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Published on: July 4, 2016
Unusual genetic organization of a functional type I protein secretion system in Neisseria meningitidis
Karl G Wooldridge1, Murat Kizil, Damien B Wells
1Division of Microbiology and Infectious Diseases, Queens Medical Centre, Nottingham NG7 2UH, United Kingdom. karl.wooldridge@nottingham.ac.uk
Abstract:
Proteins secreted by Neisseria meningitidis are thought to play important roles in the pathogenesis of meningococcal disease. These proteins include the iron-repressible repeat-in-toxin (RTX) exoprotein FrpC. Related proteins in other pathogens are secreted via a type I secretion system (TOSS), but such a system has not been demonstrated in N. meningitidis. An in silico search of the group B meningococcal genome suggested the presence of a uniquely organized TOSS. Genes encoding homologs of the Escherichia coli HlyB (ATP-binding), HlyD (membrane fusion), and TolC (outer membrane channel) proteins were identified. In contrast to the cistronic organization of the secretion genes in most other rtx operons, the hlyD and tolC genes were adjacent but unlinked to hlyB; neither locus was part of an operon containing genes encoding putative TOSS substrates. Both loci were flanked by genes normally associated with mobile genetic elements. The three genes were shown to be expressed independently. Mutation at either locus resulted in an inability to secrete FrpC and a related protein, here called FrpC2. Successful complementation of these mutations at an ectopic site confirmed the observed phenotypes were caused by loss of function of the putative TOSS genes. We show that genes scattered in the meningococcal genome encode a functional TOSS required for secretion of the meningococcal RTX proteins.
Insights
Neisseria meningitidis secretes RTX proteins like FrpC via a type I secretion system (TOSS). This study identified scattered genes encoding a functional TOSS, crucial for meningococcal disease pathogenesis.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Neisseria meningitidis causes meningococcal disease.
- Secreted proteins, including FrpC, are key to pathogenesis.
- Type I secretion systems (TOSS) are known in other pathogens but unproven in N. meningitidis.
Purpose of the Study:
- To investigate the mechanism of protein secretion in N. meningitidis.
- To identify and characterize the type I secretion system (TOSS) responsible for secreting RTX proteins.
- To understand the genetic organization and function of the N. meningitidis TOSS.
Main Methods:
- In silico analysis of the N. meningitidis genome to identify TOSS homologs.
- Gene expression analysis and mutational studies.
- Complementation assays to confirm gene function.
Main Results:
- Identified genes homologous to E. coli HlyB, HlyD, and TolC, forming a uniquely organized TOSS.
- Demonstrated independent expression of TOSS genes.
- Showed that mutations in TOSS genes abolish secretion of FrpC and FrpC2.
- Confirmed TOSS function through ectopic complementation.
Conclusions:
- N. meningitidis possesses a functional type I secretion system (TOSS).
- The TOSS genes are scattered throughout the genome and expressed independently.
- This TOSS is essential for the secretion of RTX proteins, including FrpC, contributing to meningococcal pathogenesis.
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