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Emerging themes in manganese transport, biochemistry and pathogenesis in bacteria
David G Kehres1, Michael E Maguire
1Department of Pharmacology, School of Medicine, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106-4965, USA. dgk2@po.cwru.edu
Abstract:
Though an essential trace element, manganese is generally accorded little importance in biology other than as a cofactor for some free radical detoxifying enzymes and in the photosynthetic photosystem II. Only a handful of other Mn2+-dependent enzymes are known. Recent data, primarily in bacteria, suggest that Mn2+-dependent processes may have significantly greater physiological importance. Two major classes of prokaryotic Mn2+ uptake systems have now been described, one homologous to eukaryotic Nramp transporters and one a member of the ABC-type ATPase superfamily. Each is highly selective for Mn2+ over Fe2+ or other transition metal divalent cations, and each can accumulate millimolar amounts of intracellular Mn2+ even when environmental Mn2+ is scarce. In Salmonella enterica serovar Typhimurium, simultaneous mutation of both types of transporter results in avirulence, implying that one or more Mn2+-dependent enzymes is essential for pathogenesis. This review summarizes current literature on Mn2+ transport, primarily in the Bacteria but with relevant comparisons to the Archaea and Eukaryota. Mn2+-dependent enzymes are then discussed along with some speculations as to their role(s) in cellular physiology, again primarily in Bacteria. It is of particular interest that most of the enzymes which interconvert phosphoglycerate, pyruvate, and oxaloacetate intermediates are either strictly Mn2+-dependent or highly stimulated by Mn2+. This suggests that Mn2+ may play an important role in central carbon metabolism. Further studies will be required, however, to determine whether these or other actions of Mn2+ within the cell are the relevant factors in pathogenesis.
Insights
Manganese (Mn2+) is vital for bacterial survival and pathogenesis, with specialized transporters and enzymes crucial for its cellular functions. Understanding manganese
Area of Science:
- Biochemistry
- Microbiology
- Molecular Biology
Background:
- Manganese (Mn2+) is an essential trace element with recognized roles in antioxidant enzymes and photosystem II.
- Emerging evidence suggests broader physiological significance of Mn2+-dependent processes, particularly in bacteria.
- Prokaryotic Mn2+ uptake involves Nramp-homologous and ABC-type ATPase systems, highly selective for Mn2+.
Purpose of the Study:
- To review current literature on Mn2+ transport systems in prokaryotes.
- To discuss the roles of Mn2+-dependent enzymes in bacterial physiology and pathogenesis.
- To explore the potential importance of Mn2+ in central carbon metabolism.
Main Methods:
- Literature review of studies on Mn2+ transport and enzymes in Bacteria, Archaea, and Eukaryota.
- Analysis of genetic data, particularly from Salmonella enterica serovar Typhimurium, linking Mn2+ transport to virulence.
- Biochemical examination of Mn2+-dependent enzymes involved in metabolic pathways.
Main Results:
- Two distinct, highly selective Mn2+ uptake systems exist in prokaryotes.
- Disruption of Mn2+ transporters in Salmonella Typhimurium leads to avirulence, indicating essential roles in pathogenesis.
- Many enzymes involved in interconverting phosphoglycerate, pyruvate, and oxaloacetate are Mn2+-dependent or stimulated by Mn2+.
Conclusions:
- Mn2+ transport and utilization are critical for bacterial physiology and virulence.
- Mn2+ likely plays a significant role in central carbon metabolism.
- Further research is needed to elucidate the precise roles of Mn2+ in pathogenesis.