globalchange  > 影响、适应和脆弱性
项目编号: 1412283
项目名称:
Multiscale Models for Synthetic Biological Antibiotic Technologies
作者: Yiannis Kaznessis
承担单位: University of Minnesota-Twin Cities
批准年: 2013
开始日期: 2014-08-01
结束日期: 2018-07-31
资助金额: USD343339
资助来源: US-NSF
项目类别: Standard Grant
国家: US
语种: 英语
特色学科分类: Engineering - Chemical, Bioengineering, Environmental, and Transport Systems
英文关键词: antibiotic ; lab ; available antibiotic ; antibiotic technology ; peptide antibiotic ; multiscale modeling tool ; promoter ; multiscale modeling technique ; multiscale mathematical model ; new antibiotic technology
英文摘要: 1412283
Kaznessis, Yiannis N.

It is proposed to build tools that facilitate development of new antibiotic technologies. For eighty years the life expectancy and the standards of living of humans greatly improved largely thanks to antibiotics. But the era of antibiotics may be coming to an end, as bacteria are developing resistance to all available antibiotics and rendering important therapies obsolete. The specific challenge addressed is related to foodborne bacterial gastrointestinal infections that jeopardize food safety and sustainable agriculture practices. These infections are significant causes of morbidity and mortality worldwide. It is proposed to explore the therapeutic potential of probiotic lactic acid bacteria (LAB) that express and release antimicrobial peptides (AMPs) by developing a toolbox for testing LAB as 'smart' AMP-delivery vehicles against foodborne bacteria. The proposed work will have significant broader societal impact, as it constitutes a new strategy to reduce over-consumption of antibiotics. In addition, high school students will be trained in elements of microbiology, antibiotic technologies and bioinformatics. These students will be recruited from inner city schools with large percentages of students from ethnic or racial minorities. These students will also benefit from rich interdisciplinary interactions in this project.

Tools will be developed to detect and inhibit three Gram-positive bacterial species: Clostridia spp., Listeria spp. and Enterococcus spp. (in short CLE). In particular, experimental tools will be developed that facilitate modification of LAB to detect CLE and then produce a molecular arsenal that targets CLE pathogens. Detection will be based on pheromone-responding genetic promoters, moved from CLE into LAB. The molecular arsenal will consist of AMPs and phage endolysins. In parallel, multiscale modeling tools will be developed that provide mechanistic understanding and aid in experimental design of both the promoters and the antimicrobial molecules. There are two major objectives: (1) Develop a toolbox of protein expression and secretion systems in LAB. Libraries of promoters will be constructed to express AMPs and endolysins in LAB. Aided by multiscale modeling techniques, three libraries of promoters will be constructed in LAB: (i) promoters that respond to CLE pheromones; (ii) environment-sensitive promoters; (iii) constitutive promoters. (2) Develop a toolbox of methods for high-throughput discovery of peptide antibiotics by discovering and characterizing effective AMPs combining high-throughput AMP screening experiments with multiscale mathematical models, and by testing phage endolysins, a distinct class of potent antimicrobial enzymes.
资源类型: 项目
标识符: http://119.78.100.158/handle/2HF3EXSE/96257
Appears in Collections:影响、适应和脆弱性
气候减缓与适应

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Yiannis Kaznessis. Multiscale Models for Synthetic Biological Antibiotic Technologies. 2013-01-01.
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