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Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium

INTRODUCTION: Our aim was to, firstly, identify characteristics at first-episode of psychosis that are associated with later antipsychotic treatment resistance (TR) and, secondly, to develop a parsimonious prediction model for TR. METHODS: We combined data from ten prospective, first-episode psychos...

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Autores principales: Smart, Sophie E., Agbedjro, Deborah, Pardiñas, Antonio F., Ajnakina, Olesya, Alameda, Luis, Andreassen, Ole A., Barnes, Thomas R.E., Berardi, Domenico, Camporesi, Sara, Cleusix, Martine, Conus, Philippe, Crespo-Facorro, Benedicto, D'Andrea, Giuseppe, Demjaha, Arsime, Di Forti, Marta, Do, Kim, Doody, Gillian, Eap, Chin B., Ferchiou, Aziz, Guidi, Lorenzo, Homman, Lina, Jenni, Raoul, Joyce, Eileen, Kassoumeri, Laura, Lastrina, Ornella, Melle, Ingrid, Morgan, Craig, O'Neill, Francis A., Pignon, Baptiste, Restellini, Romeo, Richard, Jean-Romain, Simonsen, Carmen, Španiel, Filip, Szöke, Andrei, Tarricone, Ilaria, Tortelli, Andrea, Üçok, Alp, Vázquez-Bourgon, Javier, Murray, Robin M., Walters, James T.R., Stahl, Daniel, MacCabe, James H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier Science Publisher B. V 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9834064/
https://www.ncbi.nlm.nih.gov/pubmed/36242784
http://dx.doi.org/10.1016/j.schres.2022.09.009
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author Smart, Sophie E.
Agbedjro, Deborah
Pardiñas, Antonio F.
Ajnakina, Olesya
Alameda, Luis
Andreassen, Ole A.
Barnes, Thomas R.E.
Berardi, Domenico
Camporesi, Sara
Cleusix, Martine
Conus, Philippe
Crespo-Facorro, Benedicto
D'Andrea, Giuseppe
Demjaha, Arsime
Di Forti, Marta
Do, Kim
Doody, Gillian
Eap, Chin B.
Ferchiou, Aziz
Guidi, Lorenzo
Homman, Lina
Jenni, Raoul
Joyce, Eileen
Kassoumeri, Laura
Lastrina, Ornella
Melle, Ingrid
Morgan, Craig
O'Neill, Francis A.
Pignon, Baptiste
Restellini, Romeo
Richard, Jean-Romain
Simonsen, Carmen
Španiel, Filip
Szöke, Andrei
Tarricone, Ilaria
Tortelli, Andrea
Üçok, Alp
Vázquez-Bourgon, Javier
Murray, Robin M.
Walters, James T.R.
Stahl, Daniel
MacCabe, James H.
author_facet Smart, Sophie E.
Agbedjro, Deborah
Pardiñas, Antonio F.
Ajnakina, Olesya
Alameda, Luis
Andreassen, Ole A.
Barnes, Thomas R.E.
Berardi, Domenico
Camporesi, Sara
Cleusix, Martine
Conus, Philippe
Crespo-Facorro, Benedicto
D'Andrea, Giuseppe
Demjaha, Arsime
Di Forti, Marta
Do, Kim
Doody, Gillian
Eap, Chin B.
Ferchiou, Aziz
Guidi, Lorenzo
Homman, Lina
Jenni, Raoul
Joyce, Eileen
Kassoumeri, Laura
Lastrina, Ornella
Melle, Ingrid
Morgan, Craig
O'Neill, Francis A.
Pignon, Baptiste
Restellini, Romeo
Richard, Jean-Romain
Simonsen, Carmen
Španiel, Filip
Szöke, Andrei
Tarricone, Ilaria
Tortelli, Andrea
Üçok, Alp
Vázquez-Bourgon, Javier
Murray, Robin M.
Walters, James T.R.
Stahl, Daniel
MacCabe, James H.
author_sort Smart, Sophie E.
collection PubMed
description INTRODUCTION: Our aim was to, firstly, identify characteristics at first-episode of psychosis that are associated with later antipsychotic treatment resistance (TR) and, secondly, to develop a parsimonious prediction model for TR. METHODS: We combined data from ten prospective, first-episode psychosis cohorts from across Europe and categorised patients as TR or non-treatment resistant (NTR) after a mean follow up of 4.18 years (s.d. = 3.20) for secondary data analysis. We identified a list of potential predictors from clinical and demographic data recorded at first-episode. These potential predictors were entered in two models: a multivariable logistic regression to identify which were independently associated with TR and a penalised logistic regression, which performed variable selection, to produce a parsimonious prediction model. This model was internally validated using a 5-fold, 50-repeat cross-validation optimism-correction. RESULTS: Our sample consisted of N = 2216 participants of which 385 (17 %) developed TR. Younger age of psychosis onset and fewer years in education were independently associated with increased odds of developing TR. The prediction model selected 7 out of 17 variables that, when combined, could quantify the risk of being TR better than chance. These included age of onset, years in education, gender, BMI, relationship status, alcohol use, and positive symptoms. The optimism-corrected area under the curve was 0.59 (accuracy = 64 %, sensitivity = 48 %, and specificity = 76 %). IMPLICATIONS: Our findings show that treatment resistance can be predicted, at first-episode of psychosis. Pending a model update and external validation, we demonstrate the potential value of prediction models for TR.
