SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.

The SaeRS two-component regulatory system of Staphylococcus aureus is known to affect the expression of many genes. The SaeS protein is the histidine kinase responsible for phosphorylation of the response regulator SaeR. In S. aureus Newman, the sae system is constitutively expressed due to a point...

Full description

Bibliographic Details
Main Authors: David Cue, Jennifer M Junecko, Mei G Lei, Jon S Blevins, Mark S Smeltzer, Chia Y Lee
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4390220?pdf=render
id doaj-de498cf474e1481fb687fd7ce65ac7f1
record_format Article
spelling doaj-de498cf474e1481fb687fd7ce65ac7f12020-11-25T01:52:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01104e012302710.1371/journal.pone.0123027SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.David CueJennifer M JuneckoMei G LeiJon S BlevinsMark S SmeltzerChia Y LeeThe SaeRS two-component regulatory system of Staphylococcus aureus is known to affect the expression of many genes. The SaeS protein is the histidine kinase responsible for phosphorylation of the response regulator SaeR. In S. aureus Newman, the sae system is constitutively expressed due to a point mutation in saeS, relative to other S. aureus strains, which results in substitution of proline for leucine at amino acid 18. Strain Newman is unable to form a robust biofilm and we report here that the biofilm-deficient phenotype is due to the saeSP allele. Replacement of the Newman saeSP with saeSL, or deletion of saeRS, resulted in a biofilm-proficient phenotype. Newman culture supernatants were observed to inhibit biofilm formation by other S. aureus strains, but did not affect biofilm formation by S. epidermidis. Culture supernatants of Newman saeSL or Newman ΔsaeRS had no significant effect on biofilm formation. The inhibitory factor was inactivated by incubation with proteinase K, but survived heating, indicating that the inhibitory protein is heat-stable. The inhibitory protein was found to affect the attachment step in biofilm formation, but had no effect on preformed biofilms. Replacement of saeSL with saeSP in the biofilm-proficient S. aureus USA300 FPR3757 resulted in the loss of biofilm formation. Culture supernatants of USA300 FPR3757 saeSP, did not inhibit biofilm formation by other staphylococci, suggesting that the inhibitory factor is produced but not secreted in the mutant strain. A number of biochemical methods were utilized to isolate the inhibitory protein. Although a number of candidate proteins were identified, none were found to be the actual inhibitor. In an effort to reduce the number of potential inhibitory genes, RNA-Seq analyses were done with wild-type strain Newman and the saeSL and ΔsaeRS mutants. RNA-Seq results indicated that sae regulates many genes that may affect biofilm formation by Newman.http://europepmc.org/articles/PMC4390220?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author David Cue
Jennifer M Junecko
Mei G Lei
Jon S Blevins
Mark S Smeltzer
Chia Y Lee
spellingShingle David Cue
Jennifer M Junecko
Mei G Lei
Jon S Blevins
Mark S Smeltzer
Chia Y Lee
SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.
PLoS ONE
author_facet David Cue
Jennifer M Junecko
Mei G Lei
Jon S Blevins
Mark S Smeltzer
Chia Y Lee
author_sort David Cue
title SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.
title_short SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.
title_full SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.
title_fullStr SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.
title_full_unstemmed SaeRS-dependent inhibition of biofilm formation in Staphylococcus aureus Newman.
title_sort saers-dependent inhibition of biofilm formation in staphylococcus aureus newman.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description The SaeRS two-component regulatory system of Staphylococcus aureus is known to affect the expression of many genes. The SaeS protein is the histidine kinase responsible for phosphorylation of the response regulator SaeR. In S. aureus Newman, the sae system is constitutively expressed due to a point mutation in saeS, relative to other S. aureus strains, which results in substitution of proline for leucine at amino acid 18. Strain Newman is unable to form a robust biofilm and we report here that the biofilm-deficient phenotype is due to the saeSP allele. Replacement of the Newman saeSP with saeSL, or deletion of saeRS, resulted in a biofilm-proficient phenotype. Newman culture supernatants were observed to inhibit biofilm formation by other S. aureus strains, but did not affect biofilm formation by S. epidermidis. Culture supernatants of Newman saeSL or Newman ΔsaeRS had no significant effect on biofilm formation. The inhibitory factor was inactivated by incubation with proteinase K, but survived heating, indicating that the inhibitory protein is heat-stable. The inhibitory protein was found to affect the attachment step in biofilm formation, but had no effect on preformed biofilms. Replacement of saeSL with saeSP in the biofilm-proficient S. aureus USA300 FPR3757 resulted in the loss of biofilm formation. Culture supernatants of USA300 FPR3757 saeSP, did not inhibit biofilm formation by other staphylococci, suggesting that the inhibitory factor is produced but not secreted in the mutant strain. A number of biochemical methods were utilized to isolate the inhibitory protein. Although a number of candidate proteins were identified, none were found to be the actual inhibitor. In an effort to reduce the number of potential inhibitory genes, RNA-Seq analyses were done with wild-type strain Newman and the saeSL and ΔsaeRS mutants. RNA-Seq results indicated that sae regulates many genes that may affect biofilm formation by Newman.
url http://europepmc.org/articles/PMC4390220?pdf=render
work_keys_str_mv AT davidcue saersdependentinhibitionofbiofilmformationinstaphylococcusaureusnewman
AT jennifermjunecko saersdependentinhibitionofbiofilmformationinstaphylococcusaureusnewman
AT meiglei saersdependentinhibitionofbiofilmformationinstaphylococcusaureusnewman
AT jonsblevins saersdependentinhibitionofbiofilmformationinstaphylococcusaureusnewman
AT markssmeltzer saersdependentinhibitionofbiofilmformationinstaphylococcusaureusnewman
AT chiaylee saersdependentinhibitionofbiofilmformationinstaphylococcusaureusnewman
_version_ 1724992737979138048