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Role of the Mycobacterium tuberculosis ESX-4 Secretion System in Heme Iron Utilization and Pore Formation by PPE
November Sankey1, Haley Merrick1, Padam Singh1
1Department of Microbiology and Molecular Genetics, Oklahoma State University, Stillwater, Oklahoma, USA.
Abstract:
Mycobacterium tuberculosis (Mtb) is transmitted through aerosols and primarily colonizes within the lung. The World Health Organization estimates that Mtb kills ~1.4 million people every year. A key aspect that makes Mtb such a successful pathogen is its ability to overcome iron limitation mounted by the host immune response. In our previous studies, we have shown that Mtb can utilize iron from heme, the largest source of iron in the human host, and that it uses two redundant heme utilization pathways. In this study, we show that the ESX-4 type VII secretion system (T7SS) is necessary for extracellular heme uptake into the Mtb cell through both heme utilization pathways. ESX-4 influences the secretion of the culture filtrate proteins Rv0125 and Rv1085c, which are also necessary for efficient heme utilization. We also discovered that deletion of the alternative sigma factor SigM significantly reduced Mtb heme utilization through both pathways and predict that SigM is a global positive regulator of core heme utilization genes of both pathways. Finally, we present the first direct evidence that some mycobacterial PPE (proline-proline-glutamate motif) proteins of the PPE protein family are pore-forming membrane proteins. Altogether, we identified core components of both Mtb Heme utilization pathways that were previously unknown and identified a novel channel-forming membrane protein of Mtb. IMPORTANCE M. tuberculosis (Mtb) is completely dependent on iron acquisition in the host to cause disease. The largest source of iron for Mtb in the human host is heme. Here, we show that the ancestral ESX-4 type VII secretion system is required for the efficient utilization of heme as a source of iron, which is an essential nutrient. This is another biological function identified for ESX-4 in Mtb, whose contribution to Mtb physiology is poorly understood. A most exciting finding is that some mycobacterial PPE (proline-proline-glutamate motif) proteins that have been implicated in the nutrient acquisition are membrane proteins that can form channels in a lipid bilayer. These observations have far-reaching implications because they support an emerging theme that PPE proteins can function as channel proteins in the outer mycomembrane for nutrient acquisition. Mtb has evolved a heme uptake system that is drastically different from all other known bacterial heme acquisition systems.
Insights
Mycobacterium tuberculosis uses the ESX-4 secretion system for heme iron uptake and identifies novel PPE channel proteins. These findings reveal new insights into how this pathogen acquires essential nutrients for disease.
Area of Science:
- Microbiology and Pathogenesis
- Molecular Biology
- Structural Biology
Background:
- Mycobacterium tuberculosis (Mtb) is a major human pathogen causing millions of deaths annually.
- Mtb requires iron for virulence and utilizes heme as a primary iron source.
- Previous studies identified two redundant heme utilization pathways in Mtb.
Purpose of the Study:
- To elucidate the molecular mechanisms of extracellular heme uptake in Mtb.
- To identify key components involved in Mtb's heme utilization pathways.
- To investigate the function of mycobacterial PPE proteins in nutrient acquisition.
Main Methods:
- Genetic deletion studies to assess the role of ESX-4 secretion system and SigM.
- Analysis of culture filtrate proteins Rv0125 and Rv1085c.
- Biophysical characterization of PPE proteins to determine membrane pore-forming activity.
Main Results:
- The ESX-4 type VII secretion system is essential for extracellular heme uptake in Mtb.
- ESX-4 influences the secretion of Rv0125 and Rv1085c, critical for heme utilization.
- The alternative sigma factor SigM positively regulates Mtb heme utilization genes.
- Certain mycobacterial PPE proteins function as pore-forming membrane proteins, potentially acting as nutrient channels.
Conclusions:
- The ESX-4 secretion system and SigM are core components of Mtb's heme utilization pathways.
- PPE proteins represent a novel class of channel proteins involved in mycobacterial nutrient acquisition.
- Mtb possesses a unique heme uptake system distinct from other bacteria, offering potential therapeutic targets.
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