands;Au nanoparticles;drug delivery;colloidal stability;controlled drug release;nanoimaging;targeting;cancerous cells |
公开日期: | 2012 |
摘要: | 近年來Theranostic nanomedicine医療技术受到极大的重视,因为此医療技术在进行 药物治療的过程中,具有多功能性并同时进行多种的医療行为,可大幅的改善医療的成 效,对于病患來說将是莫大的利益。但是,具多功能的nanomedicine在制作过程中需要 多步骤的合成,这将导致无法准确的预期投药剂量及治療效果。此外,多功能性添加物(例: 标靶官能基或显影剂)在载体中的分布不均将会使nanomedicine的行为无法预测。因此, 一种由bottom-up design 的制程方法所制作出來的theranostic nanomedicine , 例如 nanoparticle,可达到事先预期的目标,在未來应用上的重要关键。 在此研究计划中,采用本实验室多年前所研发出來的可自组装成奈米胶囊的兩性几 丁聚醣(Carboxymethyl-Hexanoly Chitosan, CHC)做为开发新型混成分子的主体,经由 amidation法将特定的胜肽(peptide)接枝到CHC上,并且利用胜肽键末端所露出的硫醇基, 做为一种可吸引Au吸附上之有利条件,形成類似Au”ligands”的结构,藉此合成新的混成 分子,peptide-modified amphiphilic CHC-Au hybrid (termed as P-Au-CHC)。预估此新型分 子就如同CHC分子一样,具有自组装的功能(self-assembled capability),可在溶液中形成 奈米粒子。此外,这些修饰在P-Au-CHC上的Au”ligands”及peptide,在P-Au-CHC自组装 成奈米粒子的同时,会倾向暴露在奈米粒子的外层,与外在环境做接触,因此而同时展 现出标靶、显影及热治療的多功能性。 更进一步,此混成分子可用來乘载药物,在水溶液的环境下将药物包覆于其中,形 成奈米胶囊的特殊结构。此技术一旦发展成功,将可一个步骤合成具有治療诊断等多功 能的奈米载体,不需要繁复的步骤就可将这些多功能性的官能基修饰到最终奈米载体上, 促进未來应用于集药物释放、细胞内显影技术、标靶药物、及热治療于一体之载体技术 上。 根据所调查到的最新资料,目前国内外仅有极少數的研究或报导与此项研究计划有 些许相关性。因此,此计画所开发出來的新型混成奈米载体系统将是具有新颖性并结合 了物理、化学与基础生物医学的技术优势,再结合臨床用药,在生物医学的应用上将极 具有发展潜力。 Theranostic nanomedicine has recently been received greatest attention due to its wide versatility of being performing various functions simultaneously in medication, wherein a significantly improved therapeutic/medical purpose can be highly expected and brings enormous benefits to the patients. However, multifunctionalization of a given nanomedicine requires multiple steps of synthesis, which makes precise therapeutic dose and expected drug efficacy unpredictable, and uneven distribution of the functional dopants/modifications also make un-reliable of the resulting nanomedicine, included targeting and imaging capability. Therefore, a bottom-up design of expected theranostic nanomedicine, i.e., nanoparticles, to fulfill pre-determined functionalities is critical for its final utilization. In this work, a new hybrid molecule based on an amphiphilic chitosan (namely CHC) developed from this lab years ago, followed with a peptide modification via amidation and ends up with a further in-situ Au “ligands” anchorage toward the thiol groups of the peptide moieties. The new hybrid molecule, i.e., peptide-modified amphiphilic CHC-Au hybrid (termed as P-Au-CHC), is expected to possess self-assembled capability as original CHC molecule. The presence of residual peptide and Au “ligands” (which exhibit as nanoparticles anchored along the surface of the self-assembled nanoparticles) exposed toward the environment should provide targeting , imaging and photothermal capability simultaneously. More critically, such a hybrid molecule allows to be self assembled upon encapsulation of drug(s) in aqueous solution. Once being formed, a theranostic nanocarrier can be prepared at a one-step synthesis, i.e., without further steps to multifunctionalize the nanocarrier, facilitating a further evaluation included controlled drug release, intracellular imaging, targeting (to cancerous cell), cytocompatibility, hyperthermia effect, etc. This research work, to our best knowledge, has barely been reported yet and should pave a new avenue to provide both scientific and technical advantages based on an in-depth understanding the chemical, physical, and biomedical fundamentals of this new hybrid systems toward clinically important drug molecules, associated with its potential biomedical applications. |
官方说明文件#: | NSC101-2113-M009-014 |
URI: | http://hdl.handle.net/11536/97682 https://www.grb.gov.tw/search/planDetail?id=2580809&docId=388553 |
显示于类别: | Research Plans |