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Manganese is a physiologically relevant TORC1 activator in yeast and mammals
Raffaele Nicastro1, Hélène Gaillard2,3, Laura Zarzuela2
1University of Fribourg, Department of Biology, Fribourg, Switzerland.
Abstract:
The essential biometal manganese (Mn) serves as a cofactor for several enzymes that are crucial for the prevention of human diseases. Whether intracellular Mn levels may be sensed and modulate intracellular signaling events has so far remained largely unexplored. The highly conserved target of rapamycin complex 1 (TORC1, mTORC1 in mammals) protein kinase requires divalent metal cofactors such as magnesium (Mg2+) to phosphorylate effectors as part of a homeostatic process that coordinates cell growth and metabolism with nutrient and/or growth factor availability. Here, our genetic approaches reveal that TORC1 activity is stimulated in vivo by elevated cytoplasmic Mn levels, which can be induced by loss of the Golgi-resident Mn2+ transporter Pmr1 and which depend on the natural resistance-associated macrophage protein (NRAMP) metal ion transporters Smf1 and Smf2. Accordingly, genetic interventions that increase cytoplasmic Mn2+ levels antagonize the effects of rapamycin in triggering autophagy, mitophagy, and Rtg1-Rtg3-dependent mitochondrion-to-nucleus retrograde signaling. Surprisingly, our in vitro protein kinase assays uncovered that Mn2+ activates TORC1 substantially better than Mg2+, which is primarily due to its ability to lower the Km for ATP, thereby allowing more efficient ATP coordination in the catalytic cleft of TORC1. These findings, therefore, provide both a mechanism to explain our genetic observations in yeast and a rationale for how fluctuations in trace amounts of Mn can become physiologically relevant. Supporting this notion, TORC1 is also wired to feedback control mechanisms that impinge on Smf1 and Smf2. Finally, we also show that Mn2+-mediated control of TORC1 is evolutionarily conserved in mammals, which may prove relevant for our understanding of the role of Mn in human diseases.
Insights
Manganese (Mn) activates the TORC1 pathway by binding more efficiently than magnesium (Mg2+), influencing cell growth and metabolism. This Mn2+-TORC1 signaling is conserved in mammals and relevant to human diseases.
Area of Science:
- Cellular Biology
- Biochemistry
- Nutritional Science
Background:
- Manganese (Mn) is an essential biometal cofactor for enzymes vital in preventing human diseases.
- The sensing of intracellular Mn levels and their modulation of cellular signaling remain largely unexplored.
- Target of Rapamycin Complex 1 (TORC1) is a conserved protein kinase regulating cell growth and metabolism, requiring divalent metal cofactors like Mg2+.
Purpose of the Study:
- To investigate whether intracellular Mn levels can be sensed and modulate cellular signaling pathways.
- To elucidate the mechanism by which Mn affects TORC1 activity and its downstream signaling.
- To determine the evolutionary conservation and physiological relevance of Mn-mediated TORC1 regulation.
Main Methods:
- Genetic approaches in yeast to manipulate cytoplasmic Mn levels by altering Mn2+ transporters (Pmr1, Smf1, Smf2).
- In vitro protein kinase assays to compare the activation of TORC1 by Mn2+ versus Mg2+.
- Analysis of TORC1-dependent processes such as autophagy, mitophagy, and retrograde signaling.
Main Results:
- Elevated cytoplasmic Mn levels stimulate TORC1 activity in vivo.
- Increased cytoplasmic Mn antagonizes rapamycin-induced autophagy, mitophagy, and Rtg1-Rtg3 signaling.
- Mn2+ activates TORC1 more effectively than Mg2+ in vitro by lowering the Km for ATP.
- TORC1 is linked to feedback control mechanisms involving Mn transporters Smf1 and Smf2.
- Mn2+-mediated TORC1 control is conserved in mammals.
Conclusions:
- Cytoplasmic Mn levels directly regulate TORC1 activity, providing a mechanism for sensing Mn.
- Mn2+ is a more potent activator of TORC1 than Mg2+ due to enhanced ATP binding.
- This Mn2+-TORC1 signaling pathway is evolutionarily conserved and may have implications for human health and disease.
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