C-terminal eYFP fusion impairs Escherichia coli MinE function
The Escherichia coli Min system plays an important role in the proper placement of the septum ring at mid-cell during cell division. MinE forms a pole-to-pole spatial oscillator with the membrane-bound ATPase MinD, resulting in MinD concentration being the lowest at mid-cell. MinC, the direct inhibi...
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doaj-032bbaf0682f46908edf819e22cac38c2020-11-25T02:48:10ZengThe Royal SocietyOpen Biology2046-24412020-05-0110510.1098/rsob.200010200010C-terminal eYFP fusion impairs Escherichia coli MinE functionNavaneethan PalanisamyMehmet Ali ÖztürkEmir Bora AkmeriçBarbara Di VenturaThe Escherichia coli Min system plays an important role in the proper placement of the septum ring at mid-cell during cell division. MinE forms a pole-to-pole spatial oscillator with the membrane-bound ATPase MinD, resulting in MinD concentration being the lowest at mid-cell. MinC, the direct inhibitor of the septum initiator protein FtsZ, forms a complex with MinD at the membrane, mirroring its polar gradients. Therefore, MinC-mediated FtsZ inhibition occurs away from mid-cell. Min oscillations are often studied in living cells by time-lapse microscopy using fluorescently labelled Min proteins. Here, we show that, despite permitting oscillations to occur in a range of protein concentrations, the enhanced yellow fluorescent protein (eYFP) C-terminally fused to MinE impairs its function. Combining in vivo, in vitro and in silico approaches, we demonstrate that eYFP compromises the ability of MinE to displace MinC from MinD, to stimulate MinD ATPase activity and to directly bind to the membrane. Moreover, we reveal that MinE-eYFP is prone to aggregation. In silico analyses predict that other fluorescent proteins are also likely to compromise several functionalities of MinE, suggesting that the results presented here are not specific to eYFP.https://royalsocietypublishing.org/doi/pdf/10.1098/rsob.200010mineeyfpfusion proteinsmin systemmolecular dynamics simulations |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Navaneethan Palanisamy Mehmet Ali Öztürk Emir Bora Akmeriç Barbara Di Ventura |
spellingShingle |
Navaneethan Palanisamy Mehmet Ali Öztürk Emir Bora Akmeriç Barbara Di Ventura C-terminal eYFP fusion impairs Escherichia coli MinE function Open Biology mine eyfp fusion proteins min system molecular dynamics simulations |
author_facet |
Navaneethan Palanisamy Mehmet Ali Öztürk Emir Bora Akmeriç Barbara Di Ventura |
author_sort |
Navaneethan Palanisamy |
title |
C-terminal eYFP fusion impairs Escherichia coli MinE function |
title_short |
C-terminal eYFP fusion impairs Escherichia coli MinE function |
title_full |
C-terminal eYFP fusion impairs Escherichia coli MinE function |
title_fullStr |
C-terminal eYFP fusion impairs Escherichia coli MinE function |
title_full_unstemmed |
C-terminal eYFP fusion impairs Escherichia coli MinE function |
title_sort |
c-terminal eyfp fusion impairs escherichia coli mine function |
publisher |
The Royal Society |
series |
Open Biology |
issn |
2046-2441 |
publishDate |
2020-05-01 |
description |
The Escherichia coli Min system plays an important role in the proper placement of the septum ring at mid-cell during cell division. MinE forms a pole-to-pole spatial oscillator with the membrane-bound ATPase MinD, resulting in MinD concentration being the lowest at mid-cell. MinC, the direct inhibitor of the septum initiator protein FtsZ, forms a complex with MinD at the membrane, mirroring its polar gradients. Therefore, MinC-mediated FtsZ inhibition occurs away from mid-cell. Min oscillations are often studied in living cells by time-lapse microscopy using fluorescently labelled Min proteins. Here, we show that, despite permitting oscillations to occur in a range of protein concentrations, the enhanced yellow fluorescent protein (eYFP) C-terminally fused to MinE impairs its function. Combining in vivo, in vitro and in silico approaches, we demonstrate that eYFP compromises the ability of MinE to displace MinC from MinD, to stimulate MinD ATPase activity and to directly bind to the membrane. Moreover, we reveal that MinE-eYFP is prone to aggregation. In silico analyses predict that other fluorescent proteins are also likely to compromise several functionalities of MinE, suggesting that the results presented here are not specific to eYFP. |
topic |
mine eyfp fusion proteins min system molecular dynamics simulations |
url |
https://royalsocietypublishing.org/doi/pdf/10.1098/rsob.200010 |
work_keys_str_mv |
AT navaneethanpalanisamy cterminaleyfpfusionimpairsescherichiacoliminefunction AT mehmetaliozturk cterminaleyfpfusionimpairsescherichiacoliminefunction AT emirboraakmeric cterminaleyfpfusionimpairsescherichiacoliminefunction AT barbaradiventura cterminaleyfpfusionimpairsescherichiacoliminefunction |
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