Cargando…

Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth

Bacterial growth under nutrient-rich and starvation conditions is intrinsically tied to the environmental history and physiological state of the population. While high-throughput technologies have enabled rapid analyses of mutant libraries, technical and biological challenges complicate data collect...

Descripción completa

Detalles Bibliográficos
Autores principales: Atolia, Esha, Cesar, Spencer, Arjes, Heidi A., Rajendram, Manohary, Shi, Handuo, Knapp, Benjamin D., Khare, Somya, Aranda-Díaz, Andrés, Lenski, Richard E., Huang, Kerwyn Casey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7587430/
https://www.ncbi.nlm.nih.gov/pubmed/33082255
http://dx.doi.org/10.1128/mBio.01378-20
_version_ 1783600172738019328
author Atolia, Esha
Cesar, Spencer
Arjes, Heidi A.
Rajendram, Manohary
Shi, Handuo
Knapp, Benjamin D.
Khare, Somya
Aranda-Díaz, Andrés
Lenski, Richard E.
Huang, Kerwyn Casey
author_facet Atolia, Esha
Cesar, Spencer
Arjes, Heidi A.
Rajendram, Manohary
Shi, Handuo
Knapp, Benjamin D.
Khare, Somya
Aranda-Díaz, Andrés
Lenski, Richard E.
Huang, Kerwyn Casey
author_sort Atolia, Esha
collection PubMed
description Bacterial growth under nutrient-rich and starvation conditions is intrinsically tied to the environmental history and physiological state of the population. While high-throughput technologies have enabled rapid analyses of mutant libraries, technical and biological challenges complicate data collection and interpretation. Here, we present a framework for the execution and analysis of growth measurements with improved accuracy over that of standard approaches. Using this framework, we demonstrate key biological insights that emerge from consideration of culturing conditions and history. We determined that quantification of the background absorbance in each well of a multiwell plate is critical for accurate measurements of maximal growth rate. Using mathematical modeling, we demonstrated that maximal growth rate is dependent on initial cell density, which distorts comparisons across strains with variable lag properties. We established a multiple-passage protocol that alleviates the substantial effects of glycerol on growth in carbon-poor media, and we tracked growth rate-mediated fitness increases observed during a long-term evolution of Escherichia coli in low glucose concentrations. Finally, we showed that growth of Bacillus subtilis in the presence of glycerol induces a long lag in the next passage due to inhibition of a large fraction of the population. Transposon mutagenesis linked this phenotype to the incorporation of glycerol into lipoteichoic acids, revealing a new role for these envelope components in resuming growth after starvation. Together, our investigations underscore the complex physiology of bacteria during bulk passaging and the importance of robust strategies to understand and quantify growth.
format Online
Article
Text
id pubmed-7587430
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-75874302020-12-01 Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth Atolia, Esha Cesar, Spencer Arjes, Heidi A. Rajendram, Manohary Shi, Handuo Knapp, Benjamin D. Khare, Somya Aranda-Díaz, Andrés Lenski, Richard E. Huang, Kerwyn Casey mBio Research Article Bacterial growth under nutrient-rich and starvation conditions is intrinsically tied to the environmental history and physiological state of the population. While high-throughput technologies have enabled rapid analyses of mutant libraries, technical and biological challenges complicate data collection and interpretation. Here, we present a framework for the execution and analysis of growth measurements with improved accuracy over that of standard approaches. Using this framework, we demonstrate key biological insights that emerge from consideration of culturing conditions and history. We determined that quantification of the background absorbance in each well of a multiwell plate is critical for accurate measurements of maximal growth rate. Using mathematical modeling, we demonstrated that maximal growth rate is dependent on initial cell density, which distorts comparisons across strains with variable lag properties. We established a multiple-passage protocol that alleviates the substantial effects of glycerol on growth in carbon-poor media, and we tracked growth rate-mediated fitness increases observed during a long-term evolution of Escherichia coli in low glucose concentrations. Finally, we showed that growth of Bacillus subtilis in the presence of glycerol induces a long lag in the next passage due to inhibition of a large fraction of the population. Transposon mutagenesis linked this phenotype to the incorporation of glycerol into lipoteichoic acids, revealing a new role for these envelope components in resuming growth after starvation. Together, our investigations underscore the complex physiology of bacteria during bulk passaging and the importance of robust strategies to understand and quantify growth. American Society for Microbiology 2020-10-20 /pmc/articles/PMC7587430/ /pubmed/33082255 http://dx.doi.org/10.1128/mBio.01378-20 Text en Copyright © 2020 Atolia et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Atolia, Esha
Cesar, Spencer
Arjes, Heidi A.
Rajendram, Manohary
Shi, Handuo
Knapp, Benjamin D.
Khare, Somya
Aranda-Díaz, Andrés
Lenski, Richard E.
Huang, Kerwyn Casey
Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth
title Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth
title_full Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth
title_fullStr Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth
title_full_unstemmed Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth
title_short Environmental and Physiological Factors Affecting High-Throughput Measurements of Bacterial Growth
title_sort environmental and physiological factors affecting high-throughput measurements of bacterial growth
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7587430/
https://www.ncbi.nlm.nih.gov/pubmed/33082255
http://dx.doi.org/10.1128/mBio.01378-20
work_keys_str_mv AT atoliaesha environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT cesarspencer environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT arjesheidia environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT rajendrammanohary environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT shihanduo environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT knappbenjamind environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT kharesomya environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT arandadiazandres environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT lenskiricharde environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth
AT huangkerwyncasey environmentalandphysiologicalfactorsaffectinghighthroughputmeasurementsofbacterialgrowth