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Multi-scAle high-order neTwork modelling in the stUdy of human aging: A data-dRiven perspectIve using Topology and geometrY

Project description

Using neuroimaging to map ageing pathways

Understanding aging and its associated diseases is one of the most complex challenges in modern biology. Advanced neuroimaging techniques, such as functional magnetic resonance imaging and electroencephalography scans, measure brain activity. However, creating accurate diagnostic tools is challenging due to noise and data quality issues. Although topological and geometrical data analysis is promising, limited algorithms hinder progress. Supported by the Marie Skłodowska-Curie Actions programme, the MATURITY project will analyse time-series data from ageing databases using a multi-layer higher-order network approach. The project has unique access to multi-scale lifespan data, including multi-omics, exposome, microbiome and neuroimaging data as well as clinical data from thousands of patients. Overall, it explains how aging happens through biological pathways.

Objective

A full understanding of ageing is still elusive, as well as the consequences in terms of age-related diseases. Several approaches have been proposed to overcome the challenges of cure and early diagnosis of brain diseases, such as Parkinson's and Alzheimer's. With the advent of technology, different approaches are used in order to measure brain activity, such as fMRI, PET scans, EEG/MEG scans, to name a few. However, in order to propose accurate tools for diagnosis, the choice of an appropriate data measurement that can be noise-free and endowed with the correct features is far from being an easy task. Topological and geometrical data analysis emerged in the last decade as a very promising tool. Yet, the lack of efficient approaches, as well as computational algorithms, prevents rapid advances in the field of big data. These limitations also prevent the analyses from going beyond low-dimensional data inspection, also limiting the information provided. The present project aims to propose systematic answers to some of these issues, with the goal of analysing and classifying (both topologically and geometrically) time-series from ageing databases in a multi-layer higher-order network. To this end, the RF has unique access to human lifespan (20 to over 100 years of age) multi-scale data (from multi-omics, exposome, microbiome, neuro-imaging to phenotypic) from the NIH/USA (National Institute on Aging) and multi-modal clinical data of thousands of patients. Being an expert in multivariate time series to generate higher-order information from, he will develop an efficient, optimized geometrical/topological tool for computing higher-order invariants. The RF hypothesizes a relation between the long genes and the susceptibility of the human brain to age-related disease. He anticipates that merging multi-omics and brain data, together with the proposed multi-layered topological workflow classification, will allow him to generate a proof-of-concept model for ageing pathways.

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HORIZON-TMA-MSCA-PF-EF - HORIZON TMA MSCA Postdoctoral Fellowships - European Fellowships

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(opens in new window) HORIZON-MSCA-2025-PF

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Coordinator

INSTITUT NATIONAL DE RECHERCHE EN INFORMATIQUE ET AUTOMATIQUE
Net EU contribution

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€ 226 420,56
Address
DOMAINE DE VOLUCEAU ROCQUENCOURT
78153 Le Chesnay Cedex
France

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