Completed Cells, Biochemistry & Physiology Brain & Nervous System

Unravelling signalling pathways controlling proteasome homeostasis under stressful conditions

In plain English

AI plain-English summary

As cells age, they become clogged with misshapen and damaged proteins—a molecular litter that has been linked to cancer and neurodegenerative diseases. This project investigates how cells clear that debris. The body’s main cleanup crew is the Ubiquitin-Proteasome System (UPS), which tags and destroys faulty proteins. But the system itself needs regulation, and that regulation often breaks down with age or in disease. The researchers recently discovered that a kinase called Mpk1/ERK5 helps control how many proteasomes a cell builds and how active they are under stress. This project aims to identify the specific targets that Mpk1/ERK5 modifies to keep the UPS running. This is fundamental science. It asks how a core cellular machine is tuned in real time. If the team finds that key regulatory proteins are mutated in cancers—where cells are known to become addicted to high proteasome activity—it could reveal new drug targets. Conversely, learning how to boost proteasome capacity might one day help clear the toxic protein clumps seen in Alzheimer’s or Parkinson’s disease. No immediate application is promised, but understanding the wiring of this system is a necessary step toward repairing it.

View original technical description
Misfolded and damaged proteins accumulate with age and this progressive collapse of the proteome is defined as one of the hallmarks of ageing and contributes to various human diseases such as cancer and neurodegeneration. The Ubiquitin-Proteasome system (UPS) by clearing these faulty proteins is an essential component to maintain the integrity of the proteome. Our work focuses on better understanding signalling pathways that control proteasome assembly and activity. This is a very fundamental and important question with strong links to understanding healthy aging and human disease. We have recently shown that the kinase Mpk1/ERK5 controls proteasome homeostasis upon various proteotoxic stresses. Thus, we are particularly interested in identifying Mpk1/ERK5 substrates which are required for the regulation of proteasome homeostasis. This study will provide insights on how phosphorylation regulates proteasomal degradation and survival upon stressful conditions. As cancer cells are often addicted to high levels of proteasomes, it will also be exciting to uncover whether any of the key identified substrates are mutated in cancers. With the central function of the proteasome in clearing misfolded and unwanted proteins, this proposal might also help developing new strategies to increase proteasome capacity with the idea that this could be beneficial to treat neurodegenerative diseases.

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Researchers

Adrien ROUSSEAU (Principal Investigator)

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Original classification

Intramural

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