Yeast H2S Signalling · Quantitatively deciphering a novel metabolic pathway triggered by sulfide gas
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2021-10-01 → 2023-09-30
- Финансиране от ЕС
- 212 934 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Дрождите Saccharomyces cerevisiae използват непознат механизъм, за да усвояват сероводорен газ, когато достигнат определена гъстота. Разбирането на тези метаболитни пътища помага за разработването на нови терапевтични методи.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Quantitatively deciphering a novel metabolic pathway triggered by sulfide gas
Excreted chemicals form a major component of the language through which living cells communicate with each other. When these chemicals are gaseous, they can mediate rapid interactions between seemingly unconnected cell populations. Gaseous mediators are widespread in biology. For instance, plants use an elaborate vocabulary of volatile compounds to attract pollinators or warn conspecifics of predators. Some gases such as hydrogen sulfide are produced by most cell types and can impact tissue in diverse ways: while high doses of sulfide can be toxic, in controlled doses, the gas can regulate blood vessel diameter, enhance biofilm formation in the gut microbiome, and affect longevity in a range of organisms such as yeast, flies and rodents. Interestingly, many other volatile sulfur compounds are produced in microbial cells, but their functions are not well understood. Better knowledge of the metabolic pathways that produce and consume volatile compounds thus holds potential for novel therapeutics. The overall aim of this project was to identify a hidden pathway in the budding yeast, Saccharomyces cerevisiae, which can assimilate sulfide into organic sulfur compounds—essential nutrients for all cell types. Our preliminary work had revealed gaps in the current understanding of yeast sulfur metabolism; even when a key gene involved in sulfide assimilation (MET17) was deleted, yeast could assimilate sulfide through an unknown alternative mechanism, however only in cultures exceeding a threshold cell density. Thus, to understand how these yeast populations overcome their metabolic defect in a density-dependent manner, we aimed to 1) develop quantitative tools to understand their sulfide-response, 2) identify gene(s) in the alternative sulfide metabolism, and 3) reveal the function of these genes when the primary route of sulfide assimilation was not perturbed. Synergistically combining mathematical modelling and quantitative experiments, we elucidated the mechanism by which MET17-lacking yeast overcome their metabolic defect. We found that the uncharacterized locus YLL058W carries out sulfide assimilation in the absence of MET17, albeit at a low efficiency, making the growth outcome sensitive to factors that affect sulfide accumulation: cell density and gas escape. Thus, our research resolved misconceptions and revealed novel aspects of sulfur metabolism in budding yeast. Furthermore, we developed generalisable quantitative tools for studying diverse chemical-mediated interactions in microbial communities.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Gaseous mediators are ubiquitous in biology. For example, hydrogen sulfide (H2S) signalling leads to cardioprotective effects in humans and is believed to be beneficial for the mammalian gut microbiome. However, gaseous mediators in microbiology are under-explored because quantification of volatiles is challenging. Here, I will investigate how the volatile metabolite H2S can mediate cell-cell interactions and trigger a hitherto unknown sulfur metabolism pathway in Saccharomyces cerevisiae. Conventionally, Met17 is believed to be the only enzyme that can assimilate H2S (generated from inorganic sulfate) into organic compounds, and hence essential for growth on inorganic sulfur sources. However, I observed that the met17 deletion mutant can in fact grow on inorganic sulfate, albeit only at sufficiently high initial cell densities. My preliminary analyses suggest that H2S accumulates in met17- cultures, and when it reaches a threshold, enables cell growth by triggering an alternative sulfur metabolism pathway. In this proposal, I will 1) quantitatively understand how the alternative pathway responds to H2S by developing a mathematical model of density-dependent growth in met17- populations; 2) uncover the novel sulfur metabolism pathway in yeast by using transcriptomics and genetics; and 3) investigate the contribution of this H2S-responsive pathway to the fitness of wildtype yeast using population dynamics analyses. My research will not only offer mechanistic insights into how hidden aspects of yeast sulfur metabolism may contribute to cell-cell interactions and fitness, but also provide quantitative tools for studying gas-mediated microbial interactions from an interdisciplinary perspective. Finally, the project will extensively train me in the synergistic interplay between experiments and mathematical modelling — a style I hope to establish in my future, independent research.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITY COLLEGE LONDON · LondonКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
