Multi-feature computational framework for combined signatures of dementia in underrepresented settings

被引:25
作者
Moguilner, Sebastian [1 ,2 ,3 ,19 ]
Birba, Agustina [2 ,3 ,4 ]
Fittipaldi, Sol [2 ,4 ]
Gonzalez-Campo, Cecilia [2 ]
Tagliazucchi, Enzo [3 ,4 ,5 ]
Reyes, Pablo [6 ]
Matallana, Diana [6 ]
Parra, Mario A. [7 ]
Slachevsky, Andrea [8 ,9 ,10 ,11 ,12 ]
Farias, Gonzalo [9 ]
Cruzat, Josefina [3 ]
Garcia, Adolfo [1 ,2 ,4 ,13 ,19 ]
Eyre, Harris A. [1 ,14 ,15 ,16 ,17 ,19 ]
La Joie, Renaud [18 ]
Rabinovici, Gil [1 ,18 ,19 ]
Whelan, Robert [1 ,19 ]
Ibanez, Agustin [1 ,2 ,3 ,4 ,19 ]
机构
[1] Univ Calif San Francisco, Global Brain Hlth Inst GBHI, San Francisco, CA 94143 USA
[2] Univ San Andres, Cognit Neurosci Ctr CNC, Buenos Aires, DF, Argentina
[3] Univ Adolfo Ibanez, Latin Amer Brain Hlth BrainLat, Santiago, Chile
[4] Natl Sci & Tech Res Council CONICET, Buenos Aires, DF, Argentina
[5] Univ Buenos Aires, Dept Phys, Buenos Aires, DF, Argentina
[6] Pontificia Univ Javeriana, Med Sch, Aging Inst, Psychiat & Mental Hlth, Bogota, Colombia
[7] Univ Strathclyde, MAP Sch Psychol Sci & Hlth, Glasgow, Lanark, Scotland
[8] Gerosci Ctr Brain Hlth & Metab, Santiago, Chile
[9] Univ Chile, Fac Med, Santiago, Chile
[10] Hosp Salvador, Memory & Neuropsychiat Clin CMYN, Neurol Dept, Santiago, Chile
[11] Univ Chile, Santiago, Chile
[12] Univ Desarrollo, Dept Med, Serv Neurol, Clin Alemana, Santiago, Chile
[13] Univ Santiago Chile, Fac Humanidades, Dept Linguist & Literatura, Santiago, Chile
[14] Org Econ Cooperat & Dev, Neurosci Inspired Policy Initiat, Paris, France
[15] PRODEO Inst, Paris, France
[16] Deakin Univ, Inst Mental & Phys Hlth & Clin Translat, IMPACT, Geelong, Vic, Australia
[17] Baylor Coll Med, Dept Psychiat & Behav Sci, Houston, TX USA
[18] Univ Calif San Francisco, Memory & Aging Ctr, Weill Inst Neurosci, Dept Neurol, San Francisco, CA USA
[19] Trinity Coll Dublin, Dublin, Ireland
基金
美国国家卫生研究院;
关键词
multimodal neuroimaging; neurodegeneration; harmonization; feature selection; machine learning; VARIANT FRONTOTEMPORAL DEMENTIA; MONTREAL COGNITIVE ASSESSMENT; MILD ALZHEIMERS-DISEASE; MRI; CONNECTIVITY; ASSOCIATION; RHYTHMS; VOLUME;
D O I
10.1088/1741-2552/ac87d0
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Objective. The differential diagnosis of behavioral variant frontotemporal dementia (bvFTD) and Alzheimer's disease (AD) remains challenging in underrepresented, underdiagnosed groups, including Latinos, as advanced biomarkers are rarely available. Recent guidelines for the study of dementia highlight the critical role of biomarkers. Thus, novel cost-effective complementary approaches are required in clinical settings. Approach. We developed a novel framework based on a gradient boosting machine learning classifier, tuned by Bayesian optimization, on a multi-feature multimodal approach (combining demographic, neuropsychological, magnetic resonance imaging (MRI), and electroencephalography/functional MRI connectivity data) to characterize neurodegeneration using site harmonization and sequential feature selection. We assessed 54 bvFTD and 76 AD patients and 152 healthy controls (HCs) from a Latin American consortium (ReDLat). Main results. The multimodal model yielded high area under the curve classification values (bvFTD patients vs HCs: 0.93 (+/- 0.01); AD patients vs HCs: 0.95 (+/- 0.01); bvFTD vs AD patients: 0.92 (+/- 0.01)). The feature selection approach successfully filtered non-informative multimodal markers (from thousands to dozens). Results. Proved robust against multimodal heterogeneity, sociodemographic variability, and missing data. Significance. The model accurately identified dementia subtypes using measures readily available in underrepresented settings, with a similar performance than advanced biomarkers. This approach, if confirmed and replicated, may potentially complement clinical assessments in developing countries.
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页数:17
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