Associated organisationsMax Planck Institute of Biochemistry · University of Cambridge · University of Texas at AustinEurope PMC affiliations are not treated as award recipients or mapped locations.
Funding£4.9M
PeriodJan 2024 — Jan 2032
In plain English
AI plain-English summary
Inside a human cell, a delivery network called the endosomal system sorts proteins and other cargo, deciding what gets recycled, what gets broken down, and what gets sent elsewhere. When this system fails, it contributes to diseases such as Alzheimer’s, Parkinson’s, and many infections, because pathogens often hijack endosomes to enter cells. Current knowledge of how endosomes coordinate their internal chemistry with the shape and activity of their outer membrane is fragmented. This project aims to build a comprehensive, four-dimensional model—spanning time and multiple scales of resolution—of an endosome’s structure and function throughout its life cycle. The researchers will combine high-resolution imaging techniques, including cryo-electron tomography, with biochemical experiments to map how proteins and membranes work together. This is fundamental science with no immediate practical application. However, a detailed mechanistic model of endosomal architecture could eventually reveal new targets for drugs that block viral entry or correct trafficking errors in neurodegenerative diseases, much as earlier fundamental work on cellular transport paved the way for targeted cancer therapies.
View original technical description
Endosomes are the organelles where trafficking, signalling, homeostasis and autophagy meet. Their aberrant function is linked to many pathophysiological states and they are the major site of pathogen entry into cells. Cellular TM- protein logistics require that cargo is moved within the endosomal system and dispatched to other organelles under tight spatial and temporal control. This requires that characteristics of endosomal limiting membranes from which membrane-bound carriers leave, must be coupled to the endosomal luminal environment as endosomes mature towards low-pH/degradative compartments. To understand how this is achieved, we need to understand the molecular mechanisms of endosomal machineries and how they are regulated and integrated to generate this finely controlled dynamic system. We will integrate top-down and bottom-up structural/functional approaches to view endosomes through different magnification lenses from organelle morphology to high-resolution mechanistic studies of proteins that control endosomal physiology or drive transport carrier formation. Intermediate resolutions, critical to understanding the architecture/organisation and function of machineries/assemblies on an endosome’s surface, will be studied using cryo- electron tomography. Structural data will be combined with biochemical and phase-separation studies to contextulaise and drive ‘in-cell’ studies resulting in a comprehensive, multi-resolution, 4-dimensional structural/functional model of an endosome’s function and architecture throughout its life.
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