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Data-driven clustering of combined Functional Motor Disorders based on the Italian registry

INTRODUCTION: Functional Motor Disorders (FMDs) represent nosological entities with no clear phenotypic characterization, especially in patients with multiple (combined FMDs) motor manifestations. A data-driven approach using cluster analysis of clinical data has been proposed as an analytic method...

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Autores principales: Mostile, Giovanni, Geroin, Christian, Erro, Roberto, Luca, Antonina, Marcuzzo, Enrico, Barone, Paolo, Ceravolo, Roberto, Mazzucchi, Sonia, Pilotto, Andrea, Padovani, Alessandro, Romito, Luigi Michele, Eleopra, Roberto, Dallocchio, Carlo, Arbasino, Carla, Bono, Francesco, Bruno, Pietro Antonio, Demartini, Benedetta, Gambini, Orsola, Modugno, Nicola, Olivola, Enrica, Bonanni, Laura, Albanese, Alberto, Ferrazzano, Gina, De Micco, Rosa, Zibetti, Maurizio, Calandra-Buonaura, Giovanna, Petracca, Martina, Morgante, Francesca, Esposito, Marcello, Pisani, Antonio, Manganotti, Paolo, Stocchi, Fabrizio, Coletti Moja, Mario, Di Vico, Ilaria Antonella, Tesolin, Lucia, De Bertoldi, Francesco, Ercoli, Tommaso, Defazio, Giovanni, Zappia, Mario, Nicoletti, Alessandra, Tinazzi, Michele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9742245/
https://www.ncbi.nlm.nih.gov/pubmed/36518193
http://dx.doi.org/10.3389/fneur.2022.987593
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author Mostile, Giovanni
Geroin, Christian
Erro, Roberto
Luca, Antonina
Marcuzzo, Enrico
Barone, Paolo
Ceravolo, Roberto
Mazzucchi, Sonia
Pilotto, Andrea
Padovani, Alessandro
Romito, Luigi Michele
Eleopra, Roberto
Dallocchio, Carlo
Arbasino, Carla
Bono, Francesco
Bruno, Pietro Antonio
Demartini, Benedetta
Gambini, Orsola
Modugno, Nicola
Olivola, Enrica
Bonanni, Laura
Albanese, Alberto
Ferrazzano, Gina
De Micco, Rosa
Zibetti, Maurizio
Calandra-Buonaura, Giovanna
Petracca, Martina
Morgante, Francesca
Esposito, Marcello
Pisani, Antonio
Manganotti, Paolo
Stocchi, Fabrizio
Coletti Moja, Mario
Di Vico, Ilaria Antonella
Tesolin, Lucia
De Bertoldi, Francesco
Ercoli, Tommaso
Defazio, Giovanni
Zappia, Mario
Nicoletti, Alessandra
Tinazzi, Michele
author_facet Mostile, Giovanni
Geroin, Christian
Erro, Roberto
Luca, Antonina
Marcuzzo, Enrico
Barone, Paolo
Ceravolo, Roberto
Mazzucchi, Sonia
Pilotto, Andrea
Padovani, Alessandro
Romito, Luigi Michele
Eleopra, Roberto
Dallocchio, Carlo
Arbasino, Carla
Bono, Francesco
Bruno, Pietro Antonio
Demartini, Benedetta
Gambini, Orsola
Modugno, Nicola
Olivola, Enrica
Bonanni, Laura
Albanese, Alberto
Ferrazzano, Gina
De Micco, Rosa
Zibetti, Maurizio
Calandra-Buonaura, Giovanna
Petracca, Martina
Morgante, Francesca
Esposito, Marcello
Pisani, Antonio
Manganotti, Paolo
Stocchi, Fabrizio
Coletti Moja, Mario
Di Vico, Ilaria Antonella
Tesolin, Lucia
De Bertoldi, Francesco
Ercoli, Tommaso
Defazio, Giovanni
Zappia, Mario
Nicoletti, Alessandra
Tinazzi, Michele
author_sort Mostile, Giovanni
collection PubMed
