Data-driven staging of genetic frontotemporal dementia using multi-modal MRI.
disease progression
frontotemporal dementia
magnetic resonance imaging
unsupervised machine learning
Journal
Human brain mapping
ISSN: 1097-0193
Titre abrégé: Hum Brain Mapp
Pays: United States
ID NLM: 9419065
Informations de publication
Date de publication:
15 04 2022
15 04 2022
Historique:
revised:
02
11
2021
received:
07
06
2021
accepted:
11
11
2021
pubmed:
5
2
2022
medline:
28
4
2022
entrez:
4
2
2022
Statut:
ppublish
Résumé
Frontotemporal dementia in genetic forms is highly heterogeneous and begins many years to prior symptom onset, complicating disease understanding and treatment development. Unifying methods to stage the disease during both the presymptomatic and symptomatic phases are needed for the development of clinical trials outcomes. Here we used the contrastive trajectory inference (cTI), an unsupervised machine learning algorithm that analyzes temporal patterns in high-dimensional large-scale population datasets to obtain individual scores of disease stage. We used cross-sectional MRI data (gray matter density, T1/T2 ratio as a proxy for myelin content, resting-state functional amplitude, gray matter fractional anisotropy, and mean diffusivity) from 383 gene carriers (269 presymptomatic and 115 symptomatic) and a control group of 253 noncarriers in the Genetic Frontotemporal Dementia Initiative. We compared the cTI-obtained disease scores to the estimated years to onset (age-mean age of onset in relatives), clinical, and neuropsychological test scores. The cTI based disease scores were correlated with all clinical and neuropsychological tests (measuring behavioral symptoms, attention, memory, language, and executive functions), with the highest contribution coming from mean diffusivity. Mean cTI scores were higher in the presymptomatic carriers than controls, indicating that the method may capture subtle pre-dementia cerebral changes, although this change was not replicated in a subset of subjects with complete data. This study provides a proof of concept that cTI can identify data-driven disease stages in a heterogeneous sample combining different mutations and disease stages of genetic FTD using only MRI metrics.
Identifiants
pubmed: 35118777
doi: 10.1002/hbm.25727
pmc: PMC8933323
doi:
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
1821-1835Subventions
Organisme : Medical Research Council
ID : MC_UU_00005/12
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/M008983/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/M008525/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/M023664/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/T046015/1
Pays : United Kingdom
Organisme : Medical Research Council
ID : MC_U105597119
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/J009482/1
Pays : United Kingdom
Investigateurs
Sónia Afonso
(S)
Maria Rosario Almeida
(MR)
Sarah Anderl-Straub
(S)
Christin Andersson
(C)
Anna Antonell
(A)
Silvana Archetti
(S)
Andrea Arighi
(A)
Mircea Balasa
(M)
Myriam Barandiaran
(M)
Nuria Bargalló
(N)
Robart Bartha
(R)
Benjamin Bender
(B)
Alberto Benussi
(A)
Luisa Benussi
(L)
Valentina Bessi
(V)
Giuliano Binetti
(G)
Sandra Black
(S)
Martina Bocchetta
(M)
Sergi Borrego-Ecija
(S)
Jose Bras
(J)
Rose Bruffaerts
(R)
Marta Cañada
(M)
Valentina Cantoni
(V)
Paola Caroppo
(P)
David Cash
(D)
Miguel Castelo-Branco
(M)
Rhian Convery
(R)
Thomas Cope
(T)
Maura Cosseddu
(M)
María de Arriba
(M)
Giuseppe Di Fede
(G)
Zigor Díaz
(Z)
Alina Díez
(A)
Diana Duro
(D)
Chiara Fenoglio
(C)
Camilla Ferrari
(C)
Carlos Ferreira
(C)
Catarina B Ferreira
(CB)
Toby Flanagan
(T)
Nick Fox
(N)
Morris Freedman
(M)
Giorgio Fumagalli
(G)
Alazne Gabilondo
(A)
Roberto Gasparotti
(R)
Serge Gauthier
(S)
Stefano Gazzina
(S)
Giorgio Giaccone
(G)
Ana Gorostidi
(A)
Caroline Greaves
(C)
Rita Guerreiro
(R)
Carolin Heller
(C)
Tobias Hoegen
(T)
Begoña Indakoetxea
(B)
Vesna Jelic
(V)
Hans-Otto Karnath
(HO)
Ron Keren
(R)
Tobias Langheinrich
(T)
Maria João Leitão
(MJ)
Albert Lladó
(A)
Gemma Lombardi
(G)
Sandra Loosli
(S)
Carolina Maruta
(C)
Simon Mead
(S)
Lieke Meeter
(L)
Gabriel Miltenberger
(G)
Rick van Minkelen
(R)
Sara Mitchell
(S)
Katrina M Moore
(KM)
Benedetta Nacmias
(B)
Mollie Neason
(M)
Jennifer Nicholas
(J)
Linn Öijerstedt
(L)
Jaume Olives
(J)
Sebastien Ourselin
(S)
Alessandro Padovani
(A)
Jessica Panman
(J)
Janne Papma
(J)
Georgia Peakman
(G)
Irene Piaceri
(I)
Michela Pievani
(M)
Yolande Pijnenburg
(Y)
Cristina Polito
(C)
Enrico Premi
(E)
Sara Prioni
(S)
Catharina Prix
(C)
Rosa Rademakers
(R)
Veronica Redaelli
(V)
Tim Rittman
(T)
Ekaterina Rogaeva
(E)
Pedro Rosa-Neto
(P)
Giacomina Rossi
(G)
Martin Rossor
(M)
Beatriz Santiago
(B)
Elio Scarpini
(E)
Sonja Schönecker
(S)
Elisa Semler
(E)
Rachelle Shafei
(R)
Christen Shoesmith
(C)
Miguel Tábuas-Pereira
(M)
Mikel Tainta
(M)
Ricardo Taipa
(R)
David Tang-Wai
(D)
David L Thomas
(DL)
Paul Thompson
(P)
Hakan Thonberg
(H)
Carolyn Timberlake
(C)
Pietro Tiraboschi
(P)
Emily Todd
(E)
Philip Vandamme
(P)
Mathieu Vandenbulcke
(M)
Michele Veldsman
(M)
Ana Verdelho
(A)
Jorge Villanua
(J)
Jason Warren
(J)
Carlo Wilke
(C)
Ione Woollacott
(I)
Elisabeth Wlasich
(E)
Henrik Zetterberg
(H)
Miren Zulaica
(M)
Informations de copyright
© 2022 The Authors. Human Brain Mapping published by Wiley Periodicals LLC.
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