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Toward an early diagnostic tool for Alzheimer's disease

Date:
August 29, 2013
Source:
INRS
Summary:
Despite all the research done on Alzheimer's, there is still no early diagnostic tool for the disease. By looking at the brain wave components of individuals with the disease, scientists have identified a promising avenue of research that may not only help diagnose the disease, but also assess its severity.

Despite all the research done on Alzheimer's, there is still no early diagnostic tool for the disease. By looking at the brain wave components of individuals with the disease, Professor Tiago H. Falk of INRS's Centre Énergie Matériaux Télécommunications has identified a promising avenue of research that may not only help diagnose the disease, but also assess its severity.

This non-invasive, objective method is the subject of an article in the journal PLOS ONE.

Patients with Alzheimer's disease currently undergo neuropsychological testing to detect signs of the disease. The test results are difficult to interpret and are insufficient for making a definitive diagnosis. But as scientists have already discovered, activity in certain areas of the cerebral cortex is affected even in the early stages of the disease. Professor Falk, who specialises in biological signal acquisition, examined this phenomenon and compared the electroencephalograms (EEGs) of healthy individuals (27), individuals with mild Alzheimer's (27), and individuals with moderate cases of the disease (22). He found statistically significant differences across the three groups.

In collaboration with neurologists and Francisco J. Fraga, an INRS visiting professor specializing in biological signals, Professor Falk used an algorithm that dissects brain waves of varying frequencies. "What makes this algorithm innovative is that it characterizes the changes in temporal dynamics of the patients' brain waves," explains Professor Falk. "The findings show that healthy individuals have different patterns than those with mild Alzheimer's disease. We also found a difference between patients with mild levels of the disease and those with moderate Alzheimer's."

To validate the model in order to eventually develop an early diagnostic tool for Alzheimer's disease, Professor Falk's team is sharing their algorithm on the NeuroAccelerator.org online data analysis portal. It is the first open source algorithm posted on the portal and may be used by researchers around the world to produce additional research findings.

Alzheimer's disease accounts for 60% to 80% of all dementia cases in North America and is skyrocketing. This step toward the development of an early diagnostic tool that is non-invasive, objective, and relatively inexpensive is therefore welcome news for the research community.


Story Source:

The above story is based on materials provided by INRS. The original article was written by Stéphanie Thibault. Note: Materials may be edited for content and length.


Journal Reference:

  1. Francisco J. Fraga, Tiago H. Falk, Paulo A. M. Kanda, Renato Anghinah. Characterizing Alzheimer’s Disease Severity via Resting-Awake EEG Amplitude Modulation Analysis. PLoS ONE, 2013; 8 (8): e72240 DOI: 10.1371/journal.pone.0072240

Cite This Page:

INRS. "Toward an early diagnostic tool for Alzheimer's disease." ScienceDaily. ScienceDaily, 29 August 2013. <www.sciencedaily.com/releases/2013/08/130829155852.htm>.
INRS. (2013, August 29). Toward an early diagnostic tool for Alzheimer's disease. ScienceDaily. Retrieved October 20, 2014 from www.sciencedaily.com/releases/2013/08/130829155852.htm
INRS. "Toward an early diagnostic tool for Alzheimer's disease." ScienceDaily. www.sciencedaily.com/releases/2013/08/130829155852.htm (accessed October 20, 2014).

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