Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coli
One of the mechanisms of β-lactam antibiotic resistance requires the activity of d,d-carboxypeptidases (d,d-CPases) involved in peptidoglycan (PG) synthesis, making them putative targets for new antibiotic development. The activity of PG-synthesizing enzymes is often correlated with their associatio...
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American Society for Microbiology
2017-09-01
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doaj-21c2e44c624d4aeaaa9baa161175729c2021-07-02T04:37:13ZengAmerican Society for MicrobiologymBio2150-75112017-09-0185e01089-1710.1128/mBio.01089-17Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coliNils Y. MeiresonneRené van der PloegMark A. HinkTanneke den BlaauwenLotte Søgaard-AndersenOne of the mechanisms of β-lactam antibiotic resistance requires the activity of d,d-carboxypeptidases (d,d-CPases) involved in peptidoglycan (PG) synthesis, making them putative targets for new antibiotic development. The activity of PG-synthesizing enzymes is often correlated with their association with other proteins. The PG layer is maintained in the periplasm between the two membranes of the Gram-negative cell envelope. Because no methods existed to detect in vivo interactions in this compartment, we have developed and validated a Forster resonance energy transfer assay. Using the fluorescent-protein donor-acceptor pair mNeonGreen-mCherry, periplasmic protein interactions were detected in fixed and in living bacteria, in single samples or in plate reader 96-well format. We show that the d,d-CPases PBP5, PBP6a, and PBP6b of Escherichia coli change dimer conformation between resting and active states. Complementation studies and changes in localization suggest that these d,d-CPases are not redundant but that their balanced activity is required for robust PG synthesis.http://mbio.asm.org/cgi/content/full/8/5/e01089-17 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nils Y. Meiresonne René van der Ploeg Mark A. Hink Tanneke den Blaauwen Lotte Søgaard-Andersen |
spellingShingle |
Nils Y. Meiresonne René van der Ploeg Mark A. Hink Tanneke den Blaauwen Lotte Søgaard-Andersen Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coli mBio |
author_facet |
Nils Y. Meiresonne René van der Ploeg Mark A. Hink Tanneke den Blaauwen Lotte Søgaard-Andersen |
author_sort |
Nils Y. Meiresonne |
title |
Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coli |
title_short |
Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coli |
title_full |
Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coli |
title_fullStr |
Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coli |
title_full_unstemmed |
Activity-Related Conformational Changes in d,d-Carboxypeptidases Revealed by In Vivo Periplasmic Forster Resonance Energy Transfer Assay in Escherichia coli |
title_sort |
activity-related conformational changes in d,d-carboxypeptidases revealed by in vivo periplasmic forster resonance energy transfer assay in escherichia coli |
publisher |
American Society for Microbiology |
series |
mBio |
issn |
2150-7511 |
publishDate |
2017-09-01 |
description |
One of the mechanisms of β-lactam antibiotic resistance requires the activity of d,d-carboxypeptidases (d,d-CPases) involved in peptidoglycan (PG) synthesis, making them putative targets for new antibiotic development. The activity of PG-synthesizing enzymes is often correlated with their association with other proteins. The PG layer is maintained in the periplasm between the two membranes of the Gram-negative cell envelope. Because no methods existed to detect in vivo interactions in this compartment, we have developed and validated a Forster resonance energy transfer assay. Using the fluorescent-protein donor-acceptor pair mNeonGreen-mCherry, periplasmic protein interactions were detected in fixed and in living bacteria, in single samples or in plate reader 96-well format. We show that the d,d-CPases PBP5, PBP6a, and PBP6b of Escherichia coli change dimer conformation between resting and active states. Complementation studies and changes in localization suggest that these d,d-CPases are not redundant but that their balanced activity is required for robust PG synthesis. |
url |
http://mbio.asm.org/cgi/content/full/8/5/e01089-17 |
work_keys_str_mv |
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