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Cells’ Trash-Clearing Function May Be an Alzheimer’s Drug Target

Scientists from the Riken Brain Science Institute in Japan report that the lack of autophagy in neurons prevents the secretion of amyloid beta and the formation of amyloid beta plaques in the brain. They believe their study not only sheds light on the metaboli

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Scientists from the Riken Brain Science Institute in Japan report that the lack of autophagy in neurons prevents the secretion of amyloid beta and the formation of amyloid beta plaques in the brain. They believe their study not only sheds light on the metabolism of amyloid beta and its role in neurodegeneration and memory loss but that it indicates that autophagy, an important cellular auto-cleaning mechanism, might be a potential new drug target for the treatment of Alzheimer’s disease (AD).

The research team just published their study (“Aβ Secretion and Plaque Formation Depend on Autophagy”) based on work with transgenic mice in Cell Reports.

Autophagy is a cellular-cleaning mechanism that normally clears any protein aggregates or other “trash” within the cells, but that is somewhat disturbed in Alzheimer’s patients.

To investigate the role of autophagy in amyloid beta metabolism, Per Nilsson, Ph.D., and colleagues deleted an important gene for autophagy (Atg7) in a mouse model of Alzheimer’s disease. Contrary to what they were expecting, their results showed that a complete lack of autophagy within neurons prevents the formation of amyloid beta plaque around/outside the cells. Instead, the peptide accumulates inside the neurons, where it causes neuronal death, which in turn leads to memory loss.

“This reduction of Aβ plaque load was due to inhibition of Aβ secretion, which led to aberrant intraneuronal Aβ accumulation in the perinuclear region,” wrote the investigators. “Our results establish a function for autophagy in Aβ metabolism: Autophagy influences secretion of Aβ to the extracellular space and thereby directly affects Aβ plaque formation, a pathological hallmark of AD.”

According to Dr. Nilsson, “To control amyloid beta metabolism including its secretion is a key to controlling the disease. Autophagy might therefore be a potential drug target for the treatment of Alzheimer’s disease.”

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Related questions

01Undruggable or unscreenable?

Another obstacle to discovering new PPI inhibitors is the lack of libraries designed to hunt for them, points out Philippe Roche, PhD, senior scientist at the Integrative Structural and Chemical Biology team at the Cancer Research Center of Marseilles, France. “If you screen PPIs using libraries that were designed for kinases or GPCRs, that’s why you don’t get a lot of good results,” he says. To that end, his group began assembling a library focused on orthosteric inhibitors of PPIs. The result was 2P2Idb, a hand-curated, structural database cataloguing orthosteric inhibitors of PPIs for which the interface had been 3D characterized. From analyzing these known PPI inhibitors, and what structures they had in common, Roche and his colleagues developed a model to predict whether compounds would likely inhibit PPIs. Using this method, 2P2Idb creates an enriched screening library that dramatically increases the hit rate compared to standard libraries. Having proven their success with a small library of 1600 compounds, they are in the process of expanding the library to 10,000 compounds. Once that’s published, “the idea is to make this library available to labs around the world,” Roche says. “We will provide the library free of charge for people to be able to screen PPI targets.”

Source: www.genengnews.com ↗
02How stable is the antibody?

A crucial question often addressed during preclinical development focuses on the in vivo stability of therapeutic antibodies. Increasing the half-life of a therapeutic antibody has several benefits ranging from higher treatment efficacy to increased advantages for the patients who will have a fewer number of therapy sessions and a reduced cost. Given these compelling benefits, following the identification of therapeutic antibodies with the desired specificity, developers usually subject them to a refinement step to increase their stability. This process is often hindered by the lack of reliable experimental tools to predict the half-life of antibodies in patients. The major hurdle of using mouse models to predict antibody stability in the serum lies in the way immunoglobulin proteins are processed by the organism. In mammals, most proteins circulating in the serum undergo constant uptake by endothelial cells and are routed through the endosomes to the lysosomal compartment for degradation. In the endosomes, immunoglobulin G (IgG) proteins are recognized and bound by a transmembrane protein, called the neonatal Fc receptor (FcRn), which mediates their recycling to the plasma membrane and subsequent release back into the serum. As a result, the half-life of IgGs are significantly extended by this mechanism. Since most therapeutic antibodies belong to the IgG class, this recycling system is very relevant for their relative stability in the body. Remarkably, the relative affinity between IgGs and FcRn is extremely disparate between different species, with the mouse receptor showing a much higher affinity than its human counterpart.

Source: www.genengnews.com ↗
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Peptide Therapy Guide Editorial Team

Editorial team for Peptide Therapy Guide.

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