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Fractionation for Resolution of Soluble and Insoluble Huntingtin Species
Published on: February 27, 2018
Mechanisms of copper ion mediated Huntington's disease progression
Jonathan H Fox1, Jibrin A Kama, Gregory Lieberman
1Department of Neurology, Harvard Medical School, Massachusetts General Hospital, Charlestown, Massachusetts, United States of America.
Insights
Huntington's disease involves increased copper and iron in the brain. Pro-oxidant copper-protein interactions, particularly with huntingtin and lactate dehydrogenase (LDH), may drive neurodegeneration, offering new therapeutic targets.
Area of Science:
- Neuroscience
- Biochemistry
- Genetics
Background:
- Huntington's disease (HD) stems from polyglutamine expansion in huntingtin protein, leading to oxidative stress and striatal degeneration.
- Elevated copper and iron levels are observed in HD brains, but their specific roles in pathogenesis remain unclear.
Purpose of the Study:
- To investigate the role of copper and iron in Huntington's disease pathogenesis.
- To explore the interaction of copper with huntingtin and lactate dehydrogenase (LDH) in HD.
Main Methods:
- Inductively-coupled-plasma mass spectroscopy (ICP-MS) to quantify metal levels in human and mouse HD brains.
- In vitro studies examining copper-huntingtin interactions and copper's effect on huntingtin aggregation.
- Assessing LDH activity and lactate levels in HD mouse brains.
Main Results:
- HD mouse brains showed elevated copper and iron, mirroring human HD brains.
- Increased brain copper correlated with reduced amyloid precursor protein (APP).
- Huntingtin protein fragments (N171) interacted with copper, exhibiting redox activity and promoting aggregation; copper chelation inhibited this.
- LDH activity was decreased in HD mouse brains, with increased lactate levels.
Conclusions:
- Pro-oxidant copper-protein interactions contribute to Huntington's disease progression.
- Dysfunctional lactate dehydrogenase (LDH) activity is implicated in HD neurodegeneration.
- Targeting copper-protein interactions presents a novel therapeutic strategy for HD.
Abstract:
Huntington's disease (HD) is caused by a dominant polyglutamine expansion within the N-terminus of huntingtin protein and results in oxidative stress, energetic insufficiency and striatal degeneration. Copper and iron are increased in the striata of HD patients, but the role of these metals in HD pathogenesis is unknown. We found, using inductively-coupled-plasma mass spectroscopy, that elevations of copper and iron found in human HD brain are reiterated in the brains of affected HD transgenic mice. Increased brain copper correlated with decreased levels of the copper export protein, amyloid precursor protein. We hypothesized that increased amounts of copper bound to low affinity sites could contribute to pro-oxidant activities and neurodegeneration. We focused on two proteins: huntingtin, because of its centrality to HD, and lactate dehydrogenase (LDH), because of its documented sensitivity to copper, necessity for normoxic brain energy metabolism and evidence for altered lactate metabolism in HD brain. The first 171 amino acids of wild-type huntingtin, and its glutamine expanded mutant form, interacted with copper, but not iron. N171 reduced Cu(2+)in vitro in a 1:1 copper:protein stoichiometry indicating that this fragment is very redox active. Further, copper promoted and metal chelation inhibited aggregation of cell-free huntingtin. We found decreased LDH activity, but not protein, and increased lactate levels in HD transgenic mouse brain. The LDH inhibitor oxamate resulted in neurodegeneration when delivered intra-striatially to healthy mice, indicating that LDH inhibition is relevant to neurodegeneration in HD. Our findings support a role of pro-oxidant copper-protein interactions in HD progression and offer a novel target for pharmacotherapeutics.
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