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CAREER: Form and Function of Bacterial Amyloid Fibers

CAREER: Form and Function of Bacterial Amyloid Fibers
职业:细菌淀粉样纤维的形式和功能
批准号:
1453247
负责人:
Lynette Cegelski
金额:
$118.5万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-06-01 至 2020-05-31

项目摘要

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中文摘要
翻译
在几乎所有生态系统中,细菌与表面结合的倾向远远超过了坚持悬浮、在浮游状态下自由生活的倾向。细菌分泌蛋白质、多糖和其他成分,以组装蜘蛛网般的基质,包围细胞,促进被称为生物膜的保护性群落的形成。保护性的物理基质使细菌能够在令人惊讶的一系列环境中定居,甚至在从黄石公园苛刻的酸性微生物垫到船体和工业输油管道的利基环境中繁衍生息。改进的生物膜模型对于了解它们的功能至关重要。在生物学、化学和材料研究中,测量化学、物理和机械性能的参数是了解复杂组件如何工作的关键。在这个项目中,实验旨在实现所需的突破性发现,通过使用高分辨率技术,将生物膜描述符从模糊的术语如“胶”和“黏液”转变为基于化学成分和分子结构的科学和定量描述。细菌自组装这些大分子结构也激励我们使用或建立这种机械上坚固的分子框架来实现新的功能。在这个项目中,PI将从事广泛的科学研究和教育推广活动。她将指导本科生和研究生,包括许多来自STEM代表性不足的群体的学生;设计课程作业改革,将更多量化概念引入生物化学课程;并领导全面的外联活动,吸引学生、教师和公众参与。主要的具体活动包括:(1)在一名高中教师的协助下,为高中科学课程开发生化生物膜实验模块,该教师每年夏天都会加入国际科学协会的实验室;(2)在本科实验室课程中整合以探索性为基础的实验模块,以鼓励真正的参与和促进学习的动手时刻;(3)协助辅导即将入学的第一代本科生和代表性不足的本科生,为STEM的大学课程做准备;以及(Iv)共享定制的主动控制反馈系统的工程协议,以在长时间采集时间内稳定核磁共振脉冲功率电平,增强核磁共振实验的稳定性,并在光谱仪监测中具有普遍价值。总体而言,在这个项目中,对教育和科学推广的承诺将研究与教学、指导和K-12推广活动相结合,以激励和授权他人影响和改善社会。在这个项目中,将研究由大肠杆菌产生的淀粉样纤维,即众所周知的卷曲。卷曲介导细菌黏附,促进生物被膜的形成。该项目将提供有关天然卷曲纤维的原子结构和功能的前所未有的详细信息,并将通过将测量原子级距离的独特固态核磁共振策略与超分辨率显微镜相结合来绘制它们与淀粉样染料及其同源生物膜多糖伙伴的相互作用图,以及检查生物膜中卷曲纤维和其他成分的更大尺度的空间排列。该项目由分子和细胞生物科学部的分子生物物理学和细胞动力学及功能簇共同资助。
英文摘要
The propensity for bacteria to associate with surfaces in nearly all ecosystems far exceeds the tendency to persist in suspension, living freely in a planktonic state. Bacteria secrete proteins, polysaccharides, and other components to assemble a spider-web like matrix that surrounds cells to promote the formation of protective communities termed biofilms. The protective physical matrix enables bacteria to colonize and even thrive in an astonishing range of environments, in niches ranging from the harsh acidic microbial mats in Yellowstone to ship hulls and industrial oil pipelines. Improved biofilm models are crucial to understanding how they function. Across biology, chemistry, and materials research, measuring parameters of chemical, physical, and mechanical properties is key to understanding how complex assemblies function. In this project, experiments are designed to achieve breakthrough discoveries needed to transform biofilm descriptors from vague terms like "glue" and "slime" to scientific and quantitative descriptions based on chemical composition and molecular architecture by using high resolution techniques. The self-assembly of these macromolecular architectures by bacteria also inspire us to use or build such mechanically robust molecular frameworks for new functions.In this project, the PI will engage in broad dissemination of scientific research and educational outreach activities. She will mentor undergraduate and graduate students, including many from groups under-represented in STEM; design coursework changes to introduce more quantitative concepts into biochemistry courses; and lead comprehensive outreach activities, engaging students, teachers, and the general public. Major specific activities include: (i) developing a biochemical biofilm laboratory module for the high-school science curriculum with assistance from a high-school teacher who joins the PI's laboratory each summer, (ii) integrating exploratory-based lab modules in undergraduate laboratory courses to encourage true engagement and the hands-on "a-ha" moments that enhance learning; (iii) assisting in the mentoring of incoming first-generation and under-represented undergraduate students in preparation for university coursework in STEM; and (iv) sharing engineering protocols for a custom-built active-control feedback system to stabilize NMR pulse power levels over long acquisition times, enhancing the stability of NMR experiments and also of general value in spectrometer monitoring. Overall, the commitment to educational and scientific outreach in this project integrates research with teaching, mentoring, and K-12 outreach activities to inspire and empower others to impact and improve the society.In this project, amyloid fibers produced by E. coli, known as curli, will be studied. Curli mediate bacterial adhesion and contribute to biofilm formation. This project will provide unprecedented detail into the atomic structure and function of native curli fibers and will map their interactions with amyloid dyes and their cognate biofilm polysaccharide partners by integrating unique solid-state nuclear magnetic resonance (NMR) strategies to measure atomic-level distances together with super-resolution microscopy to examine the larger-scale spatial arrangement of curli and other components in the biofilm. This project is jointly funded by Molecular Biophysics and Cellular Dynamics and Function Clusters in the Division of Molecular and Cellular Biosciences.
期刊论文(5)
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会议论文
DOI: 10.1016/j.mimet.2016.11.002
发表时间: 2017-01-01
期刊: JOURNAL OF MICROBIOLOGICAL METHODS
影响因子: 2.2
作者: [Joubert, Lydia-Marie, Ferreira, Jose A. G., Cegelski, Lynette]
通讯作者: Cegelski, Lynette
Unraveling biofilm matrix composition, architecture, and function
  • 批准号:
    2001189
  • 项目类别:
    Standard Grant
  • 资助金额:
    $100.0万
  • 财政年份:
    2020
  • 负责人:
    Lynette Cegelski
  • 依托单位:
国内基金
海外基金
基于Free-form机床的弧齿锥齿轮定摆角全工序法主动设计制造理论
  • 批准号:
    51805405
  • 项目类别:
    青年科学基金项目
  • 资助金额:
    29.0万元
  • 批准年份:
    2018
  • 负责人:
    杨羽
  • 依托单位:
基于“免形状(Form-free)”测量原理的复杂形状测量仪研制
  • 批准号:
    50627501
  • 项目类别:
    专项基金项目
  • 资助金额:
    100.0万元
  • 批准年份:
    2006
  • 负责人:
    石照耀
  • 依托单位: