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Published on: May 4, 2018
Sinorhizobium meliloti ExoR is the target of periplasmic proteolysis
Hai-Yang Lu1, Li Luo, Meng-Hua Yang
1Biological Sciences Department, Lehman College, The City University of New York, Bronx, New York, USA.
Abstract:
Sinorhizobium meliloti ExoR regulates the production of succinoglycan and flagella through the ExoS/ChvI two-component regulatory system. ExoR has been proposed to inhibit the ExoS sensor through direct interaction in the periplasm. To understand how ExoR suppression of ExoS is relieved, which is required for the expression of ExoS/ChvI-regulated symbiosis genes, we characterized wild-type ExoR and ExoR95 mutant proteins. In addition to the previously identified precursor and mature forms of ExoR (designated ExoR(p) and ExoR(m), respectively), we detected a 20-kDa form of ExoR (designated ExoR(c20)) derived from the wild-type ExoR protein, but not from the ExoR95 mutant protein. ExoR(c20) was isolated directly from S. meliloti periplasm to identify its N-terminal amino acids and the site of the proteolysis, which is highly conserved among ExoR homologs. ExoR(c20) retains the C terminus of the wild-type ExoR. When expressed directly, ExoR(c20) did not complement the exoR95 mutation, suggesting that ExoR(c20) does not function directly in the ExoR-ExoS/ChvI regulatory pathway and that ExoR(m) is the functional form of ExoR. A single-amino-acid change (ExoRL81A) at the site of ExoR periplasmic proteolysis resulted in the reduction of the amount of ExoR(m) and the loss of the regulatory function of the ExoR protein. These findings suggest that ExoR(m) is a target of periplasmic proteolysis and that the amount of ExoR(m) could be reduced through effective proteolysis to relieve its suppression of ExoS.
Insights
Sinorhizobium meliloti ExoR protein
Area of Science:
- Microbiology
- Bacterial regulatory networks
- Plant-microbe interactions
Background:
- Sinorhizobium meliloti ExoR regulates succinoglycan and flagella production via the ExoS/ChvI system.
- ExoR is proposed to inhibit the ExoS sensor in the periplasm.
- Relief of ExoR suppression is crucial for symbiosis gene expression.
Purpose of the Study:
- Investigate the mechanism of ExoR suppression relief.
- Characterize wild-type and mutant ExoR proteins.
- Identify functional forms of ExoR in the regulatory pathway.
Main Methods:
- Proteolytic processing analysis of wild-type and mutant ExoR.
- Periplasmic isolation and N-terminal sequencing of ExoR forms.
- Complementation assays to assess ExoR function.
Main Results:
- A novel 20-kDa ExoR form (ExoR(c20)) was identified from wild-type but not mutant ExoR.
- ExoR(c20) originates from periplasmic proteolysis and retains the C terminus.
- ExoR(c20) did not complement the exoR95 mutation, indicating ExoR(m) is the functional form.
- A mutation at the proteolysis site (ExoRL81A) reduced ExoR(m) levels and abolished regulatory function.
Conclusions:
- The mature form of ExoR (ExoR(m)) is the functional protein in the ExoR-ExoS/ChvI pathway.
- Periplasmic proteolysis of ExoR(m) is a regulatory mechanism.
- Reduced ExoR(m) levels via proteolysis relieve ExoS suppression, enabling symbiosis gene expression.
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