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Collaborative Research: Real time Chemical Imaging of Nanoparticle Templated Tubulin-Polymerization

Collaborative Research: Real time Chemical Imaging of Nanoparticle Templated Tubulin-Polymerization
合作研究:纳米颗粒模板化微管蛋白聚合的实时化学成像
批准号:
2153032
负责人:
Rohit Bhargava
金额:
$31.63万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-04-01 至 2025-03-31

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中文摘要
翻译
纳米颗粒可以设计成各种尺寸、形状和功能。该项目将研究纳米颗粒与特定细胞蛋白质的相互作用,这些蛋白质对生命过程至关重要,并为癌症等疾病开发有效的治疗方法。PI将专注于微管,微管是中空的蛋白质圆柱体,赋予细胞结构刚性,使运动性,并作为细胞内运输的管道。这些材料的生物学和生物学能力影响细胞过程,几十年来一直是广泛研究兴趣的主题。了解如何控制这些蛋白质结构的破坏可以降低细胞结构刚性,并作为癌症治疗的靶点。纳米颗粒介导的微管蛋白聚合的抑制已被简要报道,然而,仍然缺乏一般的机制的理解。这些知识不仅可以促进科学理解,而且为设计新的疗法铺平了道路。在这个项目中,PI将从生物化学和结构的角度研究纳米颗粒对微管(和其他细丝)聚合的影响。为了识别和定量评估聚合过程中纳米颗粒与微管蛋白的化学结合,PI将利用红外光谱、机器学习工具和其他生物化学技术。在分析能力方面,测量设备、成像和数据分析的集成工具包将是研究分子-环境相互作用的宝贵资源,这些相互作用可能扩展到其他生物系统。这一知识可能对理解基于纳米颗粒的新型癌症疗法具有广泛的意义。对于教育和外展活动,合作PI将开发一个探索性的计划课程,旨在为新生(科学/非科学专业),以提高他们的教育,通过更大的互动与教师在小班,并分享他们在纳米技术的研究。该团队将通过大学范围内的项目,专门为早期职业和代表性不足的学生的教育做出贡献。在这个项目中产生的算法和数据将被用作从高中到专业水平的教育活动的基础。该项目技术方法的核心是认识到,通过应用分子光谱学和成像技术,可以完全了解纳米颗粒对微管聚合的影响。通过这个项目,PI将开发最佳方法,用于微管蛋白聚合研究,纳米材料具有各种化学和表面特性。PI将利用红外光谱的优势,利用成像技术的最新进展,开发一种空间和时间分辨的方法,阐明微管动力学的分子细节,并定量评估纳米颗粒在微管蛋白聚合中的作用。该项目包括新兴的红外测量技术,该技术与红外透明、具有成本效益的微流体平台相结合,可在时空上准确控制生化环境。使用这个平台,PI将研究微管与不同组成、浓度、大小和表面功能的纳米颗粒结合后的生物化学、动力学和结构表现。将使用荧光测定法分析聚合程度。凝胶电泳研究将用于评估聚合的程度,并将分析磷酸盐释放途径,以获得可能的机制见解。将采用纳米颗粒的微流体辅助红外成像来研究调制微管的形成,以揭示完全不同的二级结构阵列的表现,所述二级结构可能由选择的单体单元在聚合期间粘附在一起的倾向引起。与聚合和干燥的微管一起孵育的纳米颗粒的红外图像将揭示具有聚集蛋白的微管的纳米颗粒光谱特征。主要的技术贡献是一种高通量红外成像方法,用于研究在微流体连续流动混合装置中存在和不存在纳米颗粒的情况下的蛋白质聚合,并验证结果以促进对纳米颗粒-蛋白质相互作用的理解。将使用统计和机器学习方法进一步研究所获得的数据。PI将努力确保这里开发的协议可供各级学生使用,使他们有机会了解纳米技术微管蛋白动力学的基本原理,并激发他们的创造力,以开发新的癌症治疗方法。此外,学生将参加专门的项目,了解这些领域未来的职业机会。该奖项反映了NSF的法定使命,并已被认为是值得通过使用基金会的智力价值和更广泛的影响审查标准进行评估的支持。
英文摘要
Nanoparticles can be designed in a variety of sizes, shapes, and functionalities. This project will research the interaction of nanoparticles with specific cellular proteins that are important for life processes and to develop effective therapies for diseases such as cancer. The PIs will focus on microtubules, which are hollow protein cylinders that impart structural rigidity to cells, enable motility, and serve as conduits for intracellular transport. The ability of these materials to polymerize and depolymerize affects cellular processes and has been the subject of extensive research interest over decades. Understanding how to control the disruption of these protein structures can reduce cellular structural rigidity and serve as a target for cancer therapy. Nanoparticle-mediated inhibition of tubulin polymerization has been reported briefly; however, a general mechanistic understanding is still lacking. Such knowledge can not only further scientific understanding but pave the way to designing novel therapies. In this project the PIs will study the influence of nanoparticles on the polymerization of microtubules (and other filaments) both from a biochemical and structural perspective. To identify and quantitatively evaluate the chemical association of the nanoparticles with tubulin during polymerization, the PIs will utilize infrared spectroscopy, machine learning tools and other biochemical techniques. In terms of analytic ability, the integrated toolkit of measurement devices, imaging, and data analysis will be a valuable resource to investigate molecular-environmental interactions that may be expanded to other biological systems. This knowledge could have widespread implications for the comprehension of nanoparticle-based novel cancer therapeutics. For educational and outreach