CAREER: Nucleic Acid-Peptide-Mineral Hybrid Assemblies and Nano-Devices
CAREER: Nucleic Acid-Peptide-Mineral Hybrid Assemblies and Nano-Devices
批准号:
2046835
负责人:
Fei Zhang
金额:
$71.66万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-01-15 至 2025-12-31
中文摘要
不同尺度的生命可以看作是一个动态的自组装系统。生物已经发展出独特的策略来构建软硬组织,由此产生的混合材料具有远远超过人工材料的优异性能。设计受自然启发的自组装分子系统和功能材料,可以与细胞交流并调节生物事件,是与合成生物学,纳米技术,再生医学和材料科学等科学领域高度相关的宏伟目标之一。该项目旨在开发自组装核酸-肽-矿物(NAPM)混合分子瓦片作为构建模块,以创建健壮的、可编程的、智能的和功能性的生物材料和纳米器件。DNA独特的结构可编程性将与矿物质、肽和RNA的有利机械性能和功能相结合,以多样化和增强DNA纳米结构的化学和物理功能。这个新平台将把DNA纳米技术中的可编程组装从纳米级扩展到微米级,提供有关新型混合瓦片自组装的知识,并导致与这些混合系统相关的新功能的发现。此外,该项目将研究与研究生和本科教育相结合,并为高中、K-12学生和社区推广引入创新项目。技术概述:该项目的总体目标是开发一种混合分子瓦系统,将矿物质和肽整合到可编程DNA纳米结构中,以产生新的自组装混合材料。主要的科学挑战地址:(1)如何开发一个通用方法固定DNA纳米结构在保持DNA的可编程性,(2)如何创建偏爱精确可控的表面沉积不同类型的矿物质,(3)什么是这些新的混合瓷砖的自组装行为和如何引导他们的组装来创建小说结构在微米尺度,和(4)如何实现动态响应重构在这个新的系统。在这个项目中,这些挑战将通过开发结构强化的矿物沉积方法来解决,利用调节肽和RNA分子来生产NAPM杂交瓦;建立混合瓦片的几何匹配和分子规划规则,指导其自组装;通过整合可切换的核酸结构来可逆地改变杂化材料的大小、形状和表面化学,从而响应外部刺激,从而设计出新的重构机制。该项目最终将创建混合材料,继承DNA和RNA的可编程性,同时显示增强的机械性能。它还将开发一个整合无机材料与生物材料的物理化学和机械性能的工具包。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
NON-TECHNICAL SUMMARYLife at various scales can be viewed as a dynamic self-assembling system. Living organisms have developed their unique strategies to build soft and hard tissues and the resulting hybrid materials have excellent properties that remain far beyond those of their artificial counterparts. To engineer nature-inspired self-assembled molecular systems and functional materials, which can communicate with cells and regulate biological events, is one of the grand goals that is highly relevant to scientific areas ranging from synthetic biology, nanotechnology, regenerative medicine, to materials science. This project aims to develop self-assembling Nucleic Acid-Peptide-Mineral (NAPM) hybrid molecular tiles as building blocks to create robust, programmable, smart, and functional biomaterials and nanodevices. The unique structural programmability of DNA will be integrated with the advantageous mechanical properties and functionality of minerals, peptides, and RNA to diversify and enhance the chemical and physical functionality of DNA nanostructures. This new platform will expand the programmable assembly in DNA nanotechnology from the nanometer scale to microns, furnish knowledge on the self-assembly of novel hybrid tiles, and lead to the discovery of new functionalities associated with these hybrid systems. In addition, this project integrates research with graduate and undergraduate education and introduces innovative programs for high schools, K-12 students, and community-wide outreach.TECHNICAL SUMMARYThe overarching goal of this project is to develop a hybrid molecular tile system employing minerals and peptides that are integrated into programmable DNA nanostructures to generate new self-assembling hybrid materials. The main scientific challenges to address are: (1) how to develop a general method to rigidify DNA nanostructures while maintaining the programmability of DNA, (2) how to create the surface preference for controllable precise deposition of different types of minerals, (3) what are the self-assembly behaviors of these new hybrid tiles and how to guide their assembly to create novel structures at micron scales, and (4) how to achieve dynamic responsive reconfiguration in this new system. In this project, these challenges will be tackled by developing structurally strengthening deposition methods of minerals employing regulating peptides and RNA molecules to produce NAPM hybrid tiles; developing geometric matching and molecular programming rules for the hybrid tiles to direct their self-assembly; and engineering novel reconfiguration mechanisms by integrating switchable nucleic acid structures to reversibly change the size, shape, and surface chemistry of the hybrid materials responding to external stimuli. This project will finally create hybrid materials that inherit the programmability of DNA and RNA while displaying enhanced mechanical properties. It will also develop a toolkit for integrating the physicochemical and mechanical properties of inorganic materials with biological materials.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(4)
专著(0)
科研奖励(0)
会议论文
Nucleic acid paranemic structures: a promising building block for functional nanomaterials in biomedical and bionanotechnological applications
核酸副贫血结构:生物医学和生物纳米技术应用中功能纳米材料的有前景的构建模块
DOI:
10.1039/d2tb00605g
发表时间:
2022
期刊:
Journal of Materials Chemistry B
影响因子:
7
作者:
[Lee, Jung Yeon, Yang, Qi, Chang, Xu, Wisniewski, Henry, Olivera, Tiffany R., Saji, Minu, Kim, Suchan, Perumal, Devanathan, Zhang, Fei]
通讯作者:
Zhang, Fei
Self-assembled Nucleic Acid Nanostructures for Biomedical Applications
用于生物医学应用的自组装核酸纳米结构
DOI:
10.2174/1568026622666220321140729
发表时间:
2022
期刊:
Current Topics in Medicinal Chemistry
影响因子:
3.4
作者:
[Chang, Xu, Yang, Qi, Lee, Jungyeon, Zhang, Fei]
通讯作者:
Zhang, Fei
Collaborative Research: FET: Small: Hierarchical Computational Framework for large scale RNA Design Pathway Discovery through Data and Experiments
-
批准号:2007821
-
项目类别:Standard Grant
-
资助金额:$17.5万
-
财政年份:2020
-
负责人:Fei Zhang
-
依托单位:
国内基金
海外基金
基于Zip Nucleic Acids引物对高度降解和低拷贝DNA检材的STR分型研究
-
批准号:81072511
-
项目类别:面上项目
-
资助金额:31.0万元
-
批准年份:2010
-
负责人:严江伟
-
依托单位:
肽核酸(Peptide Nucleic Acid - PNA)电化学生物传感器的研究
-
批准号:20703006
-
项目类别:青年科学基金项目
-
资助金额:20.0万元
-
批准年份:2007
-
负责人:李晓宏
-
依托单位: