Individual-Level Prediction of Exposure Therapy Outcome Using Structural and Functional MRI Data in Spider Phobia: A Machine-Learning Study

Author:

Chavanne Alice V.12ORCID,Meinke Charlotte1,Langhammer Till1ORCID,Roesmann Kati345ORCID,Boehnlein Joscha6ORCID,Gathmann Bettina7ORCID,Herrmann Martin J.8ORCID,Junghoefer Markus49ORCID,Klahn Luisa10ORCID,Schwarzmeier Hanna8ORCID,Seeger Fabian R.8,Siminski Niklas8,Straube Thomas67,Dannlowski Udo6ORCID,Lueken Ulrike1ORCID,Leehr Elisabeth J.6,Hilbert Kevin1ORCID

Affiliation:

1. Department of Psychology, Humboldt-Universität zu Berlin, Berlin, Germany

2. Université Paris-Saclay, INSERM U1299 “Trajectoires développementales et psychiatrie”, CNRS UMR 9010 Centre Borelli, Ecole Normale Supérieure Paris-Saclay, France

3. Institute of Clinical Psychology and Psychotherapy, University of Siegen, Germany

4. Institute for Biomagnetism and Biosignalanalysis, University of Münster, Germany

5. Institute of Psychology, Unit of Clinical Psychology and Psychotherapy in Childhood and Adolescence, University of Osnabrück, Germany

6. Institute for Translational Psychiatry, University of Münster, Germany

7. Institute of Medical Psychology and Systems Neuroscience, University of Münster, Germany

8. Department of Psychiatry, Psychosomatics, and Psychotherapy, Center for Mental Health, University Hospital of Würzburg, Germany

9. Otto-Creutzfeld Center for Cognitive and Behavioral Neuroscience, University of Münster, Germany

10. Department of Psychiatry and Neurochemistry, Institute of Neuroscience and Physiology, University of Gothenburg, Sweden

Abstract

Machine-learning prediction studies have shown potential to inform treatment stratification, but recent efforts to predict psychotherapy outcomes with clinical routine data have only resulted in moderate prediction accuracies. Neuroimaging data showed promise to predict treatment outcome, but previous prediction attempts have been exploratory and reported small clinical sample sizes. Herein, we aimed to examine the incremental predictive value of neuroimaging data in contrast to clinical and demographic data alone (for which results were previously published), using a two-level multimodal ensemble machine-learning strategy. We used pretreatment structural and task-based fMRI data to predict virtual reality exposure therapy outcome in a bicentric sample of N = 190 patients with spider phobia. First, eight 1st-level random forest classifications were conducted using separate data modalities (clinical questionnaire scores and sociodemographic data, cortical thickness and gray matter volumes, functional activation, connectivity, connectivity-derived graph metrics, and BOLD signal variance). Then, the resulting predictions were used to train a 2nd-level classifier that produced a final prediction. No 1st-level or 2nd-level classifier performed above chance level except BOLD signal variance, which showed potential as a contributor to higher-level prediction from multiple regions across the brain (1st-level balanced accuracy = 0.63 ). Overall, neuroimaging data did not provide any incremental accuracy for treatment outcome prediction in patients with spider phobia with respect to clinical and sociodemographic data alone. Thus, we advise caution in the interpretation of prediction performances from small-scale, single-site patient samples. Larger multimodal datasets are needed to further investigate individual-level neuroimaging predictors of therapy response in anxiety disorders.

Funder

DFG–FOR5187

Publisher

Hindawi Limited

Subject

Psychiatry and Mental health,Clinical Psychology

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