Literature DB >> 23335421

Functional characterization of Clostridium difficile spore coat proteins.

Patima Permpoonpattana1, Jutarop Phetcharaburanin, Anna Mikelsone, Marcin Dembek, Sisareuth Tan, Marie-Clémence Brisson, Roberto La Ragione, Alain R Brisson, Neil Fairweather, Huynh A Hong, Simon M Cutting.   

Abstract

Spores of Clostridium difficile play a key role in the dissemination of this important human pathogen, and until recently little has been known of their functional characteristics. Genes encoding six spore coat proteins (cotA, cotB, cotCB, cotD, cotE, and sodA) were disrupted by ClosTron insertional mutagenesis. Mutation of one gene, cotA, presented a major structural defect in spore assembly, with a clear misassembly of the outermost layers of the spore coat. The CotA protein is most probably subject to posttranslational modification and could play a key role in stabilizing the spore coat. Surprisingly, mutation of the other spore coat genes did not affect the integrity of the spore, although for the cotD, cotE, and sodA mutants, enzyme activity was reduced or abolished. This could imply that these enzymatic proteins are located in the exosporium or alternatively that they are structurally redundant. Of the spore coat proteins predicted to carry enzymatic activity, three were confirmed to be enzymes using both in vivo and in vitro methods, the latter using recombinant expressed proteins. These were a manganese catalase, encoded by cotD, a superoxide dismutase (SOD), encoded by sodA, and a bifunctional enzyme with peroxiredoxin and chitinase activity, encoded by cotE. These enzymes being exposed on the spore surface would play a role in coat polymerization and detoxification of H2O2. Two additional proteins, CotF (a tyrosine-rich protein and potential substrate for SodA) and CotG (a putative manganese catalase) were shown to be located at the spore surface.

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Year:  2013        PMID: 23335421      PMCID: PMC3624542          DOI: 10.1128/JB.02104-12

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  49 in total

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Authors:  T Mizobata; M Kagawa; N Murakoshi; E Kusaka; K Kameo; Y Kawata; J Nagai
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  44 in total

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Review 4.  The Exosporium Layer of Bacterial Spores: a Connection to the Environment and the Infected Host.

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Review 7.  Clostridium difficile spore biology: sporulation, germination, and spore structural proteins.

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8.  Identification and characterization of glycoproteins on the spore surface of Clostridium difficile.

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Review 9.  Clostridium difficile virulence factors: Insights into an anaerobic spore-forming pathogen.

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