Protein Interactions with Nano-Scale Controlled Surfaces: The Molecular Basis for Non-fouling Behavior
Protein Interactions with Nano-Scale Controlled Surfaces: The Molecular Basis for Non-fouling Behavior
批准号:
0433753
负责人:
Shaoyi Jiang
金额:
$5.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-04-01 至 2006-03-31
中文摘要
摘要:表面对蛋白质吸附的抗性是目前人们非常感兴趣的一个课题,对生物传感器、植入生物材料和药物载体的性能至关重要。由于蛋白质具有不同的形状和表面功能,蛋白质的吸附强烈依赖于表面的纳米级化学和结构性质。尽管在蛋白质吸附方面进行了广泛的研究,但对蛋白质的不沾污机理仍缺乏分子水平的认识。本工作提出的实验与模拟相结合的研究将针对这一重要问题。智力优势:来自PI最近的模拟和实验研究。通过NSF SGER资助(1/1/03-3/31/04)的研究小组,我们发现低聚乙二醇(OEG)自组装单层膜(sam)的无污垢特性与OEG链的水化/柔韧性之间存在相关性。然而,缺乏对OEG链结合水分子的含量和结构的实验测量。为了阐明表面抵抗蛋白质吸附的分子起源,还没有从分子模拟中直接评估蛋白质和OEG表面之间的相互作用力。此外,关于OEG或聚乙二醇(PEG)基材料何时工作或失效,特别是在高温下,还存在未解决的问题。为了在分子水平上对无结垢机理有一个完整而扎实的认识,本工作将解决三个重要问题:(a)通过分子模拟获得蛋白质分子接近OEG SAM表面时的力-距离曲线;(b)利用石英晶体微平衡(QCM)/表面等离子体共振(SPR)联合实验探测OEG链上结合的水分子的数量和结构;(c)利用SPR研究OEG SAM在高温下的不结垢机理。由于表面的分子细节对蛋白质吸附非常重要,因此使用混合OEG/OH SAMs或混合乙醇和水组装溶剂都会改变OEG表面密度和结构。疏水CH3和亲水OH端接的sam将在这些研究中作为参考体系。在这些研究中使用的所有sam将使用x射线光电子能谱(XPS)和原子力显微镜(AFM)进行全面表征。更广泛的影响:这个为期一年的项目的成功将推进我们在分子水平上对无垢机理的基本认识,为评估无垢材料提供新的标准,并协助设计新的无垢材料。它将对从生物传感器到生物材料、药物输送、组织工程到海洋涂料等各种应用产生重大影响。虽然无污垢表面对这些技术至关重要,但对无污垢机理的基础研究是发现新型防污材料和涂层的推动力。研究生和本科生将参与该项目,特别是来自代表性不足群体的学生。本科研究人员将通过当地研究中心完善的外展计划招募,PI一直积极参与其中。这些知识将通过下列课程加以传播。纳米技术前沿。, .材料的计算模拟与建模。
英文摘要
ABSTRACT - 0433753Surface resistance to protein adsorption is currently a subject of great interest and is critical to the performance of biosensors, implanted biomaterials, and drug carriers. Since proteins have distinct shapes and surface functionalities, protein adsorption is strongly dependent on the nano-scale chemical and structural properties of the surface. Despite extensive research in protein adsorption, there is still a lack of a molecular-level understanding of the non-fouling mechanism. Combined experimental and simulation studies proposed in this work will target this important problem. Intellectual Merit: From recent simulation and experimental studies from the PI.s group supported through a NSF SGER grant (1/1/03-3/31/04), it appears that there is a correlation between the non-fouling properties of oligo (ethylene glycol) (OEG) self-assembled monolayers (SAMs) and the hydration/flexibility of OEG chains. However, there is a lack of experimental measurements of the content and structure of water molecules bound in OEG chains. There has been no direct evaluation of the interaction forces between a protein and an OEG surface from molecular simulations in order to elucidate the molecular origin of surface resistance to protein adsorption. Furthermore, there are unresolved issues about when OEG- or poly(ethylene glycol) (PEG)-based materials work or fail, particularly at higher temperatures. In order to provide a complete and solid understanding of the non-fouling mechanism at the molecular level, three important problems will be tackled in this work: (a) to obtain force-versus-distance curves as a protein molecule approaches an OEG SAM surface from molecular simulations, (b) to probe the amount and structure of water molecules bound in OEG chains using combined quartz crystal microbalance (QCM)/surface plasmon resonance (SPR) experiments, and (c) to study the non-fouling mechanism of OEG SAMs at higher temperatures using SPR. Since the molecular details of a surface are of great importance to protein adsorption, OEG surface density and structure will be altered using either mixed OEG/OH SAMs or mixed ethanol and water assembly solvents. Hydrophobic CH3 and hydrophilic OH terminated SAMs will be used throughout these studies as reference systems. All the SAMs used in these studies will be fully characterized using X-ray photoelectron spectroscopy (XPS) and atomic force microscopy (AFM). Broader Impact: The success of this one year project will advance our fundamental understanding of the non-fouling mechanism at the molecular level, provide new criteria to evaluate non-fouling materials, and assist the design of new non-fouling materials. It will have significant impact on various applications ranging from biosensors to biomaterials, drug delivery, and tissue engineering to marine coatings. While non-fouling surfaces are critical to these technologies, a fundamental study of the non-fouling mechanism is a driving force for discoveries of new anti-fouling materials and coatings. Graduate and undergraduate students will be involved in this project, particularly students from underrepresented groups. Undergraduate researchers will be recruited through well-established outreach programs at local research centers, in which the PI has been actively involved. The knowledge will be disseminated through the courses, such as. Frontiers in Nanotechnology., .Computational Simulation and Modeling of Materials.
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