Problem/Issue Being Addressed: The project focuses on understanding the fundamental principles governing the formation, self-replication, and impact on living systems of aberrant protein aggregates, particularly amyloid aggregates implicated in neurodegenerative disorders. The inherent heterogeneity and complexity of protein aggregation processes present challenges for conventional bulk methods to probe and understand these phenomena effectively.
Importance for Society: Understanding protein aggregation is crucial for addressing a range of increasingly prevalent and currently incurable neurodegenerative disorders. Aberrant protein aggregation is associated with severe consequences for biological systems, making it imperative to decipher its mechanisms to develop potential therapeutic interventions.
Overall Objectives:
1. Understanding Nucleation Events: Investigate the triggering mechanisms of nucleation events in protein aggregation, exploring pre-nucleation clusters, non-classical nucleation pathways, and the role of liquid-liquid phase separation.
2. Characterizing Spatial Propagation: Monitor the spatial propagation of protein aggregation, studying its transmission in space and across soft barriers like cell membranes.
3. Single-Cell Analysis: Analyse the effects of specific types of protein aggregates on biological function at the single-cell level, shedding light on cellular protection mechanisms against aberrant protein aggregation.
4. Developing Digital Biophysics Toolkit: Develop and apply a novel digital biophysics platform combining microfluidics and single-molecule spectroscopy to study protein aggregation at the single aggregate and single-cell levels.
Methodological Approach: The project focuses on the development of a digital biophysics toolkit utilizing microfluidic compartmentalization and single-molecule detection techniques. This toolkit aims to enable the study of protein aggregation processes with unprecedented resolution and accuracy, allowing for real-time monitoring of aggregation dynamics and characterization of fundamental physical properties.
Summary: The project aims to introduce fundamentally novel approaches to studying protein aggregation, bridging the gap between in vitro biophysics and real biological systems. The envisioned platform holds promise for revolutionizing the understanding of protein aggregation dynamics, potentially leading to breakthroughs in both basic science and therapeutic interventions for neurodegenerative disorders.