Machine Learning Prediction of Comorbid Substance Use Disorders among People with Bipolar Disorder

被引:10
作者
Oliva, Vincenzo [1 ,2 ]
De Prisco, Michele [1 ,3 ]
Pons-Cabrera, Maria Teresa [4 ]
Guzman, Pablo [4 ]
Anmella, Gerard [1 ]
Hidalgo-Mazzei, Diego [1 ]
Grande, Iria [1 ]
Fanelli, Giuseppe [2 ,5 ]
Fabbri, Chiara [2 ,6 ]
Serretti, Alessandro [2 ]
Fornaro, Michele [3 ]
Iasevoli, Felice [3 ]
de Bartolomeis, Andrea [3 ]
Murru, Andrea [1 ]
Vieta, Eduard [1 ]
Fico, Giovanna [1 ]
机构
[1] Univ Barcelona, Bipolar & Depress Disorders Unit, Inst Neurosci, Hosp Clin,IDIBAPS,CIBERSAM, 170 Villarroel St,12-0, Barcelona 08036, Catalonia, Spain
[2] Univ Bologna, Dept Biomed & Neuromotor Sci, I-40123 Bologna, Italy
[3] Federico II Univ Naples, Sect Psychiat, Dept Neurosci Reprod Sci & Odontostomatol, I-80131 Naples, Italy
[4] Univ Barcelona, Dept Psychiat & Psychol, Inst Neurosci, Hosp Clin,Addict Unit,IDIBAPS,CIBERSAM, 170 Villarroel St,12-0, Barcelona 08036, Catalonia, Spain
[5] Radboud Univ Nijmegen Med Ctr, Dept Human Genet, Donders Inst Brain Cognit & Behav, NL-6525 GD Nijmegen, Netherlands
[6] Kings Coll London, Social Genet & Dev Psychiat Ctr, Inst Psychiat Psychol & Neurosci, London SE5 9NU, England
关键词
bipolar disorder; substance use disorder; cannabis use disorder; alcohol use disorder; machine learning; NATIONAL EPIDEMIOLOGIC SURVEY; ALCOHOL-USE DISORDER; PREDOMINANT POLARITY; I DISORDER; 1ST HOSPITALIZATION; PREVALENCE; ABUSE; DEPRESSION; ASSOCIATION; IMPULSIVITY;
D O I
10.3390/jcm11143935
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Substance use disorder (SUD) is a common comorbidity in individuals with bipolar disorder (BD), and it is associated with a severe course of illness, making early identification of the risk factors for SUD in BD warranted. We aimed to identify, through machine-learning models, the factors associated with different types of SUD in BD. We recruited 508 individuals with BD from a specialized unit. Lifetime SUDs were defined according to the DSM criteria. Random forest (RF) models were trained to identify the presence of (i) any (SUD) in the total sample, (ii) alcohol use disorder (AUD) in the total sample, (iii) AUD co-occurrence with at least another SUD in the total sample (AUD+SUD), and (iv) any other SUD among BD patients with AUD. Relevant variables selected by the RFs were considered as independent variables in multiple logistic regressions to predict SUDs, adjusting for relevant covariates. AUD+SUD could be predicted in BD at an individual level with a sensitivity of 75% and a specificity of 75%. The presence of AUD+SUD was positively associated with having hypomania as the first affective episode (OR = 4.34 95% CI = 1.42-13.31), and the presence of hetero-aggressive behavior (OR = 3.15 95% CI = 1.48-6.74). Machine-learning models might be useful instruments to predict the risk of SUD in BD, but their efficacy is limited when considering socio-demographic or clinical factors alone.
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页数:13
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