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Identification of a multi-protein reductive dehalogenase complex in Dehalococcoides mccartyi strain CBDB1 suggests a
Anja Kublik1, Darja Deobald1, Stefanie Hartwig2
1Department of Isotope Biogeochemistry, Helmholtz Centre for Environmental Research - UFZ, Permoserstraße 15, 04318, Leipzig, Germany.
Insights
Dehalococcoides mccartyi strain CBDB1 utilizes a quinone-independent protein complex for respiratory dehalogenation. This complex involves reductive dehalogenase (RdhA), CISM, and hydrogenase subunits, facilitating organohalide respiration.
Area of Science:
- Microbiology
- Biochemistry
- Environmental Science
Background:
- Dehalococcoides mccartyi strain CBDB1 is an obligate organohalide-respiring bacterium.
- It uses hydrogen as an electron donor and halogenated organics as an electron acceptor.
Purpose of the Study:
- Investigate proteins in the respiratory chain of D. mccartyi under non-denaturing conditions.
- Identify and characterize the dehalogenating protein complex.
Main Methods:
- Blue native gel electrophoresis (BN-PAGE)
- Gel filtration and ultrafiltration
- Two-dimensional BN/SDS-PAGE
- Chemical cross-linking
Main Results:
- An active dehalogenating protein complex (250-270 kDa) was identified.
- The complex comprises reductive dehalogenase (RdhA), a complex iron-sulfur molybdoenzyme (CISM) subunit, and hydrogen uptake hydrogenase (Hup) subunits.
- Stepwise disintegration of the complex was observed with increasing detergent concentrations.
- Chemical cross-linking confirmed the complex's composition and potential for stabilization.
Conclusions:
- A quinone-independent, protein-based respiratory electron transfer chain is suggested in D. mccartyi.
- The identified protein complex is crucial for respiratory dehalogenation.
Abstract:
Dehalococcoides mccartyi strain CBDB1 is an obligate organohalide-respiring bacterium using only hydrogen as electron donor and halogenated organics as electron acceptor. Here, we studied proteins involved in the respiratory chain under non-denaturing conditions. Using blue native gel electrophoresis (BN-PAGE), gel filtration and ultrafiltration an active dehalogenating protein complex with a molecular mass of 250-270 kDa was identified. The active subunit of reductive dehalogenase (RdhA) colocalised with a complex iron-sulfur molybdoenzyme (CISM) subunit (CbdbA195) and an iron-sulfur cluster containing subunit (CbdbA131) of the hydrogen uptake hydrogenase (Hup). No colocalisation between the catalytically active subunits of hydrogenase and reductive dehalogenase was found. By two-dimensional BN/SDS-PAGE the stability of the complex towards detergents was assessed, demonstrating stepwise disintegration with increasing detergent concentrations. Chemical cross-linking confirmed the presence of a higher molecular mass reductive dehalogenase protein complex composed of RdhA, CISM I and Hup hydrogenase and proved to be a potential tool for stabilising protein-protein interactions of the dehalogenating complex prior to membrane solubilisation. Taken together, the identification of the respiratory dehalogenase protein complex and the absence of indications for quinone participation in the respiration suggest a quinone-independent protein-based respiratory electron transfer chain in D. mccartyi.
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