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Designing well-defined macromolecule based nanostructures for multi-tasking

Designing well-defined macromolecule based nanostructures for multi-tasking
设计基于明确高分子的纳米结构以实现多任务
批准号:
155460-2013
负责人:
Kakkar, Ashok
金额:
$2.48万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2013
资助国家:
加拿大
项目状态:
已结题
起止时间:
2013-01-01 至 2014-12-31

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中文摘要
翻译
该研究计划旨在开发智能纳米材料,可以协同有效地执行多种预定功能。在催化、环境传感和生物学等领域解决关键问题的主要挑战之一最近被确定为下一代纳米颗粒的合成,该纳米颗粒将重要功能整合到单个系统中。我们的重点是简化这种复杂的纳米载体的设计,并开发一种强大的合成方法,产生明确的分子,例如,同时诊断,靶向和治疗。为此,我们将构建树枝状聚合物和miktoarm聚合物为基础的多功能纳米结构,使用定制的积木和高效的化学。这些大分子提供了两个独特的平台,用于完全通过缀合或共价连接和包封的组合来引入所需的功能。我们在未来五年内的目标是开发一种可重复的合成路线,以战略性地设计跟踪单元的位置(在纳米颗粒核心或外围),并通过治疗,靶向和增溶剂的定义组合控制纳米颗粒的整体组成。为了提高仲氢诱导极化的功效,我们将开发一种基于过渡金属的催化剂,用于在水性介质中的纳米颗粒的外围结合这种成像功能。我们将对纳米制剂中不同功能单元的合作作用模式进行详细评估。这项重要研究的结果将指导我们设计和合成能够进行双模成像的纳米探针。我们的目标是结合联合收割机荧光染料的核心与i)另一种染料封装在胶束或共价连接在树枝状聚合物的荧光共振能量转移过程,和ii)仲氢诱导极化的树枝状聚合物的外围。
英文摘要
This research program is directed at developing smart nanomaterials which can perform multiple pre-determined functions cooperatively and efficiently. One of the major challenges in addressing key issues in areas including catalysis, environmental sensing and biology, was recently identified to be the synthesis of next generation nanoparticles which consolidate important functions into a single system. Our focus is to simplify the design of such complex nanocarriers, and to develop a robust synthetic methodology that yields well-defined molecules capable of, for example, simultaneous diagnosis, targeting and therapy. For this purpose, we will construct dendrimers and miktoarm polymer based multifunctional nanostructures using tailor-made building blocks and highly efficient chemistry. These macromolecules offer two unique platforms for introducing desired functions entirely by conjugation or a combination of covalent linking and encapsulation. Our goals within the next five years are to develop a reproducible synthetic route to strategically engineer the location of tracking units (in the nanoparticle core or at the periphery), and in controlling the overall composition of the nanoparticle with a defined combination of therapeutic, targeting and solubilizing agents. To enhance the efficacy of parahydrogen induced polarization, we will develop a transition metal-based catalyst for incorporating this imaging functionality at the periphery of nanoparticles in an aqueous medium. We will carry out a detailed evaluation of the cooperative mode of action of different functional units in a nanoformulation. The results from this essential study will guide us in the design and synthesis of nanoprobes capable of dual mode imaging. We aim to combine fluorescence from the dye at the core with i) another dye encapsulated in micelles or covalently linked in dendrimers for fluorescence resonance energy transfer processes, and ii) with parahydrogen induced polarization at the periphery of dendrimers.
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