This ERC Consolidator Grant, StressHUb, aims to explore the role of branched ubiquitin (HUb) chains, complex ubiquitin modifications, in cellular stress responses. Ubiquitin, a small regulatory protein, is known for its ability to modify other proteins post-translationally, forming either monoubiquitin or polyubiquitin chains that regulate diverse cellular processes. Recent discoveries suggest that ubiquitin can also form branched heterotypic chains, which may adopt unique conformations and convey specific intracellular signals vital for maintaining cellular homeostasis, particularly during stress.
The central hypothesis of this research is that branched ubiquitin chains are formed in response to specific cellular stresses and act as specialized signals that trigger cellular stress responses. We hypothesise that branched chains function as priority signals that ensure prompt and appropriate cellular reactions to stress, thereby preserving cellular homeostasis. Despite their abundance, studying these branched ubiquitin chains is challenging. This is due to their complex nature, the scarcity of tools to analyze them effectively and easily, and their relatively low abundance within cells. This project seeks to overcome these challenges by developing novel tools, methods, and approaches that will enable detailed investigation of the role of branched chains in stress signalling.
Broadly, the main objectives of the project include:
• Establishing methods to generate branched Ub chains of defined architectures
• Determining the crystal structures of various branched ubiquitin chains to understand their unique interaction interfaces and conformations.
• Define how branched ubiquitin is decoded in cells
• Tool & Method Development: Creating innovative tools to study branched ubiquitin chains in cells
• Identifying cellular machinery responsible for making and disassembling branched chains
• Defining the conditions and stress stimuli that lead to the formation of specific branched ubiquitin chains and uncovering their roles in cellular stress response pathways
By focusing on selected branched ubiquitin chains, this project aims to establish a foundational understanding of how branched ubiquitin chains function as unique stress signals. The outcomes are expected to provide novel insights into intracellular signalling mechanisms and offer new strategies for therapeutic intervention in diseases linked to protein misfolding and degradation.