Completed Brain & Nervous System Genetics & Molecular Biology

Elucidating the role of manganese in brain physiology and disease

In plain English

AI plain-English summary

Manganese—a metal essential in tiny amounts—can poison the brain when levels go wrong, causing a Parkinson’s-like movement disorder and severe developmental problems in children. This matters because current treatments for manganese overload are brutal: patients need lifelong monthly hospital infusions, with frequent complications from intravenous lines and drug side effects. Meanwhile, the underlying biology remains poorly understood. The researcher will use genetically modified zebrafish—transparent animals whose brains can be imaged while alive—to pinpoint which nerve cells are damaged by too much or too little manganese. Cell cultures of those specific neurons will then reveal how manganese disrupts energy metabolism and triggers cellular stress. If successful, this work could lead to a simple oral drug that safely lowers manganese levels, replacing the burdensome infusions. The researcher has already identified a candidate compound that normalises swimming in manganese-poisoned zebrafish. A paediatric formulation for children with inherited manganese disorders would be the first practical outcome. Beyond that, understanding manganese’s role in common neurodegenerative diseases like Parkinson’s and Alzheimer’s could open new avenues for treating millions of patients—though that remains a longer-term goal of this fundamental science.

View original technical description
i) Background Manganese (Mn) is an essential trace metal in our diet that is required for normal brain function. However, exposure to high Mn concentrations causes brain damage and a debilitating movement disorder similar to Parkinson's disease. Mn toxicity, also known as manganism, occurs in children and adults upon environmental and occupational overexposure due to contaminated drinking water and drug formulations, industrial fumes or intravenous nutrition, and in patients with liver damage. The recent identification of inherited disorders of Mn transport due to abnormalities in the genes SLC30A10, SLC39A14 and SLC39A8 has further highlighted the important influence Mn has on brain physiology. These disorders lead to impaired control of the body's Mn load, resulting in Mn overload or deficiency, and are associated with detrimental neurodevelopmental disorders of childhood. There is increasing evidence that Mn imbalance is also a feature of common neurodegenerative disorders including Parkinson, Alzheimer and Huntington disease. Our understanding of how Mn imbalance leads to disease is poor and treatments to alleviate neurological symptoms for the above conditions remain unsatisfactory. Currently available therapies to lower Mn levels are extremely burdensome due to frequent intravenous administration requiring life-long, monthly hospital admissions, venous access related complications and medication side effects. Therefore, there is a great need for research in this field. ii) Aims of my research This fellowship intends to establish the role of Mn in normal brain function and to understand how Mn imbalance disturbs the physiological processes within nerve cells. Thereby, my work aims to identify novel therapeutic targets and improve treatments for Mn related disease. This will be accomplished through the study of established and validated genetically modified zebrafish as models for the human Mn transporter disorders. Zebrafish are ideally suited for the study of neurological processes as their nervous system is structurally and chemically similar to that of humans whilst also transparent allowing brain imaging while alive. First, I will determine which nerve cells are affected by Mn overload and deficiency through analysis of brain activity, anatomy and neuronal function. To better understand the effects of Mn imbalance I will generate cell culture models of the specific neuronal cells targeted by Mn. This will allow me to study the effect of Mn on energy metabolism, free radicals and cellular stress with a view to identifying the key events caused by Mn imbalance. My previous work has identified a novel Mn binding drug that effectively lowers Mn levels and normalises swimming activity in a zebrafish model of Mn toxicity. This and other compounds will be tested biochemically and in a mouse model of Mn overload in order to develop a suitable paediatric formulation for further preclinical studies beyond this fellowship. The project will be carried out by myself, a scientist with extensive expertise in Mn and zebrafish research, as well as a postdoctoral researcher with significant experience in mouse laboratory skills. A unique set of collaborators will share world-class expertise on zebrafish and mouse neuroscience, cell biology, paediatric drug development and chemistry ensuring translational relevance. iii) Expected benefit This fellowship will provide a better understanding of how Mn imbalance is involved in the disease processes underlying inherited and acquired disorders associated with Mn associated brain damage. This will allow the development of effective treatments to halt disease progression and reduce disability and mortality in children and adults suffering from these disorders. Identification of the role of Mn in neurodegenerative disease processes may also shed new light on the disease mechanisms underlying common neurodegenerative disorders such as Parkinson's disease.

View the original record at the funder ↗

Researchers

Karin Tuschl (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Manganese-iron interactions determining neuronal function and phenotype
Mechanisms underlying neuronal-microglia interactions during development in health and disease
Exosomal protein deficiencies: how abnormal RNA metabolism results in childhood-onset neurological diseases
Investigating the impact of metallic nanoparticles on biological systems and lysosomal function.
Metal-ion-based neurodegeneration: enabling techniques for understanding, detection, and treatment

Original classification

Fellowship

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.