Related Experiment Video
Updated: Jul 16, 2026

Detection and Isolation of Campylobacter spp. from Raw Meat
Published on: February 23, 2024
Structural and functional properties of a truncated hemoglobin from a food-borne pathogen Campylobacter jejuni
Changyuan Lu1, Tsuyoshi Egawa, Laura M Wainwright
1Department of Physiology and Biophysics, Albert Einstein College of Medicine, Bronx, New York 10461, USA.
Insights
Campylobacter jejuni's Ctb hemoglobin has a unique H-bonding network, giving it high oxygen affinity. This suggests Ctb may function in peroxidase or P450-type reactions, not oxygen transport.
Area of Science:
- Biochemistry
- Microbiology
- Structural Biology
Background:
- Campylobacter jejuni possesses two hemoglobins: Cgb and Ctb.
- Cgb is implicated in nitric oxide (NO) detoxification.
- The function of Ctb, a class III truncated hemoglobin, is unknown.
Purpose of the Study:
- To elucidate the physiological function of Ctb.
- To investigate the structural and functional properties of Ctb's distal heme pocket.
- To understand the factors contributing to Ctb's ligand-binding characteristics.
Main Methods:
- Carbon monoxide (CO) as a structural probe.
- Resonance Raman spectroscopy.
- Site-directed mutagenesis of distal heme pocket residues.
Main Results:
- Ctb's distal heme pocket has a positive electrostatic potential.
- Resonance Raman data revealed specific vibrational modes (nu(Fe-O(2)) at 542 cm(-1) and nu(O-O) at 1132 cm(-1)) in the oxy derivative.
- Mutagenesis studies identified key hydrogen bonds from Tyr(B10) and Trp(G8), regulated by His(E7), stabilizing bound dioxygen and conferring high oxygen affinity (222 microm(-1)).
Conclusions:
- The unique ligand-binding properties of Ctb result from a finely tuned H-bonding network.
- Ctb's high oxygen affinity makes it unsuitable for oxygen transport.
- Structural similarities between Ctb's distal heme environment and cytochrome c peroxidase suggest a potential role in peroxidase or P450-type oxygen chemistry.
Abstract:
Campylobacter jejuni contains two hemoglobins, Cgb and Ctb. Cgb has been suggested to perform an NO detoxification reaction to protect the bacterium against NO attack. On the other hand, the physiological function of Ctb, a class III truncated hemoglobin, remains unclear. By using CO as a structural probe, resonance Raman data show that the distal heme pocket of Ctb exhibits a positive electrostatic potential. In addition, two ligand-related vibrational modes, nu(Fe-O(2)) and nu(O-O), were identified in the oxy derivative, with frequencies at 542 and 1132 cm(-1), respectively, suggesting the presence of an intertwined H-bonding network surrounding the heme-bound ligand, which accounts for its unusually high oxygen affinity (222 microm(-1)). Mutagenesis studies of various distal mutants suggest that the heme-bound dioxygen is stabilized by H-bonds donated from the Tyr(B10) and Trp(G8) residues, which are highly conserved in the class III truncated hemoglobins; furthermore, an additional H-bond donated from the His(E7) to the Tyr(B10) further regulates these H-bonding interactions by restricting the conformational freedom of the phenolic side chain of the Tyr(B10). Taken together, the data suggest that it is the intricate balance of the H-bonding interactions that determines the unique ligand binding properties of Ctb. The extremely high oxygen affinity of Ctb makes it unlikely to function as an oxygen transporter; on the other hand, the distal heme environment of Ctb is surprisingly similar to that of cytochrome c peroxidase, suggesting a role of Ctb in performing a peroxidase or P450-type of oxygen chemistry.
More Related Videos
Related Concept Videos
Stringent Response in E. coli
Bacterial Gastroenteritis
Determinants of Bacterial Pathogenicity and Virulence
Globular Proteins
Globular proteins serve many important physiological functions, such as acting as enzymes, cellular messengers, and molecular transporters. These roles often require the proteins to be soluble in the aqueous...
Gene Families
Occasionally these regions can be adapted to take on new roles within the organism, becoming novel genes...
Bacterial Translocation and Protein Secretion

