Reconsidering Dogmas about the Growth of Bacterial Populations

Author:

Ughy Bettina1,Nagyapati Sarolta12ORCID,Lajko Dezi B.1ORCID,Letoha Tamas3ORCID,Prohaszka Adam1ORCID,Deeb Dima12ORCID,Der Andras4ORCID,Pettko-Szandtner Aladar5,Szilak Laszlo16ORCID

Affiliation:

1. Institute of Plant Biology, Biological Research Centre, Eötvös Loránd Research Network, H-6726 Szeged, Hungary

2. Doctoral School in Biology, Faculty of Science and Informatics, University of Szeged, H-6726 Szeged, Hungary

3. PharmacoIdea Ltd., H-6726 Szeged, Hungary

4. Institute of Biophysics, Biological Research Centre, Eötvös Loránd Research Network, H-6726 Szeged, Hungary

5. Laboratory of Proteomic Research, Biological Research Centre, Eötvös Loránd Research Network, H-6726 Szeged, Hungary

6. Szilak Laboratories Bioinformatics and Molecule-Design Ltd., H-6724 Szeged, Hungary

Abstract

The growth of bacterial populations has been described as a dynamic process of continuous reproduction and cell death. However, this is far from the reality. In a well fed, growing bacterial population, the stationary phase inevitably occurs, and it is not due to accumulated toxins or cell death. A population spends the most time in the stationary phase, where the phenotype of the cells alters from the proliferating ones, and only the colony forming unit (CFU) decreases after a while, not the total cell concentration. A bacterial population can be considered as a virtual tissue as a result of a specific differentiation process, in which the exponential-phase cells develop to stationary-phase cells and eventually reach the unculturable form. The richness of the nutrient had no effect on growth rate or on stationary cell density. The generation time seems not to be a constant value, but it depended on the concentration of the starter cultures. Inoculations with serial dilutions of stationary populations reveal a so-called minimal stationary cell concentration (MSCC) point, up to which the cell concentrations remain constant upon dilutions; that seems to be universal among unicellular organisms.

Funder

Hungarian Ministry for National Economy and National Research Development and Innovation Office of Hungary

Publisher

MDPI AG

Subject

General Medicine

Reference37 articles.

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2. Survival Guide: Escherichia coli in the Stationary Phase;Pletnev;Acta Nat.,2015

3. Predictive modeling of microorganisms: LAG and LIP in monotonic growth;Vadasz;Int. J. Food Microbiol.,2005

4. Lag Phase Is a Dynamic, Organized, Adaptive, and Evolvable Period That Prepares Bacteria for Cell Division;Bertrand;J. Bacteriol.,2019

5. Johnson, J. (1798). An Essay on the Principle of Population, St. Paul’s Church-Yard.

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