activities, the collaborating PIs will develop an exploratory program course intended for freshman (science/non-science majors) to enhance their education through greater interaction with faculty in small classes and share their research in nanotechnology. The team will specifically contribute to the education of early career and underrepresented students via university-wide programs. The algorithms and data generated during this project will be used as a basis for educational activities from the high school to professional levels. At the core of this project's technical approach is the recognition that a complete understanding of the influence of nanoparticles on microtubules polymerization is possible by applying molecular spectroscopy and imaging. Through this project the PIs will develop best methods to use for tubulin polymerization studies with nanomaterials having various chemical and surface properties . The PIs will harness the advantages of infrared spectroscopy by using recent advances in imaging technology to develop a spatially and temporally resolved approach that illuminates molecular details of microtubules dynamics and quantitatively evaluates the role of nanoparticles in tubulin polymerization. The project includes emerging infrared measurement technology coupled to an infrared transparent, cost-effective microfluidic platform that accurately controls biochemical environments spatiotemporally. Using this platform, the PIs will investigate the biochemistry, kinetics, and structural manifest of microtubules upon association with nanoparticles of varying composition, concentration, size, and surface functionalities. The extent of polymerization will be analyzed using a fluorescence assay. Gel electrophoresis studies will be used to assess the extent of polymerization and the phosphate release pathway will be analyzed to obtain possible mechanistic insight. Microfluidics-assisted infrared imaging of the nanoparticles will be employed to study the modulated microtubules formation to reveal manifestation of a completely different array of secondary structures that may arise from the propensity of select monomer units to adhere together during polymerization. Infrared images of the nanoparticles incubated with polymerized and dried microtubules will reveal nanoparticle spectral signatures of microtubules with aggregated proteins. The main technical contribution is a high-throughput IR imaging method to study protein polymerization in the absence and presence of nanoparticles in the microfluidic continuous flow mixing device and validate the results to facilitate understanding of the nanoparticle-protein interaction. The ]obtained data will further be investigated with statistical and machine learning approaches. The PIs will work to ensure that the protocols developed here are available to students of all levels, giving them an opportunity to understand the fundamentals of tubulin dynamics with nanotechnology and stimulating their creativity to develop new cancer therapeutics. In addition, the students will participate in dedicated projects, learning about future career opportunities in these fields.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.
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会议论文
Novel acquisition and computation in vibrational spectroscopic imaging
国内基金
海外基金
Research on Quantum Field Theory without a Lagrangian Description
  • 批准号:
    24ZR1403900
  • 项目类别:
    省市级项目
  • 资助金额:
    --
  • 批准年份:
    2024
  • 负责人:
    SATOSHI NAWATA
  • 依托单位:
Cell Research
Cell Research
Cell Research (细胞研究)