Showing posts with label PET. Show all posts
Showing posts with label PET. Show all posts

Monday, November 16, 2020

New Tracer Gives Clear Picture of Alzheimer’s and Other Dementias

 reposted from The Scientist



New Tracer Gives Clear Picture of Alzheimer’s and Other Dementias

New Tracer Gives Clear Picture of Alzheimer’s and Other Dementias

An imaging agent reveals aggregated tau protein in the brain during PET scans and could improve the diagnosis of neurodegenerative diseases, particularly tauopathies.

Ian Le Guillou
Ian Le Guillou
Oct 29, 2020
118

ABOVE: PET scans of individuals using the new tau tracer
TAGAI, ONO, AND KUBOTA ET AL.

Anew tracer for brain imaging could offer a clear window into the development of Alzheimer’s disease and other neurodegenerative conditions. The tracing agent, which highlights the accumulation of toxic tau protein deposits in the brain, could distinguish between a range of conditions called tauopathies that can be difficult to tell apart at the early stages, such as frontotemporal dementia and progressive supranuclear palsy.

Tau is a protein involved in maintaining the structure of neurons. In tauopathies, including Alzheimer’s disease, it aggregates to form knots inside the cells, eventually killing them. 

PET scans are a common diagnostic technique used in hospitals, relying on a radioactive tracing agent to reveal the location of a molecule of interest. Earlier this year, the US Food and Drug Administration approved the first tau PET tracer for Alzheimer’s disease, Tauvid. It has proved challenging to find reliable PET tracers that can bind to the various forms of tau seen in different tauopathies. 

In pursuit of a tau tracer that would offer a sharper signal than previous iterations in development, researchers adapted an existing tracer to make it last longer in the body. The new tracer, known as 18F-PM-PBB3, carries a radioactive fluorine isotope to the tau tangles and releases a positron particle detected by a PET scanner when it binds its target.

While the developers succeeded in enhancing tau visualization, their tracer also had the unexpected effect of binding to a greater variety of tau deposits seen across different tauopathies. This means that the same tracer could be used as a diagnostic test for multiple neurodegenerative conditions.

The researchers tested the tracer in 39 patients with a range of tau-related conditions, including Alzheimer’s disease. Based on the location of the tracer’s signal on the brain scans, the team was able to predict accurately the type of disease, which was confirmed in some cases by later autopsies. Their results appear today (October 29) in Neuron.

In the development of Alzheimer’s disease, the tau deposits are thought to follow on from the accumulation of amyloid-β plaques. Although most efforts to create treatments for Alzheimer’s have focused on amyloid, the presence of tau is thought to be more closely linked to the development of symptoms. The researchers were able to accurately predict the severity of the symptoms of Alzheimer’s disease in 17 people based on the abundance of tau seen in the scans.

“Even during the clinical trials for anti-amyloid drugs, we also need to pursue the tau accumulation in those patients to see whether or not the tau accumulation, which is closely associated with the neuronal death, could be suppressed as a result of the amyloid-β suppression,” says coauthor Makoto Higuchi of the National Institute of Radiological Sciences in Japan.

The tracer may have the biggest effect on diseases other than Alzheimer’s. Experimental tracers that had previously been developed were unable to detect all forms of tau seen in tauopathies. “One of the problems with the old tracers was that the tau pathology in Alzheimer’s disease could be detected, but there were problems with detecting it in the other tauopathies. So this opens new perspectives. Now we really can image the pathology in the patients, and we can make the link with the symptoms,” says Ilse Dewachter, a neuroscientist at Hasselt University in Belgium who was not involved in the study. 

In conditions such as frontotemporal dementia, which can be caused by tau, the early symptoms can be significant behavioral changes and a loss of inhibition, leading to social problems. “Even without the radical cure for the tauopathy, we can socially assist those people by predicting the emerging, symptomatic problems in each of the subjects. That’s the major advantage of imaging tau deposits in the brain,” says Higuchi.

PET scans would be too expensive for use in mass screening for dementia, but Higuchi notes that they could still be helpful in developing tests that instead look for biomarkers in the blood or cerebrospinal fluid. As part of such an effort, scans would first categorize individuals as being tau-positive or tau-negative, and then researchers could identify biomarkers that distinguish between the two groups.

See “The Hunt for a Blood Test for Alzheimer’s Disease

The imaging might also help identify the right people to take part in clinical trials, as proteins other than tau can cause frontotemporal dementia.

“If you want to be able to develop trials for patients who present with the same syndromes, we need to know what subtype of pathology they have. So far, we have no biomarker. It’s really, really hard right now to guess if it’s tau or another [protein aggregating],” says Renaud La Joie, a neuroscientist at the University of California, San Francisco, who was not involved in the study. “For non-Alzheimer’s trials, we really need help screening the right patients.” 

Higuchi and his colleagues have patented the tracer and licensed it to APRINOIA Therapeutics, which is testing its use as a diagnostic tool for Alzheimer’s disease in clinical trials in the US, China, and Japan. Higuchi says he hopes that they will soon be able to do clinical trials for diagnosing other forms of dementia.