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spelling pubmed-98340642023-01-17 Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium Smart, Sophie E. Agbedjro, Deborah Pardiñas, Antonio F. Ajnakina, Olesya Alameda, Luis Andreassen, Ole A. Barnes, Thomas R.E. Berardi, Domenico Camporesi, Sara Cleusix, Martine Conus, Philippe Crespo-Facorro, Benedicto D'Andrea, Giuseppe Demjaha, Arsime Di Forti, Marta Do, Kim Doody, Gillian Eap, Chin B. Ferchiou, Aziz Guidi, Lorenzo Homman, Lina Jenni, Raoul Joyce, Eileen Kassoumeri, Laura Lastrina, Ornella Melle, Ingrid Morgan, Craig O'Neill, Francis A. Pignon, Baptiste Restellini, Romeo Richard, Jean-Romain Simonsen, Carmen Španiel, Filip Szöke, Andrei Tarricone, Ilaria Tortelli, Andrea Üçok, Alp Vázquez-Bourgon, Javier Murray, Robin M. Walters, James T.R. Stahl, Daniel MacCabe, James H. Schizophr Res Article INTRODUCTION: Our aim was to, firstly, identify characteristics at first-episode of psychosis that are associated with later antipsychotic treatment resistance (TR) and, secondly, to develop a parsimonious prediction model for TR. METHODS: We combined data from ten prospective, first-episode psychosis cohorts from across Europe and categorised patients as TR or non-treatment resistant (NTR) after a mean follow up of 4.18 years (s.d. = 3.20) for secondary data analysis. We identified a list of potential predictors from clinical and demographic data recorded at first-episode. These potential predictors were entered in two models: a multivariable logistic regression to identify which were independently associated with TR and a penalised logistic regression, which performed variable selection, to produce a parsimonious prediction model. This model was internally validated using a 5-fold, 50-repeat cross-validation optimism-correction. RESULTS: Our sample consisted of N = 2216 participants of which 385 (17 %) developed TR. Younger age of psychosis onset and fewer years in education were independently associated with increased odds of developing TR. The prediction model selected 7 out of 17 variables that, when combined, could quantify the risk of being TR better than chance. These included age of onset, years in education, gender, BMI, relationship status, alcohol use, and positive symptoms. The optimism-corrected area under the curve was 0.59 (accuracy = 64 %, sensitivity = 48 %, and specificity = 76 %). IMPLICATIONS: Our findings show that treatment resistance can be predicted, at first-episode of psychosis. Pending a model update and external validation, we demonstrate the potential value of prediction models for TR. Elsevier Science Publisher B. V 2022-12 /pmc/articles/PMC9834064/ /pubmed/36242784 http://dx.doi.org/10.1016/j.schres.2022.09.009 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Smart, Sophie E.
Agbedjro, Deborah
Pardiñas, Antonio F.
Ajnakina, Olesya
Alameda, Luis
Andreassen, Ole A.
Barnes, Thomas R.E.
Berardi, Domenico
Camporesi, Sara
Cleusix, Martine
Conus, Philippe
Crespo-Facorro, Benedicto
D'Andrea, Giuseppe
Demjaha, Arsime
Di Forti, Marta
Do, Kim
Doody, Gillian
Eap, Chin B.
Ferchiou, Aziz
Guidi, Lorenzo
Homman, Lina
Jenni, Raoul
Joyce, Eileen
Kassoumeri, Laura
Lastrina, Ornella
Melle, Ingrid
Morgan, Craig
O'Neill, Francis A.
Pignon, Baptiste
Restellini, Romeo
Richard, Jean-Romain
Simonsen, Carmen
Španiel, Filip
Szöke, Andrei
Tarricone, Ilaria
Tortelli, Andrea
Üçok, Alp
Vázquez-Bourgon, Javier
Murray, Robin M.
Walters, James T.R.
Stahl, Daniel
MacCabe, James H.
Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium
title Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium
title_full Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium
title_fullStr Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium
title_full_unstemmed Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium
title_short Clinical predictors of antipsychotic treatment resistance: Development and internal validation of a prognostic prediction model by the STRATA-G consortium
title_sort clinical predictors of antipsychotic treatment resistance: development and internal validation of a prognostic prediction model by the strata-g consortium
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9834064/
https://www.ncbi.nlm.nih.gov/pubmed/36242784
http://dx.doi.org/10.1016/j.schres.2022.09.009
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