Molecular basis of hemoglobin binding and heme removal in <i>Corynebacterium diphtheriae</i>

B Brendan J. Mahoney L Lindsey R. Lyman (Laboratory of Respiratory and Special Pathogens, Division of Bacterial, Parasitic, and Allergenic Products, Center for Biologics Evaluation and Research, Food and Drug Administration) J Jordan Ford J Jess Soule (Department of Chemistry and Biochemistry, University of California) N Nicole A. Cheung (University of California, Los Angeles-United States Department of Energy Institute of Genomics and Proteomics, University of California) A Andrew K. Goring K Kat Ellis-Guardiola (Department of Chemistry and Biochemistry, University of California) M Michael J. Collazo (University of California, Los Angeles-United States Department of Energy Institute of Genomics and Proteomics, University of California) D Duilio Cascio (Department of Chemistry and Biochemistry) H Hung Ton-That (Molecular Biology Institute, University of California) M Michael P. Schmitt (Laboratory of Respiratory and Special Pathogens, Division of Bacterial, Parasitic, and Allergenic Products, Center for Biologics Evaluation and Research, Food and Drug Administration) R Robert T. Clubb

Abstract

To successfully mount infections, nearly all bacterial pathogens must acquire iron, a key metal cofactor that primarily resides within human hemoglobin. Corynebacterium diphtheriae causes the life-threatening respiratory disease diphtheria and captures hemoglobin for iron scavenging using the surface-displayed receptor HbpA. Here, we show using X-ray crystallography, NMR, and in situ binding measurements that C. diphtheriae selectively captures iron-loaded hemoglobin by partially ensconcing the heme molecules of its α subunits. Quantitative growth and heme release measurements are compatible with C. diphtheriae acquiring heme passively released from hemoglobin’s β subunits. We propose a model in which HbpA and heme-binding receptors collectively function on the C. diphtheriae surface to capture hemoglobin and its spontaneously released heme. Acquisition mechanisms that exploit the propensity of hemoglobin’s β subunit to release heme likely represent a common strategy used by bacterial pathogens to obtain iron during infections.

Article Details

Volume / Issue Vol. 122, Issue 1
Published January 07, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

B

Brendan J. Mahoney

L

Lindsey R. Lyman

Laboratory of Respiratory and Special Pathogens, Division of Bacterial, Parasitic, and Allergenic Products, Center for Biologics Evaluation and Research, Food and Drug Administration

J

Jordan Ford

J

Jess Soule

Department of Chemistry and Biochemistry, University of California

N

Nicole A. Cheung

University of California, Los Angeles-United States Department of Energy Institute of Genomics and Proteomics, University of California

A

Andrew K. Goring

K

Kat Ellis-Guardiola

Department of Chemistry and Biochemistry, University of California

M

Michael J. Collazo

University of California, Los Angeles-United States Department of Energy Institute of Genomics and Proteomics, University of California

D

Duilio Cascio

Department of Chemistry and Biochemistry

H

Hung Ton-That

Molecular Biology Institute, University of California

M

Michael P. Schmitt

Laboratory of Respiratory and Special Pathogens, Division of Bacterial, Parasitic, and Allergenic Products, Center for Biologics Evaluation and Research, Food and Drug Administration

R

Robert T. Clubb