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1.
J Med Syst ; 46(6): 34, 2022 May 05.
Article in English | MEDLINE | ID: mdl-35511408

ABSTRACT

Digital health tools (DHT) are increasingly poised to change healthcare delivery given the Coronavirus Disease 2019 (COVID-19) pandemic and the drive to telehealth. Establishing the potential utility of a given DHT could aid in identifying how it could be best used and further opportunities for healthcare improvement. We propose a metric, a Utility Factor Score, which quantifies the benefits of a DHT by explicitly defining adherence and linking it directly to satisfaction and health goals met. To provide data for how the comparative utility score can or should work, we illustrate in detail the application of our metrics across four DHTs with two simulated users. The Utility Factor Score can potentially facilitate integration of DHTs into various healthcare settings and should be evaluated within a clinical study.


Subject(s)
COVID-19 , Telemedicine , Delivery of Health Care , Humans , Pandemics
2.
J Affect Disord ; 231: 51-57, 2018 04 15.
Article in English | MEDLINE | ID: mdl-29448238

ABSTRACT

BACKGROUND: Due to the heterogeneity of depressive symptoms-which can include depressed mood, anhedonia, negative cognitive biases, and altered activity levels-researchers often use a combination of depression rating scales to assess symptoms. This study sought to identify unidimensional constructs measured across rating scales for depression and to evaluate these constructs across clinical trials of a rapid-acting antidepressant (ketamine). METHODS: Exploratory factor analysis (EFA) was conducted on baseline ratings from the Beck Depression Inventory (BDI), the Hamilton Depression Rating Scale (HAM-D), the Montgomery-Asberg Depression Rating Scale (MADRS), and the Snaith-Hamilton Pleasure Rating Scale (SHAPS). Inpatients with major depressive disorder (n = 76) or bipolar depression (n = 43) were participating in clinical ketamine trials. The trajectories of the resulting unidimensional scores were evaluated in 41 subjects with bipolar depression who participated in clinical ketamine trials. RESULTS: The best solution, which exhibited excellent fit to the data, comprised eight factors: Depressed Mood, Tension, Negative Cognition, Impaired Sleep, Suicidal Thoughts, Reduced Appetite, Anhedonia, and Amotivation. Various response patterns were observed across the clinical trial data, both in treatment effect (ketamine versus placebo) and in degree of placebo response, suggesting that use of these unidimensional constructs may reveal patterns not observed with traditional scoring of individual instruments. LIMITATIONS: Limitations include: 1) small sample (and related inability to confirm measurement invariance); 2) absence of an independent sample for confirmation of factor structure; and 3) the treatment-resistant nature of the population, which may limit generalizability. CONCLUSIONS: The empirical identification of unidimensional constructs creates more refined scores that may elucidate the connection between specific symptoms and underlying pathophysiology.


Subject(s)
Bipolar Disorder/diagnosis , Depressive Disorder, Major/diagnosis , Psychiatric Status Rating Scales/statistics & numerical data , Symptom Assessment/statistics & numerical data , Adult , Antidepressive Agents/therapeutic use , Bipolar Disorder/drug therapy , Bipolar Disorder/psychology , Depressive Disorder, Major/drug therapy , Depressive Disorder, Major/psychology , Factor Analysis, Statistical , Female , Humans , Ketamine/therapeutic use , Male , Middle Aged , Psychotropic Drugs/therapeutic use , Symptom Assessment/methods , Young Adult
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