MultiMEc · A multilevel integrative approach to microbial ecology: from molecular networks to cellular interactions in a spatially structured community
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2021-08-01 → 2023-07-31
- Финансиране от ЕС
- 203 149 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Микробните взаимодействия се изучават чрез пример с бактериите E. coli и L. plantarum, за да се разбере как позицията на клетките влияе върху тяхното развитие. Това помага при управлението на микробиомни общности за медицински, индустриални или екологични цели.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
A multilevel integrative approach to microbial ecology: from molecular networks to cellular interactions in a spatially structured community
Microbial communities profoundly influence global biogeochemical cycles and human life. Understanding their wiring is crucial to manage, rationally manipulate, or de novo assemble communities for environmental, industrial or medical applications. However, studying the complex web of microbial interactions and how they are affected by the spatial structure of the community is experimentally challenging. A crucial yet poorly understood aspect of microbial interactions is the spatial dimension. For example, in a biofilm or the intestinal mucosae in the human gut, bacteria find themselves in a highly structured environment where each cell is exposed to a unique set of environmental factors depending on its position in the community and its immediate neighbours. To better understand microbial communities, we need to know how individual cells interact with each other and how molecular and cellular processes in individuals scale up to determine the structure and activity of the entire community. The goal of the proposed research was to study microbial interactions at multiple levels, from the molecular processes involved, to the effects of these interactions on survival and growth, to how they are affected by environmental conditions and the spatial arrangement of cells. To achieve this, we worked with a synthetic community consisting of two members of the human gastrointestinal microbiota, the commensal gut microbe Escherichia coli and the lactic acid bacterium Lactobacillus plantarum. L. plantarum is widely used in food fermentation and has been reported to have a number of health benefits. As is typical for lactic acid bacteria, L. plantarum has multiple amino acid and vitamin auxotrophies; however, these may be compensated for by co-culturing it with E. coli which produces the required compounds. Recent mathematical models suggest that the two species engage in diverse metabolic interactions in the gut and that these interactions drastically differ as a function of oxygen availability. The project established the synthetic community of the two gut microbial strains E. coli and L. plantarum as a model system for future studies by us and others. By profiling different growth conditions and performing follow-up experiments in a spatially structured setting, we found conditions in which the two strains interact in a mutualistic way, i.e., both are benefiting of the presence of the other strain. We also made an interesting discovery where we found that L. plantarum can assume a “zombie” state in which it is itself unable to grow but metabolically active enough to support E. coli’s growth over extended periods of time. Such a phenomenon has, to the best of our knowledge, not yet been described before for any bacterial species and our research group is continuing the research on this project.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Microbial communities profoundly influence global biogeochemical cycles and human life. Understanding their wiring is crucial to manage, rationally manipulate, or de novo assemble communities for environmental, industrial or medical applications. However, studying the complex web of microbial interactions and how they are affected by the spatial structure of the community is experimentally challenging. Here, I propose an integrative approach to dissect microbial interactions in a synthetic community consisting of two bacterial species of the human gut microbiota, the commensal Escherichia coli and the probiotic lactic acid bacterium Lactobacillus plantarum. These two species were predicted to engage in exploitative and mutualistic metabolic interactions depending on oxygen availability and provide an experimentally tractable and possibly health-relevant model community. I will employ a combination of highly sensitive quantitative analyses on the molecular level (proteomics, metabolomics, CRISPR/Cas9 genetic perturbations) with quantitative analyses on the individual cell and community level (cellular growth rates and spatial organization) to obtain a comprehensive mechanistic understanding of the interactions between the two species. The multilayered nature of the approach, including the conceptualization of the interactions with a mathematical model, is expected to provide novel insights into the fundamental principles underlying microbial interactions and how they are affected by the environment. Furthermore, a detailed understanding of the molecular interactions of L. plantarum with other gut residents could inform the rational modulation of the gut microbiome to treat diseases associated with dysbiosis. This fellowship would have a major impact on my career by facilitating re-integration into the European research landscape. It would allow me to acquire a unique and competitive scientific profile and to establish my own niche in the field of microbial ecology.
Оригинален текст от CORDIS (на английски).
Участници
- EIDGENOESSISCHE TECHNISCHE HOCHSCHULE ZUERICH · ZuerichКоординаторШвейцария
Връзки
Данни: CORDIS, © Европейски съюз
