CtaM Is Required for Menaquinol Oxidase aa 3 Function in Staphylococcus aureus

Author:

Hammer Neal D.1,Schurig-Briccio Lici A.2,Gerdes Svetlana Y.3,Gennis Robert B.2,Skaar Eric P.4

Affiliation:

1. Department of Microbiology and Molecular Genetics, Michigan State University, East Lansing, Michigan, USA

2. Department of Biochemistry, University of Illinois, Urbana, Illinois, USA

3. Fellowship for Interpretation of Genomes, Burr Ridge, Illinois, USA

4. Department of Pathology, Microbiology, and Immunology, Vanderbilt University Medical Center, Nashville, Tennessee, USA

Abstract

ABSTRACT Staphylococcus aureus is the leading cause of skin and soft tissue infections, bacteremia, osteomyelitis, and endocarditis in the developed world. The ability of S. aureus to cause substantial disease in distinct host environments is supported by a flexible metabolism that allows this pathogen to overcome challenges unique to each host organ. One feature of staphylococcal metabolic flexibility is a branched aerobic respiratory chain composed of multiple terminal oxidases. Whereas previous biochemical and spectroscopic studies reported the presence of three different respiratory oxygen reductases ( o type, bd type, and aa 3 type), the genome contains genes encoding only two respiratory oxygen reductases, cydAB and qoxABCD . Previous investigation showed that cydAB and qoxABCD are required to colonize specific host organs, the murine heart and liver, respectively. This work seeks to clarify the relationship between the genetic studies showing the unique roles of the cydAB and qoxABCD in virulence and the respiratory reductases reported in the literature. We establish that QoxABCD is an aa 3 -type menaquinol oxidase but that this enzyme is promiscuous in that it can assemble as a bo 3 -type menaquinol oxidase. However, the bo 3 form of QoxABCD restricts the carbon sources that can support the growth of S. aureus . In addition, QoxABCD function is supported by a previously uncharacterized protein, which we have named CtaM, that is conserved in aerobically respiring Firmicutes . In total, these studies establish the heme A biosynthesis pathway in S. aureus , determine that QoxABCD is a type aa 3 menaquinol oxidase, and reveal CtaM as a new protein required for type aa 3 menaquinol oxidase function in multiple bacterial genera. IMPORTANCE Staphylococcus aureus relies upon the function of two terminal oxidases, CydAB and QoxABCD, to aerobically respire and colonize distinct host tissues. Previous biochemical studies support the conclusion that a third terminal oxidase is also present. We establish the components of the S. aureus electron transport chain by determining the heme cofactors that interact with QoxABCD. This insight explains previous observations by revealing that QoxABCD can utilize different heme cofactors and confirms that the electron transport chain of S. aureus is comprised of two terminal menaquinol oxidases. In addition, a newly identified protein, CtaM, is found to be required for the function of QoxABCD. These results provide a more complete assessment of the molecular mechanisms that support staphylococcal respiration.

Funder

HHS | National Institutes of Health

Cystic Fibrosis Foundation

Publisher

American Society for Microbiology

Subject

Virology,Microbiology

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