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Tyrosine phosphorylation of CpsD negatively regulates capsular polysaccharide biosynthesis in streptococcus
J K Morona1, J C Paton, D C Miller
1Molecular Microbiology Unit, Women's and Children's Hospital, North Adelaide, South Australia 5006, Australia.
Abstract:
In Streptococcus pneumoniae, the first four genes of the capsule locus (cpsA to cpsD) are common to most serotypes. By analysis of various in-frame deletion and site-directed mutants, the function of their gene products in capsular polysaccharide (CPS) biosynthesis was investigated. We found that while CpsB, C and D are essential for encapsulation, CpsA is not. CpsC and CpsD have similarity to the amino-terminal and carboxy-terminal regions, respectively, of the autophosphorylating protein-tyrosine kinase Wzc from Escherichia coli. Alignment of CpsD with Wzc and other related proteins identified conserved Walker A and B sequence motifs and a tyrosine rich domain close to the carboxy-terminus. We have shown that CpsD is also an autophosphorylating protein-tyrosine kinase and that point mutations in cpsD affecting either the ATP-binding domain (Walker A motif) or the carboxy-terminal [YGX]4 repeat domain eliminated tyrosine phosphorylation of CpsD. We describe, for the first time, the phenotypic impact of these two mutations on polysaccharide production and show that they affect CPS production differently. Whereas a mutation in the Walker A motif resulted in loss of encapsulation, mutation of the tyrosines in the [YGX]4 repeat domain resulted in an apparent increase in encapsulation and a mucoid phenotype. These data suggest that autophosphorylation of CpsD at tyrosine attenuates its activity and reduces the level of encapsulation. Additionally, we demonstrated that CpsC is required for CpsD tyrosine phosphorylation and that CpsB influences dephosphorylation of CpsD. These results are consistent with CpsD tyrosine phosphorylation acting to negatively regulate CPS production. This has implications for the function of CpsC/CpsD homologues in both Gram-positive and Gram-negative bacteria and provides a mechanism to explain regulation of CPS production during pathogenesis.
Insights
Capsular polysaccharide (CPS) production in Streptococcus pneumoniae is regulated by CpsD tyrosine phosphorylation. This process, influenced by CpsB and CpsC, controls encapsulation levels and impacts bacterial pathogenesis.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- The capsule polysaccharide (CPS) is a key virulence factor in Streptococcus pneumoniae.
- The genes cpsA-D are conserved across most S. pneumoniae serotypes and are involved in CPS biosynthesis.
Purpose of the Study:
- To investigate the function of CpsA-D gene products in capsular polysaccharide biosynthesis.
- To elucidate the role of CpsD protein-tyrosine kinase activity in regulating CPS production.
Main Methods:
- Analysis of in-frame deletion and site-directed mutants of cpsA-D genes.
- Investigating CpsD protein-tyrosine kinase activity and phosphorylation sites.
- Phenotypic analysis of mutants to assess encapsulation and polysaccharide production.
Main Results:
- CpsB, C, and D are essential for encapsulation; CpsA is not.
- CpsD functions as an autophosphorylating protein-tyrosine kinase, with conserved Walker A/B motifs and a tyrosine-rich domain.
- Mutations in CpsD's Walker A motif abolished encapsulation, while mutations in the tyrosine-rich domain increased encapsulation and caused a mucoid phenotype.
- CpsC is required for CpsD tyrosine phosphorylation, and CpsB influences CpsD dephosphorylation.
- Tyrosine phosphorylation of CpsD negatively regulates CPS production.
Conclusions:
- CpsD tyrosine phosphorylation attenuates its activity, reducing encapsulation.
- CpsC and CpsB modulate CpsD phosphorylation status, thereby regulating CPS production.
- This regulatory mechanism of CPS production has implications for Gram-positive and Gram-negative bacteria and pathogenesis.