EFRI-MIKS: Deciphering and Controlling the Signaling Processes in Bacterial Multicellular Systems and Bacteria-Host Interactions
EFRI-MIKS: Deciphering and Controlling the Signaling Processes in Bacterial Multicellular Systems and Bacteria-Host Interactions
批准号:
1137186
负责人:
Dacheng Ren
金额:
$200.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-10-01 至 2016-09-30
中文摘要
1137186知识优点:众所周知,细菌对抗生素和消毒剂的内在耐受性是通过形成表面附着的无柄菌落嵌入细胞外基质(称为生物膜)和形成代谢不活跃的细胞(称为持久细胞)获得的。尽管生物膜和持留细胞的重要性已被广泛认识,但其研究仍处于起步阶段,持留细胞在生物膜中的分布以及环境/宿主因素和细胞-细胞信号传导对这种分布和生物膜相关应激耐受的影响尚不清楚,主要是由于生物膜结构的异质性、基因表达的时空变化以及持久性和生物膜基因的冗余。因此,EFRI的这个项目的目标是通过使用整合良好的多学科方法解决这些关键挑战,来理解和操纵这种复杂系统中的多细胞和王国间的信号传导过程。基于最近在表面工程,图案化生物膜形成,系统生物学和分子模拟方面的成功,这个研究团队将进行首次研究,以:(1)系统地表征生物膜发育过程中持续存在物的形成,(2)确定持续存在物形成中关键基因和信号传导过程的作用,(3)开发前所未有的计算能力以准确预测信号传导因子通过生物膜的细胞外基质的移位,和(4)合成和表征用于控制释放信号调节剂以消除持留细胞的功能性纳米颗粒。一些重要问题将首次得到解答。这些发现将在设计更有效的知识为基础的策略,操纵和控制细菌多细胞行为和细菌-宿主interactions.Broader影响的变革性影响:除了生物膜的发展和persister形成的基本理解,findingsfrom这项研究还将提高细菌生理学的一般知识,有可能改变微生物控制的范式。此外,本研究的结果属于致病性和腐蚀性细菌的有害生物膜可以扩展到更好的环境友好的细菌生物膜系统的开发,这在有毒化学品的生物修复和可再生生物燃料的经济生产中具有广泛的应用。由于与持留细胞和生物膜相关的广泛问题和机遇,拟议的工作将对基础科学、经济、生物安全和医疗保健产生重大影响。除了任何技术成就之外,该项目还将在改变大学工程教育方面发挥重要作用。与传统项目专注于相对狭窄的主题不同,该项目的目标是多细胞和王国间信号传导,这是一个高度跨学科的领域。与这项研究相关的高级主题将为教授现代生物技术,分子模拟,合成生物学和生物信息学提供宝贵的材料,为学生提供关键的知识和技能,以应对科学,工程和社会挑战。这项研究还将创造令人兴奋的推广机会,并将有才华的年轻人,特别是代表性不足的群体,带入科学和工程职业生涯。
英文摘要
1137186 RenIntellectual Merit:Bacteria are well known to obtain intrinsic tolerance to antibiotics and disinfectants by forming surfaceattachedsessile colonies embedded in an extracellular matrix, known as biofilms, and by formingmetabolically inactive cells, known as persister cells. Such intrinsic tolerance also facilitates thedevelopment of multidrug resistance through acquired mechanisms, presenting a great challenge tomicrobial control.Despite the well recognized significance, research on biofilms and persister cells is still in its infancy.Distribution of persisters in biofilms and the effects of environmental/host factors and cell-cell signalingon such distribution and biofilm-associated stress tolerance are unknown, mostly due to the heterogeneityin biofilm structure, spatial and temporal variation in gene expression, and redundancy in persister andbiofilm genes. The objective of this EFRI project is therefore to understand and manipulate themulticellular and inter-kingdom signaling processes in such complex systems by addressing these keychallenges using well integrated multidisciplinary approaches.Based on recent successes in surface engineering, patterned biofilm formation, systems biology andmolecular simulation, this research team will conduct the first-of-its-kind research to: (1) systematicallycharacterize persister formation during biofilm development, (2) identify the roles of key genes andsignaling processes in persister formation, (3) develop an unprecedented computational capability toaccurately predict signaling factor translocation through the extracellular matrix of the biofilms, and (4)synthesize and characterize functional nanoparticles for controlled release of signaling modulators toeliminate persister cells. A number of important questions will be answered for the first time. Thesediscoveries will have a transformative impact in designing more effective knowledge-based strategies forthe manipulation and control of bacterial multicellular behaviors and bacteria-host interactions.Broader Impacts:In addition to fundamental understanding of biofilm development and persister formation, the findingsfrom this study will also improve the general knowledge of bacterial physiology with the potential to shiftthe paradigm of microbial control. Furthermore, the results of this research as pertains to deleteriousbiofilms of pathogenic and corrosive bacteria can be extended to the development of better biofilmsystems of environmentally friendly bacteria, which have broad applications in bioremediation of toxicchemicals and economical production of renewable biofuels. Due to the broad spectrum of problems andopportunities associated with persister cells and biofilms, the proposed work will have significant impactson basic science, economy, biosecurity and health care.Beyond any technical achievements, this project will also play an important role in transforming collegeengineering education. Unlike traditional projects that focus on relatively narrow topics, this projecttargets multicellular and inter-kingdom signaling, a highly interdisciplinary area. The advanced topicsassociated with this research will provide invaluable materials to teach modern biotechnology, molecularsimulation, synthetic biology and bioinformatics, providing the students with crucial knowledge and skillsto address the scientific, engineering and societal challenges. This research will also create excitingoutreach opportunities and bring talented young people, especially underrepresented groups, into scienceand engineering careers.
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