Identifying Person-Specific Drivers of Depression in Adolescents:Protocol for a Smartphone-Based Ecological MomentaryAssessment and Passive Sensing Study

被引:0
|
作者
Ng, Mei Yi [1 ,2 ]
Frederick, Jennifer A. [1 ,2 ]
Fishe, Aaron J. [3 ]
Allen, Nicholas B. [4 ]
Petti, Jeremy W. [1 ,2 ]
McMakin, Dana L. [1 ,2 ]
机构
[1] Florida Int Univ, Dept Psychol, 11200 SW 8th St AHC4-457, Miami, FL 33199 USA
[2] Florida Int Univ, Ctr Children & Families, 11200 SW 8th St AHC4-457, Miami, FL 33199 USA
[3] Univ Calif Berkeley, Dept Psychol, Berkeley, CA USA
[4] Univ Oregon, Dept Psychol, Eugene, OR USA
来源
JMIR RESEARCH PROTOCOLS | 2024年 / 13卷
关键词
aolescents; depression; idiographic assessment; network modeling; treatment personalization; ecological momentary assessment; digital phenotyping; actigraphy; smartphones; mobile sensing; COGNITIVE-BEHAVIORAL THERAPY; MEASUREMENT EQUIVALENCE; MULTIDIMENSIONAL SCALE; MODEL SELECTION; ETHNIC-IDENTITY; SCIENCE; INTERVENTION; METAANALYSIS; RELIABILITY; PREVALENCE;
D O I
10.2196/43931
中图分类号
R19 [保健组织与事业(卫生事业管理)];
学科分类号
摘要
Background: Adolescence is marked by an increasing risk of depression and is an optimal window for prevention and early intervention. Personalizing interventions may be one way to maximize therapeutic benefit, especially given the marked heterogeneity in depressive presentations. However, empirical evidence that can guide personalized intervention for youth is lacking. Identifying person-specific symptom drivers during adolescence could improve outcomes by accounting for both developmental and individual differences. Objective: This study leverages adolescents' everyday smartphone use to investigate person-specific drivers of depression and validate smartphone-based mobile sensing data against established ambulatory methods. We describe the methods of this study and provide an update on its status. After data collection is completed, we will address three specific aims: (1) identify idiographic drivers of dynamic variability in depressive symptoms, (2) test the validity of mobile sensing against ecological momentary assessment (EMA) and actigraphy for identifying these drivers, and (3) explore adolescent baseline characteristics as predictors of these drivers. Methods: A total of 50 adolescents with elevated symptoms of depression will participate in 28 days of (1) smartphone-based EMA assessing depressive symptoms, processes, affect, and sleep; (2) mobile sensing of mobility, physical activity, sleep, natural language use in typed interpersonal communication, screen-on time, and call frequency and duration using the Effortless Assessment of Risk States smartphone app; and (3) wrist actigraphy of physical activity and sleep. Adolescents and caregivers will complete developmental and clinical measures at baseline, as well as user feedback interviews at follow-up. Idiographic, within-subject networks of EMA symptoms will be modeled to identify each adolescent's person-specific drivers of depression. Correlations among EMA, mobile sensor, and actigraph measures of sleep, physical, and social activity will be used to assess the validity of mobile sensing for identifying person-specific drivers. Data-driven analyses of mobile sensor variables predicting core depressive symptoms (self-reported mood and anhedonia) will also be used to assess the validity of mobile sensing for identifying drivers. Finally, between-subject baseline characteristics will be explored as predictors of person-specific drivers. Results: As of October 2023, 84 families were screened as eligible, of whom 70% (n=59) provided informed consent and 46% (n=39) met all inclusion criteria after completing baseline assessment. Of the 39 included families, 85% (n=33) completed the 28-day smartphone and actigraph data collection period and follow-up study visit. Conclusions: This study leverages depressed adolescents' everyday smartphone use to identify person-specific drivers of adolescent depression and to assess the validity of mobile sensing for identifying these drivers. The findings are expected to offer novel insights into the structure and dynamics of depressive symptomatology during a sensitive period of development and to inform future development of a scalable, low-burden smartphone-based tool that can guide personalized treatment decisions for depressed adolescents.
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页数:13
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