Cross-feeding promotes heterogeneity within yeast cell populations

被引:0
|
作者
Kevin K. Y. Hu
Ankita Suri
Geoff Dumsday
Victoria S. Haritos
机构
[1] Monash University,Department of Chemical and Biological Engineering
[2] Commonwealth Scientific and Industrial Research Organisation,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Cellular heterogeneity in cell populations of isogenic origin is driven by intrinsic factors such as stochastic gene expression, as well as external factors like nutrient availability and interactions with neighbouring cells. Heterogeneity promotes population fitness and thus has important implications in antimicrobial and anticancer treatments, where stress tolerance plays a significant role. Here, we study plasmid retention dynamics within a population of plasmid-complemented ura3∆0 yeast cells, and show that the exchange of complementary metabolites between plasmid-carrying prototrophs and plasmid-free auxotrophs allows the latter to survive and proliferate in selective environments. This process also affects plasmid copy number in plasmid-carrying prototrophs, further promoting cellular functional heterogeneity. Finally, we show that targeted genetic engineering can be used to suppress cross-feeding and reduce the frequency of plasmid-free auxotrophs, or to exploit it for intentional population diversification and division of labour in co-culture systems.
引用
收藏
相关论文
共 50 条
  • [1] Cross-feeding promotes heterogeneity within yeast cell populations
    Hu, Kevin K. Y.
    Suri, Ankita
    Dumsday, Geoff
    Haritos, Victoria S.
    NATURE COMMUNICATIONS, 2024, 15 (01)
  • [2] Metabolic heterogeneity and cross-feeding within isogenic yeast populations captured by DILAC
    Stephan Kamrad
    Clara Correia-Melo
    Lukasz Szyrwiel
    Simran Kaur Aulakh
    Jürg Bähler
    Vadim Demichev
    Michael Mülleder
    Markus Ralser
    Nature Microbiology, 2023, 8 : 441 - 454
  • [3] Metabolic heterogeneity and cross-feeding within isogenic yeast populations captured by DILAC
    Kamrad, Stephan
    Correia-Melo, Clara
    Szyrwiel, Lukasz
    Aulakh, Simran Kaur
    Baehler, Juerg
    Demichev, Vadim
    Muelleder, Michael
    Ralser, Markus
    NATURE MICROBIOLOGY, 2023, 8 (03) : 441 - +
  • [4] Production and cross-feeding of nitrite within Prochlorococcus populations
    Berube, Paul M.
    O'Keefe, Tyler J.
    Rasmussen, Anna
    LeMaster, Trent
    Chisholm, Sallie W.
    MBIO, 2023, 14 (04):
  • [5] Evolution of cross-feeding in microbial populations
    Pfeiffer, T
    Bonhoeffer, S
    AMERICAN NATURALIST, 2004, 163 (06): : E126 - E135
  • [6] Metabolic Heterogeneity and Cross-Feeding in Bacterial Multicellular Systems
    Evans, Christopher R.
    Kempes, Christopher P.
    Price-Whelan, Alexa
    Dietrich, Lars E. P.
    TRENDS IN MICROBIOLOGY, 2020, 28 (09) : 732 - 743
  • [7] Cell Biology and Microbiology: A Continuous Cross-Feeding
    Pizarro-Cerda, Javier
    Cossart, Pascale
    TRENDS IN CELL BIOLOGY, 2016, 26 (07) : 469 - 471
  • [8] A molecular toolkit of cross-feeding strains for engineering synthetic yeast communities
    Peng, Huadong
    Darlington, Alexander P. S.
    South, Eric J.
    Chen, Hao-Hong
    Jiang, Wei
    Ledesma-Amaro, Rodrigo
    NATURE MICROBIOLOGY, 2024, 9 (03) : 848 - 863
  • [9] A molecular toolkit of cross-feeding strains for engineering synthetic yeast communities
    Huadong Peng
    Alexander P. S. Darlington
    Eric J. South
    Hao-Hong Chen
    Wei Jiang
    Rodrigo Ledesma-Amaro
    Nature Microbiology, 2024, 9 : 848 - 863
  • [10] Cross-feeding between intestinal pathobionts promotes their overgrowth during undernutrition
    Huus, K. E.
    Hoang, T. T.
    Creus-Cuadros, A.
    Cirstea, M.
    Vogt, S. L.
    Knuff-Janzen, K.
    Sansonetti, P. J.
    Vonaesch, P.
    Finlay, B. B.
    NATURE COMMUNICATIONS, 2021, 12 (01)