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      High-throughput quantification of microbial birth and death dynamics using fluorescence microscopy

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          Abstract

          Background:

          Microbes live in dynamic environments where nutrient concentrations fluctuate. Quantifying fitness in terms of birth rate and death rate in a wide range of environments is critical for understanding microbial evolution and ecology.

          Methods:

          Here, using high-throughput time-lapse microscopy, we have quantified how Saccharomyces cerevisiae mutants incapable of synthesizing an essential metabolite (auxotrophs) grow or die in various concentrations of the required metabolite. We establish that cells normally expressing fluorescent proteins lose fluorescence upon death and that the total fluorescence in an imaging frame is proportional to the number of live cells even when cells form multiple layers. We validate our microscopy approach of measuring birth and death rates using flow cytometry, cell counting, and chemostat culturing.

          Results:

          For lysine-requiring cells, very low concentrations of lysine are not detectably consumed and do not support cell birth, but delay the onset of death phase and reduce the death rate compared to no lysine. In contrast, in low hypoxanthine, hypoxanthine-requiring cells can produce new cells, yet also die faster than in the absence of hypoxanthine. For both strains, birth rates under various metabolite concentrations are better described by the sigmoidal-shaped Moser model than the well-known Monod model, while death rates can vary with metabolite concentration and time.

          Conclusions:

          Our work reveals how time-lapse microscopy can be used to discover non-intuitive microbial birth and death dynamics and to quantify growth rates in many environments.

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          Author and article information

          Journal
          101639642
          42959
          Quant Biol
          Quant Biol
          Quantitative biology (Beijing, China)
          2095-4689
          2095-4697
          10 September 2019
          4 January 2019
          March 2019
          09 October 2019
          : 7
          : 1
          : 69-81
          Affiliations
          Fred Hutchinson Cancer Research Center, Seattle, WA 98109, USA
          Author notes
          [†]

          These authors contributed equally to this work.

          [* ]Correspondence: wenying.shou@ 123456gmail.com
          Article
          PMC6785046 PMC6785046 6785046 nihpa1049719
          10.1007/s40484-018-0160-7
          6785046
          31598381
          b327cdf1-f9a3-4612-8697-82aae1e95526
          History
          Categories
          Article

          microbial growth,birth rate,fluorescence microscopy, Saccharomyces cerevisiae ,death rate

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