Literature DB >> 27431294

Predicting suicides after outpatient mental health visits in the Army Study to Assess Risk and Resilience in Servicemembers (Army STARRS).

R C Kessler1, M B Stein2,3, M V Petukhova1, P Bliese4, R M Bossarte5, E J Bromet6, C S Fullerton7, S E Gilman8,9, C Ivany10, L Lewandowski-Romps11, A Millikan Bell12, J A Naifeh7, M K Nock13, B Y Reis14, A J Rosellini1, N A Sampson1, A M Zaslavsky1, R J Ursano7.   

Abstract

The 2013 US Veterans Administration/Department of Defense Clinical Practice Guidelines (VA/DoD CPG) require comprehensive suicide risk assessments for VA/DoD patients with mental disorders but provide minimal guidance on how to carry out these assessments. Given that clinician-based assessments are not known to be strong predictors of suicide, we investigated whether a precision medicine model using administrative data after outpatient mental health specialty visits could be developed to predict suicides among outpatients. We focused on male nondeployed Regular US Army soldiers because they account for the vast majority of such suicides. Four machine learning classifiers (naive Bayes, random forests, support vector regression and elastic net penalized regression) were explored. Of the Army suicides in 2004-2009, 41.5% occurred among 12.0% of soldiers seen as outpatient by mental health specialists, with risk especially high within 26 weeks of visits. An elastic net classifier with 10-14 predictors optimized sensitivity (45.6% of suicide deaths occurring after the 15% of visits with highest predicted risk). Good model stability was found for a model using 2004-2007 data to predict 2008-2009 suicides, although stability decreased in a model using 2008-2009 data to predict 2010-2012 suicides. The 5% of visits with highest risk included only 0.1% of soldiers (1047.1 suicides/100 000 person-years in the 5 weeks after the visit). This is a high enough concentration of risk to have implications for targeting preventive interventions. An even better model might be developed in the future by including the enriched information on clinician-evaluated suicide risk mandated by the VA/DoD CPG to be recorded.

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Year:  2016        PMID: 27431294      PMCID: PMC5247428          DOI: 10.1038/mp.2016.110

Source DB:  PubMed          Journal:  Mol Psychiatry        ISSN: 1359-4184            Impact factor:   15.992


  36 in total

1.  Deaths by suicide while on active duty, active and reserve components, U.S. Armed Forces, 1998-2011.

Authors: 
Journal:  MSMR       Date:  2012-06

Review 2.  Clinical versus actuarial judgment.

Authors:  R M Dawes; D Faust; P E Meehl
Journal:  Science       Date:  1989-03-31       Impact factor: 47.728

3.  Risk of Suicide Among US Military Service Members Following Operation Enduring Freedom or Operation Iraqi Freedom Deployment and Separation From the US Military.

Authors:  Mark A Reger; Derek J Smolenski; Nancy A Skopp; Melinda J Metzger-Abamukang; Han K Kang; Tim A Bullman; Sondra Perdue; Gregory A Gahm
Journal:  JAMA Psychiatry       Date:  2015-06       Impact factor: 21.596

4.  Suicide and traumatic brain injury among individuals seeking Veterans Health Administration services.

Authors:  Lisa A Brenner; Rosalinda V Ignacio; Frederic C Blow
Journal:  J Head Trauma Rehabil       Date:  2011 Jul-Aug       Impact factor: 2.710

5.  A probabilistic system for identifying suicide attemptors.

Authors:  D H Gustafson; J H Greist; F F Stauss; H Erdman; T Laughren
Journal:  Comput Biomed Res       Date:  1977-04

6.  The Army study to assess risk and resilience in servicemembers (Army STARRS).

Authors:  Robert J Ursano; Lisa J Colpe; Steven G Heeringa; Ronald C Kessler; Michael Schoenbaum; Murray B Stein
Journal:  Psychiatry       Date:  2014       Impact factor: 2.458

7.  Risk factors for suicide among 34,671 patients with psychotic and non-psychotic severe depression.

Authors:  Anne Katrine K Leadholm; Anthony J Rothschild; Jimmi Nielsen; Per Bech; Søren D Ostergaard
Journal:  J Affect Disord       Date:  2013-12-18       Impact factor: 4.839

8.  Regularization Paths for Generalized Linear Models via Coordinate Descent.

Authors:  Jerome Friedman; Trevor Hastie; Rob Tibshirani
Journal:  J Stat Softw       Date:  2010       Impact factor: 6.440

Review 9.  Screening for and treatment of suicide risk relevant to primary care: a systematic review for the U.S. Preventive Services Task Force.

