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  4. Immune digital twins for complex human pathologies: applications, limitations, and challenges
 
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November 30, 2024
Journal Article
Title

Immune digital twins for complex human pathologies: applications, limitations, and challenges

Abstract
Digital twins represent a key technology for precision health. Medical digital twins consist of computational models that represent the health state of individual patients over time, enabling optimal therapeutics and forecasting patient prognosis. Many health conditions involve the immune system, so it is crucial to include its key features when designing medical digital twins. The immune response is complex and varies across diseases and patients, and its modelling requires the collective expertise of the clinical, immunology, and computational modelling communities. This review outlines the initial progress on immune digital twins and the various initiatives to facilitate communication between interdisciplinary communities. We also outline the crucial aspects of an immune digital twin design and the prerequisites for its implementation in the clinic. We propose some initial use cases that could serve as "proof of concept" regarding the utility of immune digital technology, focusing on diseases with a very different immune response across spatial and temporal scales (minutes, days, months, years). Lastly, we discuss the use of digital twins in drug discovery and point out emerging challenges that the scientific community needs to collectively overcome to make immune digital twins a reality.
Author(s)
Niarakis, Anna
University of Toulouse
Laubenbacher, Reinhard
University of Florida
An, Gary
University of Vermont
Ilan, Yaron
Hebrew University, Jerusalem  
Fisher, Jasmin
University College London  
Martínez, María Rodríguez
Yale School of Medicine
Reiche, Kristin  
Fraunhofer-Institut für Zelltherapie und Immunologie IZI  
Ladeira, Luiz
University of Liège
Geris, Liesbet
KU Leuven  
Flobak, Åsmund
Norwegian University of Science and Technology -NTNU-, Trondheim  
Veschini, Lorenzo
King's College London  
Blinov, Michael L.
UConn Health
Messina, Francesco
I.R.C.C.S., Rome
Fonseca, Luis L.
University of Florida
Ferreira, Sandra
University of Beira Interior
Montagud, Arnau
Barcelona Supercomputing Center
Marku, Malvina
University of Toulouse
Noël, Vincent
Institut Curie
Torres, Marcella M.
University of Richmond
Harris, Leonard A.
University of Arkansas
Sego, T. J.
University of Florida
Cockrell, Chase
University of Vermont
Shick, Amanda
University of Florida
Balci, Hasan
Maastricht University
Rian, Kinza
Andalusian Public Foundation Progress and Health-FPS
Hemedan, Ahmed Abdelmonem
University of Luxembourg
Salazar, Albin
INRIA  
Esteban-Medina, Marina
Andalusian Public Foundation Progress and Health-FPS
Staumont, Bernard
University of Liège
Hernandez-Vargas, Esteban
University of Idaho
Tsirvouli, Eirini
Norwegian University of Science and Technology -NTNU-, Trondheim  
Martis B, Shiny
Novadiscovery Lyon
Madrid-Valiente, Alejandro
Barcelona Supercomputing Center
Vieira, Luis Sordo
University of Florida
Harlapur, Pradiyumna
Indian Institute of Science Bengaluru
Karampelesis, Panagiotis
University of Patras  
Kulesza, Alexander
Novadiscovery Lyon
Nikaein, Niloofar
Örebro University
Garira, Winston
M3-LSP Kimberley
Sheriff, Rahuman S. Malik
European Molecular Biology Laboratory, Hinxton
Thakar, Juilee
University of Rochester Medical Center
Tran, Van Du T.
SIB Swiss Institute of Bioinformatics
Carbonell-Caballero, Jose
Barcelona Supercomputing Center
Valencia, Alfonso
Barcelona Supercomputing Center
Zinovyev, Andrei
Evotec (France)
Glazier, James A.
Indiana University
Safaei, Soroush
Ghent University  
Journal
npj Systems biology and applications  
Open Access
DOI
10.1038/s41540-024-00450-5
Additional full text version
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Language
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Fraunhofer-Institut für Zelltherapie und Immunologie IZI  
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