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Searching for causes of neuron death in Alzheimer’s and TBI

by Heather Buschman, Ph.D. on November 8, 2012 at 5:26 am | 6 Comments
In Alzheimer's and traumatic brain injury, neurons (red) are killed off by the protein appoptosin

In Alzheimer's and traumatic brain injury, neurons (red) are killed off by the protein appoptosin

Sanford-Burnham researchers discovered that the protein appoptosin prompts neurons to commit suicide in several neurological conditions—giving them a new therapeutic target for Alzheimer’s disease and traumatic brain injury.

Dying neurons lead to cognitive impairment and memory loss in patients with neurodegenerative disorders–conditions like Alzheimer’s disease and traumatic brain injury. To better diagnose and treat these neurological conditions, scientists first need to better understand the underlying causes of neuronal death.

Enter Huaxi Xu, Ph.D., professor in Sanford-Burnham’s Del E. Webb Center for Neuroscience, Aging, and Stem Cell Research. He and his team have been studying the protein appoptosin and its role in neurodegenerative disorders for the past several years. Appoptosin levels in the brain skyrocket in conditions like Alzheimer’s and stroke, and especially following traumatic brain injury.

Appoptosin is known for its role in helping the body make heme, the molecule that carries iron in our blood (think “hemoglobin,” which makes blood red). But what does heme have to do with dying brain cells? As Xu and his group explain in a paper they published recently in the Journal of Neuroscience, excess heme leads to the overproduction of reactive oxygen species, which include cell-damaging free radicals and peroxides, and triggers apoptosis, the carefully regulated process of cellular suicide. This means that more appoptosin and more heme cause neurons to die.

Not only did Xu and his team unravel this whole appoptosin-heme-neurodegeneration mechanism, but when they inhibited appoptosin in laboratory cell cultures, they noticed that the cells didn’t die. This finding suggests that appoptosin might make an interesting new therapeutic target for neurodegenerative disorders.

What’s next? Xu and colleagues are now probing appoptosin’s function in mouse models. They’re also looking for new therapies that target the protein.

“Since the upregulation of appoptosin is important for cell death in diseases such as Alzheimer’s, we’re now searching for small molecules that modulate appoptosin expression or activity. We’ll then determine whether these compounds may be potential drugs for Alzheimer’s or other neurodegenerative diseases,” Xu explains.

Putting a stop to runaway appoptosin won’t be easy, though. That’s because we still need the heme-building protein to operate at normal levels for our blood to carry iron. In a previous study, researchers found that a mutation in the gene that encodes appoptosin causes anemia. “Too much of anything is bad, but so is too little,” Xu says.

New therapies that target neurodegenerative disorders and traumatic brain injury are sorely needed. According to the CDC, approximately 1.7 million people sustain a traumatic brain injury each year. It’s an acute injury, but one that can also lead to long-term problems, causing epilepsy and increasing a person’s risk for Alzheimer’s and Parkinson’s diseases. Not only has traumatic brain injury become a worrisome problem in youth and professional sports in recent years, the Department of Defense calls traumatic brain injury “one of the signature injuries of troops wounded in Afghanistan and Iraq.”

###

This study was funded by the U.S. National Institutes of Health (National Institute on Aging grants R01AG038710, R01AG021173, R01AG030197, R03AG034366, R01AG031893, AG5131, AG18440, R21AG038968; National Institute of Neurological Disorders and Stroke grants R01NS046673, R01NS054880) and the Alzheimer’s Association.

Original paper:
Zhang H, Zhang YW, Chen Y, Huang X, Zhou F, Wang W, Xian B, Zhang X, Masliah E, Chen Q, Han JD, Bu G, Reed JC, Liao FF, Chen YG, & Xu H (2012). Appoptosin is a Novel Pro-Apoptotic Protein and Mediates Cell Death in Neurodegeneration. The Journal of neuroscience : the official journal of the Society for Neuroscience, 32 (44), 15565-15576 PMID: 23115192

ResearchBlogging.org

Tags: Alzheimer's disease, Apoptosis, Huaxi Xu, research publications, TBI, traumatic brain injury

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6 Comments

  1. Paradigm Outcomes says:
    January 24, 2013 at 10:28 am

    A distressing complication that may arise following a traumatic brain injury—pseudobulbar affect (PBA). Due to minimal awareness and knowledge of PBA in the medical community, PBA is often misdiagnosed as depression or part of the primary neurological disease when in fact it’s a separate, treatable condition.

    Reply
  2. shelly ratner says:
    January 6, 2013 at 5:37 am

    Dear Scientists, please, please keep working on how we can save or better the neurons in the brain. My granddaughter, Gabby who is 9 years old now, and has cp is waiting for answers to how her brain can get better. We did not save her cord blood at birth so are not elligible for many transplants. Thank you.

    Reply
  3. marta says:
    November 11, 2012 at 11:51 am

    But why age is a factor here?? must have further causes….

    Reply

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