K. Tagai et al., “High-contrast in vivo imaging of tau pathologies in Alzheimer’s and non-Alzheimer’s disease tauopathies,” Neuron,  doi:10.1016/j.neuron.2020.09.042, 2020.

Wednesday, October 10, 2018

PET scans accurately identify amyloid deposition after traumatic brain injury

digging around looking at this data


Found this study

PET scans accurately identify amyloid deposition after traumatic brain injury

Image: PD 
1. Amyloid plaques, similar to those found in Alzheimer’s disease were found in traumatic brain injury (TBI) victims. 
2. PET scans accurately identified amyloid deposition and may help further investigate the sequelae TBI. 
Evidence Rating Level: 2 (Good)           
Study Rundown: Amyloid plaque deposition, similar to that observed in Alzheimer’s disease (AD), patients has been observed in a portion of traumatic brain injury (TBI) victims. It has been found that the Aβ plaques can precipitate within hours of a TBI in post-mortem studies. Studying plaque deposition may allow for a better understanding the long term consequences of TBI as well as AD.
Pittsburgh compound B (PiB) is widely accepted as a ligand marker for cerebral amyloid deposition in AD patients. The authors analyzed the effectiveness of using [11C]PiB to monitor amyloid deposition in TBI patients by comparing [11C]PiB labeled PET scans of TBI patients with brain autopsy specimens labeled with immunohistochemistry and autoradiography. [11C]PiB was found to be a moderately sensitive but specific marker for amyloid deposition following TBI. The study’s greatest limitations are its small sample size and restriction to autopsy specimens that were acquired at most 70 days after TBI. This precludes both adequate analysis of significance and exploration of long-term plaque formation.  The study is, however, the first to demonstrate the possible effectiveness of PET scanning to verify amyloid deposition in TBI victims and may serve as a foundation for future research.
In-Depth: This study compared amyloid deposition, identified by [11C]PiB labeled PET scans in TBI patients, to amyloid deposition, identified by immunohistochemistry and autoradiography, in autopsy specimens from TBI victims. Autopsy specimens were also tested with [3H]PiB to compare in vitro binding to immunohistochemistry. PET scans were conducted on 15 TBI patients at various times post-injury; up to 349 days in one patient. Controls consisted of 11 healthy individuals who were scannedm as well as 16 TBI and 7 non-TBI autopsy specimens used for autoradiography. [11C]PiB was found to bind to amyloid plaques in cortical gray matter and the striatum (p<0.05). However immunohistochemistry revealed samples in which plaques in white matter and the thalamus were not bound to [3H]PiB, suggesting less than optimal sensitivity of PiB. Of note is that no false positives indicating plaque deposition were seen.
By Ravi Shah and Rif Rahman
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Tuesday, July 15, 2014

Eyes, Nose as Windows to Alzheimer’s

reposted from

Eyes, Nose as Windows to Alzheimer’s

Failing a sniff test or screening positive on an eye exam may predict people’s chances of developing the neurodegenerative disorder.
By  | July 14, 2014
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WIKIMEDIA, ADAMANTIOSA suite of studies presented at the ongoing Alzheimer's Association International Conference in Copenhagen offers a variety of ways to diagnose the neurodegenerative disease at early stages. In some cases, researchers worked out the chances of developing the disease among people who can’t smell certain odors, and in other studies scientists tested the utility of Alzheimer’s biomarkers in the eye.
“We envision a future where we can predict risk and then do things to lower risk,” Matthew Growdon, a medical student at Harvard Medical School and the Harvard School of Public Health who is working on a such a smell test, told theWashington Post.
Alzheimer’s sniff tests have been proposed before. The idea is that a poorer performance for odor detection could predict cognitive decline. “A loss of sense of smell does not mean you have Alzheimer's disease,” Kenneth Heilman, a professor in the department of neurology at the University of Florida College of Medicine in Gainesville, told HealthDay. “But if someone has episodic memory loss and also has a loss of smell, a degenerative disease like Parkinson’s or Alzheimer’s is a possibility.”
Just north of the nose, the eyes may also be windows into one’s cognitive state. Researchers reported at the conference two methods to detect beta amyloid protein using fluorescent tags either in the lens or the retina of the eye. According to The Guardian, “both tests showed that levels of beta-amyloid in the eye mirrored those seen in the brain by PET [positron emission tomography] imaging.”
Shaun Frost from Australia’s Commonwealth Scientific and Industrial Research Organisation who led one of the eye biomarker studies, told the Guardian, “if further research shows that our initial findings are correct, it could potentially be delivered as part of an individual's regular eye check-up. The high resolution level of our images could also allow accurate monitoring of individual retinal plaques as a possible method to follow progression and response to therapy.”
Such tests are not likely to be perfectly accurate, USA Today pointed out, but they may help determine who needs more definitive—and costly—testing. “Everyone with Alzheimer’s has beta amyloid in their brain, but not everyone with beta amyloid buildup will develop Alzheimer’s, limiting the predictive ability of some of these tests.”