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Manganese rescues adverse effects on lifespan and development in Podospora anserina challenged by excess hydrogen
Carolin Grimm1, Heinz D Osiewacz1
1Johann Wolfgang Goethe University, Faculty for Biosciences & Cluster of Excellence 'Macromolecular Complexes' Frankfurt, Institute of Molecular Biosciences, Max-von-Laue-Str. 9, 60438 Frankfurt, Germany.
Abstract:
For biological systems, balancing cellular levels of reactive oxygen species (ROS) is of great importance because ROS are both, essential for cellular signaling and dangerous in causing molecular damage. Cellular ROS abundance is controlled by a delicate network of molecular pathways. Within this network, superoxide dismutases (SODs) are active in disproportion of the superoxide anion leading to the formation of hydrogen peroxide. The fungal aging model Podospora anserina encodes at least three SODs. One of these is the mitochondrial PaSOD3 isoform containing manganese as a cofactor. Previous work resulted in the selection of strains in which PaSod3 is strongly overexpressed. These strains display impairments in growth and lifespan. A computational model suggests a series of events to occur in Sod3 overexpressing strains leading to adverse effects due to elevated hydrogen peroxide levels. In an attempt to validate this model and to obtain more detailed information about the cellular responses involved in ROS balancing, we further investigated the PaSod3 overexpressing strains. Here we show that hydrogen peroxide levels are indeed strongly increased in the mutant strain. Surprisingly, this phenotype can be rescued by the addition of manganese to the growth medium. Strikingly, while we obtained no evidence for an antioxidant effect of manganese, we found that the metal is required for induction of components of the ROS scavenging network and lowers the hydrogen peroxide level of the mutant. A similar effect of manganese on lifespan reversion was obtained in wild-type strains challenged with exogenous hydrogen peroxide. It appears that manganese is limited under high hydrogen peroxide and suggests that a manganese-dependent activity leads to the induction of ROS scavenging components.
Insights
Manganese rescues growth defects in fungal strains overexpressing mitochondrial superoxide dismutase (SOD). This metal cofactor is crucial for inducing reactive oxygen species (ROS) scavenging pathways, not direct antioxidant action.
Area of Science:
- Cellular Biology
- Biochemistry
- Mycology
Background:
- Balancing cellular reactive oxygen species (ROS) is vital for biological systems, as ROS mediate signaling but can cause molecular damage.
- Superoxide dismutases (SODs) are key enzymes in managing superoxide anions, converting them to hydrogen peroxide.
- The fungus Podospora anserina has multiple SODs, including the manganese-dependent mitochondrial PaSOD3.
Purpose of the Study:
- To validate a computational model predicting adverse effects of PaSOD3 overexpression due to elevated hydrogen peroxide.
- To investigate cellular responses involved in ROS balancing in PaSOD3 overexpressing strains.
- To elucidate the role of manganese in the observed phenotypes.
Main Methods:
- Genetic manipulation to create Podospora anserina strains with high PaSOD3 expression.
- Measurement of intracellular hydrogen peroxide levels.
- Supplementation of growth media with manganese.
- Assessment of lifespan and growth.
- Investigation of ROS scavenging network components.
Main Results:
- PaSOD3 overexpressing strains exhibit significantly increased hydrogen peroxide levels.
- Addition of manganese to the growth medium rescues the hydrogen peroxide phenotype.
- Manganese is required for the induction of ROS scavenging network components.
- Manganese lowers hydrogen peroxide levels in the mutant strain without direct antioxidant activity.
- Manganese addition also rescues lifespan in wild-type strains exposed to exogenous hydrogen peroxide.
Conclusions:
- Manganese availability is a limiting factor under conditions of high hydrogen peroxide.
- A manganese-dependent activity induces the expression of ROS scavenging components.
- Manganese plays a critical regulatory role in cellular ROS homeostasis and stress response, beyond its direct enzymatic function.
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