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Enterococcus faecalis Manganese Exporter MntE Alleviates Manganese Toxicity and Is Required for Mouse
Ling Ning Lam1,2, Jun Jie Wong1,3, Kelvin Kian Long Chong1,4
1Singapore Centre for Environmental Life Science Engineering, Nanyang Technological University, Singapore.
Abstract:
Bacterial pathogens encounter a variety of nutritional environments in the human host, including nutrient metal restriction and overload. Uptake of manganese (Mn) is essential for Enterococcus faecalis growth and virulence; however, it is not known how this organism prevents Mn toxicity. In this study, we examine the role of the highly conserved MntE transporter in E. faecalis Mn homeostasis and virulence. We show that inactivation of mntE results in growth restriction in the presence of excess Mn, but not other metals, demonstrating its specific role in Mn detoxification. Upon growth in the presence of excess Mn, an mntE mutant accumulates intracellular Mn, iron (Fe), and magnesium (Mg), supporting a role for MntE in Mn and Fe export and a role for Mg in offsetting Mn toxicity. Growth of the mntE mutant in excess Fe also results in increased levels of intracellular Fe, but not Mn or Mg, providing further support for MntE in Fe efflux. Inactivation of mntE in the presence of excess iron also results in the upregulation of glycerol catabolic genes and enhanced biofilm growth, and addition of glycerol is sufficient to augment biofilm growth for both the mntE mutant and its wild-type parental strain, demonstrating that glycerol availability significantly enhances biofilm formation. Finally, we show that mntE contributes to colonization of the antibiotic-treated mouse gastrointestinal (GI) tract, suggesting that E. faecalis encounters excess Mn in this niche. Collectively, these findings demonstrate that the manganese exporter MntE plays a crucial role in E. faecalis metal homeostasis and virulence.
Insights
The manganese exporter MntE is crucial for Enterococcus faecalis to manage manganese and iron levels, preventing toxicity and aiding virulence. This transporter is essential for bacterial survival in metal-rich environments like the gut.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Metal Homeostasis
Background:
- Bacterial pathogens face diverse metal concentrations in hosts.
- Manganese (Mn) is vital for Enterococcus faecalis growth and virulence.
- Mechanisms preventing Mn toxicity in E. faecalis are unknown.
Purpose of the Study:
- Investigate the role of the MntE transporter in E. faecalis Mn homeostasis.
- Determine MntE's contribution to bacterial virulence.
- Elucidate MntE's function in metal ion transport and detoxification.
Main Methods:
- Genetic inactivation of the mntE gene in E. faecalis.
- Growth assays under varying metal concentrations (Mn, Fe, Mg).
- Measurement of intracellular metal ion accumulation.
- Analysis of gene expression (glycerol catabolic genes).
- Biofilm formation assays.
- In vivo colonization studies in a mouse model.
Main Results:
- mntE inactivation caused growth defects specifically in excess Mn, indicating a role in Mn detoxification.
- The mntE mutant accumulated excess intracellular Mn, Fe, and Mg when exposed to high Mn.
- MntE is involved in exporting both Mn and Fe.
- Excess Fe also led to increased intracellular Fe in the mntE mutant.
- mntE deficiency upregulated glycerol catabolic genes and enhanced biofilm formation, especially with added glycerol.
- mntE is essential for E. faecalis colonization in the antibiotic-treated mouse GI tract.
Conclusions:
- The manganese exporter MntE is critical for maintaining metal homeostasis in E. faecalis.
- MntE plays a significant role in E. faecalis virulence and colonization.
- E. faecalis likely encounters environments with excess Mn in the host gastrointestinal tract.
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