Authors:  Elizabeth O'Connor; Bradley N Gaynes; Brittany U Burda; Clara Soh; Evelyn P Whitlock
Journal:  Ann Intern Med       Date:  2013-05-21       Impact factor: 25.391

10.  Suicide risk categorisation of psychiatric inpatients: what it might mean and why it is of no use.

Authors:  Matthew M Large; Christopher J Ryan
Journal:  Australas Psychiatry       Date:  2014-05-28       Impact factor: 1.369

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  53 in total

1.  Predicting Suicide Attempts and Suicide Deaths Following Outpatient Visits Using Electronic Health Records.

Authors:  Gregory E Simon; Eric Johnson; Jean M Lawrence; Rebecca C Rossom; Brian Ahmedani; Frances L Lynch; Arne Beck; Beth Waitzfelder; Rebecca Ziebell; Robert B Penfold; Susan M Shortreed
Journal:  Am J Psychiatry       Date:  2018-05-24       Impact factor: 18.112

2.  Between-visit changes in suicidal ideation and risk of subsequent suicide attempt.

Authors:  Gregory E Simon; Susan M Shortreed; Eric Johnson; Arne Beck; Karen J Coleman; Rebecca C Rossom; Ursula S Whiteside; Belinda H Operskalski; Robert B Penfold
Journal:  Depress Anxiety       Date:  2017-04-25       Impact factor: 6.505

3.  Prediction Models of Functional Outcomes for Individuals in the Clinical High-Risk State for Psychosis or With Recent-Onset Depression: A Multimodal, Multisite Machine Learning Analysis.

Authors:  Nikolaos Koutsouleris; Lana Kambeitz-Ilankovic; Stephan Ruhrmann; Marlene Rosen; Anne Ruef; Dominic B Dwyer; Marco Paolini; Katharine Chisholm; Joseph Kambeitz; Theresa Haidl; André Schmidt; John Gillam; Frauke Schultze-Lutter; Peter Falkai; Maximilian Reiser; Anita Riecher-Rössler; Rachel Upthegrove; Jarmo Hietala; Raimo K R Salokangas; Christos Pantelis; Eva Meisenzahl; Stephen J Wood; Dirk Beque; Paolo Brambilla; Stefan Borgwardt
Journal:  JAMA Psychiatry       Date:  2018-11-01       Impact factor: 21.596

4.  Reaching Those at Highest Risk for Suicide: Development of a Model Using Machine Learning Methods for use With Native American Communities.

Authors:  Emily E Haroz; Colin G Walsh; Novalene Goklish; Mary F Cwik; Victoria O'Keefe; Allison Barlow
Journal:  Suicide Life Threat Behav       Date:  2019-11-06

5.  First onset of suicidal thoughts and behaviours in college.

Authors:  P Mortier; K Demyttenaere; R P Auerbach; P Cuijpers; J G Green; G Kiekens; R C Kessler; M K Nock; A M Zaslavsky; R Bruffaerts
Journal:  J Affect Disord       Date:  2016-09-28       Impact factor: 4.839

6.  Medically Documented Suicide Ideation Among U.S. Army Soldiers.

Authors:  Robert J Ursano; Ronald C Kessler; Murray B Stein; James A Naifeh; Matthew K Nock; Pablo A Aliaga; Carol S Fullerton; Gary H Wynn; Tsz Hin Hinz Ng; Hieu M Dinh; Nancy A Sampson; Tzu-Cheg Kao; Michael Schoenbaum; James E McCarroll; Kenneth L Cox; Steven G Heeringa
Journal:  Suicide Life Threat Behav       Date:  2016-11-29

7.  Short-term prediction of suicidal thoughts and behaviors in adolescents: Can recent developments in technology and computational science provide a breakthrough?

Authors:  Nicholas B Allen; Benjamin W Nelson; David Brent; Randy P Auerbach
Journal:  J Affect Disord       Date:  2019-03-06       Impact factor: 4.839

8.  Prediction of Sex-Specific Suicide Risk Using Machine Learning and Single-Payer Health Care Registry Data From Denmark.

Authors:  Jaimie L Gradus; Anthony J Rosellini; Erzsébet Horváth-Puhó; Amy E Street; Isaac Galatzer-Levy; Tammy Jiang; Timothy L Lash; Henrik T Sørensen
Journal:  JAMA Psychiatry       Date:  2020-01-01       Impact factor: 21.596

9.  Severity and Variability of Depression Symptoms Predicting Suicide Attempt in High-Risk Individuals.

Authors:  Nadine M Melhem; Giovanna Porta; Maria A Oquendo; Jamie Zelazny; John G Keilp; Satish Iyengar; Ainsley Burke; Boris Birmaher; Barbara Stanley; J John Mann; David A Brent
Journal:  JAMA Psychiatry       Date:  2019-06-01       Impact factor: 21.596

10.  Universal screening may not prevent suicide.

Authors:  Paul S Nestadt; Patrick Triplett; Ramin Mojtabai; Alan L Berman
Journal:  Gen Hosp Psychiatry       Date:  2018-06-25       Impact factor: 3.238

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