Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartate
Complex 3′-5′-cyclic diguanylic acid (c-di-GMP) responsive regulatory networks that are modulated by the action of multiple diguanylate cyclases (DGC; GGDEF domain proteins) and phosphodiesterases (PDE; EAL domain proteins) have evolved in many bacteria. YfgF proteins possess a membrane-anchoring do...
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doaj-58c80409472d45ebbe5f2291245fe7122020-11-25T03:23:26ZengThe Royal SocietyOpen Biology2046-24412013-01-013610.1098/rsob.130046130046Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartateMelissa LaceyAgnieshka AgasingRebecca LowryJeffrey GreenComplex 3′-5′-cyclic diguanylic acid (c-di-GMP) responsive regulatory networks that are modulated by the action of multiple diguanylate cyclases (DGC; GGDEF domain proteins) and phosphodiesterases (PDE; EAL domain proteins) have evolved in many bacteria. YfgF proteins possess a membrane-anchoring domain (MASE1), a catalytically inactive GGDEF domain and a catalytically active EAL domain. Here, sustained expression of the Salmonella enterica spp. Enterica ser. Enteritidis YfgF protein is shown to mediate inhibition of the formation of the aspartate chemotactic ring on motility agar under aerobic conditions. This phenomenon was c-di-GMP-independent because it occurred in a Salmonella strain that lacked the ability to synthesize c-di-GMP and also when PDE activity was abolished by site-directed mutagenesis of the EAL domain. YfgF-mediated inhibition of aspartate chemotactic ring formation was impaired in the altered redox environment generated by exogenous p-benzoquinone. This ability of YfgF to inhibit the response to aspartate required a motif, 213Lys-Lys-Glu215, in the predicted cytoplasmic loop between trans-membrane regions 5 and 6 of the MASE1 domain. Thus, for the first time the function of a MASE1 domain as a redox-responsive regulator of bacterial responses to aspartate has been shown.https://royalsocietypublishing.org/doi/pdf/10.1098/rsob.130046chemotaxiscyclic-di-gmpmase1 domainoxidative stresssalmonella |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Melissa Lacey Agnieshka Agasing Rebecca Lowry Jeffrey Green |
spellingShingle |
Melissa Lacey Agnieshka Agasing Rebecca Lowry Jeffrey Green Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartate Open Biology chemotaxis cyclic-di-gmp mase1 domain oxidative stress salmonella |
author_facet |
Melissa Lacey Agnieshka Agasing Rebecca Lowry Jeffrey Green |
author_sort |
Melissa Lacey |
title |
Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartate |
title_short |
Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartate |
title_full |
Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartate |
title_fullStr |
Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartate |
title_full_unstemmed |
Identification of the YfgF MASE1 domain as a modulator of bacterial responses to aspartate |
title_sort |
identification of the yfgf mase1 domain as a modulator of bacterial responses to aspartate |
publisher |
The Royal Society |
series |
Open Biology |
issn |
2046-2441 |
publishDate |
2013-01-01 |
description |
Complex 3′-5′-cyclic diguanylic acid (c-di-GMP) responsive regulatory networks that are modulated by the action of multiple diguanylate cyclases (DGC; GGDEF domain proteins) and phosphodiesterases (PDE; EAL domain proteins) have evolved in many bacteria. YfgF proteins possess a membrane-anchoring domain (MASE1), a catalytically inactive GGDEF domain and a catalytically active EAL domain. Here, sustained expression of the Salmonella enterica spp. Enterica ser. Enteritidis YfgF protein is shown to mediate inhibition of the formation of the aspartate chemotactic ring on motility agar under aerobic conditions. This phenomenon was c-di-GMP-independent because it occurred in a Salmonella strain that lacked the ability to synthesize c-di-GMP and also when PDE activity was abolished by site-directed mutagenesis of the EAL domain. YfgF-mediated inhibition of aspartate chemotactic ring formation was impaired in the altered redox environment generated by exogenous p-benzoquinone. This ability of YfgF to inhibit the response to aspartate required a motif, 213Lys-Lys-Glu215, in the predicted cytoplasmic loop between trans-membrane regions 5 and 6 of the MASE1 domain. Thus, for the first time the function of a MASE1 domain as a redox-responsive regulator of bacterial responses to aspartate has been shown. |
topic |
chemotaxis cyclic-di-gmp mase1 domain oxidative stress salmonella |
url |
https://royalsocietypublishing.org/doi/pdf/10.1098/rsob.130046 |
work_keys_str_mv |
AT melissalacey identificationoftheyfgfmase1domainasamodulatorofbacterialresponsestoaspartate AT agnieshkaagasing identificationoftheyfgfmase1domainasamodulatorofbacterialresponsestoaspartate AT rebeccalowry identificationoftheyfgfmase1domainasamodulatorofbacterialresponsestoaspartate AT jeffreygreen identificationoftheyfgfmase1domainasamodulatorofbacterialresponsestoaspartate |
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