The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments

© 2014 PLOS ONE. Introduction: Cellular metabolism can be considered to have two extremes: one is characterized by exponential growth (in 2D cultures) and the other by a dynamic equilibrium (in 3D cultures). We have analyzed the proteome and cellular architecture at these two extremes and found that...

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Main Authors: Krzysztof Wrzesinski, Adelina Rogowska-Wrzesinska, Rattiyaporn Kanlaya, Kamil Borkowski, Veit Schwämmle, Jie Dai, Kira Eyd Joensen, Katarzyna Wojdyla, Vasco Botelho Carvalho, Stephen J. Fey
Other Authors: Syddansk Universitet
Format: Article
Published: 2018
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/32986
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spelling th-mahidol.329862018-11-09T08:50:37Z The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments Krzysztof Wrzesinski Adelina Rogowska-Wrzesinska Rattiyaporn Kanlaya Kamil Borkowski Veit Schwämmle Jie Dai Kira Eyd Joensen Katarzyna Wojdyla Vasco Botelho Carvalho Stephen J. Fey Syddansk Universitet Kobenhavns Universitet Mahidol University Agricultural and Biological Sciences Biochemistry, Genetics and Molecular Biology © 2014 PLOS ONE. Introduction: Cellular metabolism can be considered to have two extremes: one is characterized by exponential growth (in 2D cultures) and the other by a dynamic equilibrium (in 3D cultures). We have analyzed the proteome and cellular architecture at these two extremes and found that they are dramatically different.Results: Structurally, actin organization is changed, microtubules are increased and keratins 8 and 18 decreased. Metabolically, glycolysis, fatty acid metabolism and the pentose phosphate shunt are increased while TCA cycle and oxidative phosphorylation is unchanged. Enzymes involved in cholesterol and urea synthesis are increased consistent with the attainment of cholesterol and urea production rates seen in vivo. DNA repair enzymes are increased even though cells are predominantly in Go. Transport around the cell - along the microtubules, through the nuclear pore and in various types of vesicles has been prioritized. There are numerous coherent changes in transcription, splicing, translation, protein folding and degradation. The amount of individual proteins within complexes is shown to be highly coordinated. Typically subunits which initiate a particular function are present in increased amounts compared to other subunits of the same complex.Summary: We have previously demonstrated that cells at dynamic equilibrium can match the physiological performance of cells in tissues in vivo. Here we describe the multitude of protein changes necessary to achieve this performance. 2018-11-09T01:43:50Z 2018-11-09T01:43:50Z 2014-09-15 Article PLoS ONE. Vol.9, No.9 (2014) 10.1371/journal.pone.0106973 19326203 2-s2.0-84907143452 https://repository.li.mahidol.ac.th/handle/123456789/32986 Mahidol University SCOPUS https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=84907143452&origin=inward
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Agricultural and Biological Sciences
Biochemistry, Genetics and Molecular Biology
spellingShingle Agricultural and Biological Sciences
Biochemistry, Genetics and Molecular Biology
Krzysztof Wrzesinski
Adelina Rogowska-Wrzesinska
Rattiyaporn Kanlaya
Kamil Borkowski
Veit Schwämmle
Jie Dai
Kira Eyd Joensen
Katarzyna Wojdyla
Vasco Botelho Carvalho
Stephen J. Fey
The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments
description © 2014 PLOS ONE. Introduction: Cellular metabolism can be considered to have two extremes: one is characterized by exponential growth (in 2D cultures) and the other by a dynamic equilibrium (in 3D cultures). We have analyzed the proteome and cellular architecture at these two extremes and found that they are dramatically different.Results: Structurally, actin organization is changed, microtubules are increased and keratins 8 and 18 decreased. Metabolically, glycolysis, fatty acid metabolism and the pentose phosphate shunt are increased while TCA cycle and oxidative phosphorylation is unchanged. Enzymes involved in cholesterol and urea synthesis are increased consistent with the attainment of cholesterol and urea production rates seen in vivo. DNA repair enzymes are increased even though cells are predominantly in Go. Transport around the cell - along the microtubules, through the nuclear pore and in various types of vesicles has been prioritized. There are numerous coherent changes in transcription, splicing, translation, protein folding and degradation. The amount of individual proteins within complexes is shown to be highly coordinated. Typically subunits which initiate a particular function are present in increased amounts compared to other subunits of the same complex.Summary: We have previously demonstrated that cells at dynamic equilibrium can match the physiological performance of cells in tissues in vivo. Here we describe the multitude of protein changes necessary to achieve this performance.
author2 Syddansk Universitet
author_facet Syddansk Universitet
Krzysztof Wrzesinski
Adelina Rogowska-Wrzesinska
Rattiyaporn Kanlaya
Kamil Borkowski
Veit Schwämmle
Jie Dai
Kira Eyd Joensen
Katarzyna Wojdyla
Vasco Botelho Carvalho
Stephen J. Fey
format Article
author Krzysztof Wrzesinski
Adelina Rogowska-Wrzesinska
Rattiyaporn Kanlaya
Kamil Borkowski
Veit Schwämmle
Jie Dai
Kira Eyd Joensen
Katarzyna Wojdyla
Vasco Botelho Carvalho
Stephen J. Fey
author_sort Krzysztof Wrzesinski
title The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments
title_short The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments
title_full The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments
title_fullStr The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments
title_full_unstemmed The cultural divide: Exponential growth in classical 2D and metabolic equilibrium in 3D environments
title_sort cultural divide: exponential growth in classical 2d and metabolic equilibrium in 3d environments
publishDate 2018
url https://repository.li.mahidol.ac.th/handle/123456789/32986
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