Logo of Robert Koch InstituteLogo of Robert Koch Institute
Publication Server of Robert Koch Instituteedoc
de|en
View Item 
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.
All of edoc-ServerCommunity & CollectionTitleAuthorSubjectThis CollectionTitleAuthorSubject
PublishLoginRegisterHelp
StatisticsView Usage Statistics
All of edoc-ServerCommunity & CollectionTitleAuthorSubjectThis CollectionTitleAuthorSubject
PublishLoginRegisterHelp
StatisticsView Usage Statistics
View Item 
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
  • edoc-Server Home
  • Artikel in Fachzeitschriften
  • Artikel in Fachzeitschriften
  • View Item
2020-07-24Zeitschriftenartikel DOI: 10.1016/j.jmb.2020.06.006
Local c-di-GMP Signaling in the Control of Synthesis of the E. coli Biofilm Exopolysaccharide pEtN-Cellulose
Richter, Anja M.
Possling, Alexandra
Malysheva, Nadezhda
Yousef, Kaveh P.
Herbst, Susanne
von Kleist, Max
Hengge, Regine
In many bacteria, the biofilm-promoting second messenger c-di-GMP is produced and degraded by multiple diguanylate cyclases (DGC) and phosphodiesterases (PDE), respectively. High target specificity of some of these enzymes has led to theoretical concepts of “local” c-di-GMP signaling. In Escherichia coli K-12, which has 12 DGCs and 13 PDEs, a single DGC, DgcC, is specifically required for the biosynthesis of the biofilm exopolysaccharide pEtN-cellulose without affecting the cellular c-di-GMP pool, but the mechanistic basis of this target specificity has remained obscure. DGC activity of membrane-associated DgcC, which is demonstrated in vitro in nanodiscs, is shown to be necessary and sufficient to specifically activate cellulose biosynthesis in vivo. DgcC and a particular PDE, PdeK (encoded right next to the cellulose operon), directly interact with cellulose synthase subunit BcsB and with each other, thus establishing physical proximity between cellulose synthase and a local source and sink of c-di-GMP. This arrangement provides a localized, yet open source of c-di-GMP right next to cellulose synthase subunit BcsA, which needs allosteric activation by c-di-GMP. Through mathematical modeling and simulation, we demonstrate that BcsA binding from the low cytosolic c-di-GMP pool in E. coli is negligible, whereas a single c-di-GMP molecule that is produced and released in direct proximity to cellulose synthase increases the probability of c-di-GMP binding to BcsA several hundred-fold. This local c-di-GMP signaling could provide a blueprint for target-specific second messenger signaling also in other bacteria where multiple second messenger producing and degrading enzymes exist.
Files in this item
Thumbnail
1-s2.0-S0022283620304034-main.pdf — Adobe PDF — 2.858 Mb
MD5: c0a4e558f05b7a4c32a85328aecbdf40
Cite
BibTeX
EndNote
RIS
(CC BY-NC-ND 3.0 DE) Namensnennung - Nicht-kommerziell - Keine Bearbeitung 3.0 Deutschland(CC BY-NC-ND 3.0 DE) Namensnennung - Nicht-kommerziell - Keine Bearbeitung 3.0 Deutschland(CC BY-NC-ND 3.0 DE) Namensnennung - Nicht-kommerziell - Keine Bearbeitung 3.0 Deutschland(CC BY-NC-ND 3.0 DE) Namensnennung - Nicht-kommerziell - Keine Bearbeitung 3.0 Deutschland
Details
Terms of Use Imprint Policy Data Privacy Statement Contact

The Robert Koch Institute is a Federal Institute

within the portfolio of the Federal Ministry of Health

© Robert Koch Institute

All rights reserved unless explicitly granted.

 
DOI
10.1016/j.jmb.2020.06.006
Permanent URL
https://doi.org/10.1016/j.jmb.2020.06.006
HTML
<a href="https://doi.org/10.1016/j.jmb.2020.06.006">https://doi.org/10.1016/j.jmb.2020.06.006</a>