Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

Exploring extracellular protein aggregation and its regulation

In plain English

AI plain-English summary

Inside human cells, a network of quality-control mechanisms keeps proteins folded and functional—but outside cells, that same protective system is almost unknown. This project investigates how the body prevents proteins from clumping together in the space between cells, a process linked to Alzheimer’s disease and type 2 diabetes. The researchers have already identified 57 new regulators of extracellular protein aggregation in a microscopic worm, half of which have potential human counterparts. They now aim to understand how these regulators work—whether they act as chaperones or proteases—and whether they help maintain health during ageing and defend against infections. Finally, they will test whether these same regulators can block the amyloid-β clumps characteristic of Alzheimer’s in mice. This is fundamental science. If successful, it would reveal a largely unknown layer of protein quality control operating outside cells, opening a new avenue for understanding why protein aggregation occurs in ageing and disease. There is no immediate practical application, but similar discoveries about intracellular protein folding have already led to therapies for neurodegenerative conditions. A deeper grasp of extracellular regulation could eventually point toward strategies to delay or prevent diseases driven by protein aggregation.

View original technical description
Extracellular protein aggregation is a pathological hallmark associated with devastating diseases such as Alzheimer’s disease and type II diabetes. Inside cells, protein quality control (PQC) mechanisms maintain a balanced and functional proteome. In contrast, little is known about protective mechanisms acting outside cells. Until recently, only a few extracellular chaperones and proteases were shown to limit extracellular protein aggregation. We developed a Caenorhabditis elegans model to study protein aggregation in the extracellular space. We performed a systematic analysis to identify the extracellular protein homeostasis network in C. elegans and discovered 57 novel extracellular regulators of protein aggregation of which half have potential human orthologues. Building on these findings, first we propose to investigate the mechanisms of extracellular PQC by characterizing chaperone and protease activities among C. elegans extracellular regulators and human orthologues. Second, we will determine how extracellular PQC promotes healthy ageing and host defence against pathogens in C. elegans. Finally, we will translate our finding into mice and examine if extracellular regulators prevent Alzheimer’s disease associated amyloid-β aggregation and delay mammalian brain ageing. I expect these studies to be a milestone in our understanding of how organisms keep proteins functional outside their constituent cells to maintain health.

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Researchers

Della David (EPMC Awardee)

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Original classification

Discovery Award

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