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The Sensor Kinase DctS Forms a Tripartite Sensor Unit with DctB and DctA for Sensing C4-dicarboxylates in Bacillus Subtilis

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Journal J Bacteriol
Specialty Microbiology
Date 2013 Dec 31
PMID 24375102
Citations 7
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Abstract

The DctSR two-component system of Bacillus subtilis controls the expression of the aerobic C4-dicarboxylate transporter DctA. Deletion of DctA leads to an increased dctA expression. The inactivation of DctB, an extracellular binding protein, is known to inhibit the expression of dctA. Here, interaction between the sensor kinase DctS and the transporter DctA as well as the binding protein DctB was demonstrated in vivo using streptavidin (Strep) or His protein interaction experiments (mSPINE or mHPINE), and the data suggest that DctA and DctB act as cosensors for DctS. The interaction between DctS and DctB was also confirmed by the bacterial two-hybrid system (BACTH). In contrast, no indication was obtained for a direct interaction between the transporter DctA and the binding protein DctB. Activity levels of uptake of [(14)C]succinate by bacteria that expressed DctA from a plasmid were similar in the absence and the presence of DctB, demonstrating that the binding protein DctB is not required for transport. Thus, DctB is involved not in transport but in cosensing with DctS, highlighting DctB as the first example of a TRAP-type binding protein that acts as a cosensor. The simultaneous presence of DctS/DctB and DctS/DctA sensor pairs and the lack of direct interaction between the cosensors DctA and DctB indicate the formation of a tripartite complex via DctS. It is suggested that the DctS/DctA/DctB complex forms the functional unit for C4-dicarboxylate sensing in B. subtilis.

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References
1.
Forward J, Behrendt M, Wyborn N, Cross R, Kelly D . TRAP transporters: a new family of periplasmic solute transport systems encoded by the dctPQM genes of Rhodobacter capsulatus and by homologs in diverse gram-negative bacteria. J Bacteriol. 1997; 179(17):5482-93. PMC: 179420. DOI: 10.1128/jb.179.17.5482-5493.1997. View

2.
Scheu P, Liao Y, Bauer J, Kneuper H, Basche T, Unden G . Oligomeric sensor kinase DcuS in the membrane of Escherichia coli and in proteoliposomes: chemical cross-linking and FRET spectroscopy. J Bacteriol. 2010; 192(13):3474-83. PMC: 2897680. DOI: 10.1128/JB.00082-10. View

3.
He F, Nair G, Soto C, Chang Y, Hsu L, Ronzone E . Molecular basis of ChvE function in sugar binding, sugar utilization, and virulence in Agrobacterium tumefaciens. J Bacteriol. 2009; 191(18):5802-13. PMC: 2737963. DOI: 10.1128/JB.00451-09. View

4.
Rucktooa P, Antoine R, Herrou J, Huvent I, Locht C, Jacob-Dubuisson F . Crystal structures of two Bordetella pertussis periplasmic receptors contribute to defining a novel pyroglutamic acid binding DctP subfamily. J Mol Biol. 2007; 370(1):93-106. DOI: 10.1016/j.jmb.2007.04.047. View

5.
Gardina P, Bormans A, Manson M . A mechanism for simultaneous sensing of aspartate and maltose by the Tar chemoreceptor of Escherichia coli. Mol Microbiol. 1998; 29(5):1147-54. DOI: 10.1046/j.1365-2958.1998.00964.x. View