Chemistry and Biology of the Peptide Signals Used by Bacteria for Cell-Cell Communication
Chemistry and Biology of the Peptide Signals Used by Bacteria for Cell-Cell Communication
批准号:
1708714
负责人:
Helen Blackwell
金额:
$45.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-08-15 至 2021-07-31
中文摘要
有了这个奖项,美国国家科学基金会化学部的生命过程化学项目资助了海伦·E。研究细菌用来相互交流的化学信号。这种通信途径很重要,因为许多常见的细菌都使用它来启动人类,动物和植物的感染。该项目旨在研究一类细菌使用的信号的化学结构,并利用获得的信息设计和创建细菌无法自行制造的信号。这些非天然信号用于按需激活和抑制细菌通信途径。这种化学方法提供了对细菌通信的生物机制的基本新见解,并形成了对细菌信号传导的基本理解。这些项目目标的实现为研究生提供现代实验技术的研究培训,为他们在科学领域的高级职业生涯做好准备。该项目的另一个主要目标是与一位知名艺术家合作,创作艺术品和沉浸式装置作品,重新想象细菌作为合作伙伴的潜力。这种媒介被用于向美国及其他地区的广泛非科学受众传达细菌的存在、它们的化学信号网络以及它们的重要性。该研究项目的主要目标是表征革兰氏阳性细菌用于细胞间通讯或“群体感应”(QS)的自诱导肽的化学和生物学特性,并利用这些发现开发新的化学工具。革兰氏阳性菌中的QS依赖于肽衍生信号,并且在葡萄球菌物种中得到最好的表征。这些细菌使用agr型双组分信号系统进行QS,其依赖于自诱导肽(AIP)信号和同源AgrC受体。许多与感染有关的(即,毒力)表型受agr QS系统控制。因此,人们对开发化学和生物学策略来调节agr型QS信号传导并从而减弱这些病原体的影响非常感兴趣。Blackwell教授的实验室最近发现了一套非天然的AIP衍生肽,它们是AgrC受体的最有效的合成抑制剂和激活剂,因此也是QS。尽管它们的效力,AIP衍生的AgrC调节剂具有限制其作为化学工具的效用的物理性质。此外,对于这些配体如何与AgrC受体相互作用并调节其功能缺乏基本的机制了解。该项目通过综合使用合成化学、生物化学、微生物和结构生物学方法来解决这些局限性。期望是在农业型QS的现有知识的扩展。
英文摘要
With this award, the Chemistry of Life Processes Program in the NSF's Chemistry Division is funding Dr. Helen E. Blackwell from the University of Wisconsin-Madison to investigate the chemical signals that bacteria use to communicate with each other. This communication pathway is important, as many common bacteria use it to initiate infections in humans, animals, and plants. This project aims to study the chemical structures of the signals used by one class of bacteria and use the obtained information to design and create signals that the bacteria cannot make themselves. These non-natural signals are used to activate and inhibit bacterial communications pathways on demand. Such a chemical approach provides fundamental new insights into the biological mechanisms by which bacteria communicate and shape basic understanding of bacterial signaling. Realization of these project goals is providing research training for graduate students in modern experimental techniques, preparing them for advanced careers in science. Another major thrust of this project is, in collaboration with an established artist, creating artwork and an immersive installation piece where the potential of bacteria to act as cooperative partners is re-imagined. This medium is being used in communicating the presence of bacteria, their chemical signaling networks, and their importance to a broad non-scientist audience in the USA and beyond. The broad goals of this research project are to characterize the chemistry and biology of the autoinducing peptides used by Gram-positive bacteria for cell-cell communication, or "quorum sensing" (QS), and to exploit these findings for the development of new chemical tools. QS in Gram-positive bacteria depends on peptide-derived signals and is best characterized in staphylococcal species. These bacteria use agr-type, two-component signaling systems for QS that are reliant on autoinducing peptide (AIP) signals and cognate AgrC receptors. Many infection-related (i.e., virulence) phenotypes are under the control of the agr QS system. Accordingly, there is significant interest in the development of chemical and biological strategies to modulate agr-type QS signaling and thereby attenuate the impact of these pathogens. Professor Blackwell's laboratory recently discovered a suite of non-native, AIP-derived peptides that are the most potent synthetic inhibitors and activators of AgrC receptors, and thereby QS. Despite their potency, AIP-derived AgrC modulators possess physical qualities that limit their utility as chemical tools. Further, there is a lack of basic mechanistic understanding of how these ligands interact with AgrC receptors and modulate their function. This project addresses these limitations with the integrated use of synthetic chemical, biochemical, microbiological and structural biological approaches. The expectation is an expansion in the current knowledge of agr-type QS.
期刊论文(5)
专著(0)
科研奖励(0)
会议论文
The State of the Union Is Strong: a Review of ASM's 6th Conference on Cell-Cell Communication in Bacteria
国情咨文很强大:ASM 第六届细菌细胞间通讯会议回顾
DOI:
10.1128/jb.00291-18
发表时间:
2018
期刊:
Journal of Bacteriology
影响因子:
3.2
作者:
[Brown, Sam P., Blackwell, Helen E., Hammer, Brian K., O'Toole, George]
通讯作者:
O'Toole, George
DOI:
10.1021/acsinfecdis.9b00002
发表时间:
2019-04-01
期刊:
ACS INFECTIOUS DISEASES
影响因子:
5.3
作者:
[Vasquez, Joseph K., Blackwell, Helen E.]
通讯作者:
Blackwell, Helen E.
Chemical & Biological Interception of Cell-Cell Communication in Gram-Positive Bacteria
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批准号:2108511
-
项目类别:Standard Grant
-
资助金额:$50.0万
-
财政年份:2021
-
负责人:Helen Blackwell
-
依托单位:
Chemical Interception of Quorum Sensing at the Plant-Bacteria Interface
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批准号:1213526
-
项目类别:Standard Grant
-
资助金额:$39.0万
-
财政年份:2012
-
负责人:Helen Blackwell
-
依托单位:
CAREER: Chemical Control of Plant-Microbe Interactions
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批准号:0449959
-
项目类别:Continuing Grant
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资助金额:$61.5万
-
财政年份:2005
-
负责人:Helen Blackwell
-
依托单位:
国内基金
海外基金
Journal of Integrative Plant Biology
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批准号:31024801
-
项目类别:专项基金项目
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资助金额:24.0万元
-
批准年份:2010
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负责人:贺萍
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依托单位: