Reposted by Joe Loo
(JACS) Native Proteomics Reveals
Protease-Mediated Hemophore
Release by Bacterial Pathogens: AbstractIron is an essential micronutrient for nearly all forms
of life,
including pathogenic microbes that must acquire it from their host
during infection. At the host–pathogen… (RSS) #MassSpecRSS
dlvr.it
Native Proteomics Reveals
Protease-Mediated Hemophore
Release by Bacterial Pathogens
AbstractIron is an essential micronutrient for nearly all forms
of life,
including pathogenic microbes that must acquire it from their host
during infection. At the host–pathogen interface, humans restrict
microbial access to iron through nutritional immunity, which many
pathogens overcome by secreting hemophores that scavenge extracellular
heme (iron protoporphyrin IX). However, identifying hemophores and
other ligand-binding proteoforms in complex proteomes remains challenging
using conventional peptide-based bottom-up mass spectrometry (MS).
Here, we introduce ProteoMIX (Proteome Analysis by Mixing), a function-based
native top-down proteomics workflow that combines slow-mixing mode
native MS with charge reduction to identify ligand-binding proteoforms
directly from complex mixtures. Applying ProteoMIX to the Corynebacterium diphtheriae exoproteome identified
ChtA30–314, an abundant soluble hemophore generated
by proteolytic processing of the surface-exposed ChtA heme receptor.
Using native top-down MS sequencing, cell fractionation, and gene
deletion, we show that the protease DIP2069 releases ChtA30–314 by removing ChtA’s transmembrane helix, producing a soluble
proteoform that delivers heme to support microbial growth. In contrast,
the related paralog ChtC is not processed, enabling C. diphtheriae to generate localization-specific
heme-binding proteoforms from related gene products. Extending this
approach to Staphylococcus aureus,
ProteoMIX also revealed soluble IsdA hemophores that coexist with
surface-anchored variants, demonstrating the generality of the method
and suggesting that protease-mediated hemophore release may operate
across Gram-positive pathogens.