description INTRODUCTION: Functional Motor Disorders (FMDs) represent nosological entities with no clear phenotypic characterization, especially in patients with multiple (combined FMDs) motor manifestations. A data-driven approach using cluster analysis of clinical data has been proposed as an analytic method to obtain non-hierarchical unbiased classifications. The study aimed to identify clinical subtypes of combined FMDs using a data-driven approach to overcome possible limits related to “a priori” classifications and clinical overlapping. METHODS: Data were obtained by the Italian Registry of Functional Motor Disorders. Patients identified with multiple or “combined” FMDs by standardized clinical assessments were selected to be analyzed. Non-hierarchical cluster analysis was performed based on FMDs phenomenology. Multivariate analysis was then performed after adjustment for principal confounding variables. RESULTS: From a study population of n = 410 subjects with FMDs, we selected n = 188 subjects [women: 133 (70.7%); age: 47.9 ± 14.4 years; disease duration: 6.4 ± 7.7 years] presenting combined FMDs to be analyzed. Based on motor phenotype, two independent clusters were identified: Cluster C1 (n = 82; 43.6%) and Cluster C2 (n = 106; 56.4%). Cluster C1 was characterized by functional tremor plus parkinsonism as the main clinical phenotype. Cluster C2 mainly included subjects with functional weakness. Cluster C1 included older subjects suffering from anxiety who were more treated with botulinum toxin and antiepileptics. Cluster C2 included younger subjects referring to different associated symptoms, such as pain, headache, and visual disturbances, who were more treated with antidepressants. CONCLUSION: Using a data-driven approach of clinical data from the Italian registry, we differentiated clinical subtypes among combined FMDs to be validated by prospective studies.
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spelling pubmed-97422452022-12-13 Data-driven clustering of combined Functional Motor Disorders based on the Italian registry Mostile, Giovanni Geroin, Christian Erro, Roberto Luca, Antonina Marcuzzo, Enrico Barone, Paolo Ceravolo, Roberto Mazzucchi, Sonia Pilotto, Andrea Padovani, Alessandro Romito, Luigi Michele Eleopra, Roberto Dallocchio, Carlo Arbasino, Carla Bono, Francesco Bruno, Pietro Antonio Demartini, Benedetta Gambini, Orsola Modugno, Nicola Olivola, Enrica Bonanni, Laura Albanese, Alberto Ferrazzano, Gina De Micco, Rosa Zibetti, Maurizio Calandra-Buonaura, Giovanna Petracca, Martina Morgante, Francesca Esposito, Marcello Pisani, Antonio Manganotti, Paolo Stocchi, Fabrizio Coletti Moja, Mario Di Vico, Ilaria Antonella Tesolin, Lucia De Bertoldi, Francesco Ercoli, Tommaso Defazio, Giovanni Zappia, Mario Nicoletti, Alessandra Tinazzi, Michele Front Neurol Neurology INTRODUCTION: Functional Motor Disorders (FMDs) represent nosological entities with no clear phenotypic characterization, especially in patients with multiple (combined FMDs) motor manifestations. A data-driven approach using cluster analysis of clinical data has been proposed as an analytic method to obtain non-hierarchical unbiased classifications. The study aimed to identify clinical subtypes of combined FMDs using a data-driven approach to overcome possible limits related to “a priori” classifications and clinical overlapping. METHODS: Data were obtained by the Italian Registry of Functional Motor Disorders. Patients identified with multiple or “combined” FMDs by standardized clinical assessments were selected to be analyzed. Non-hierarchical cluster analysis was performed based on FMDs phenomenology. Multivariate analysis was then performed after adjustment for principal confounding variables. RESULTS: From a study population of n = 410 subjects with FMDs, we selected n = 188 subjects [women: 133 (70.7%); age: 47.9 ± 14.4 years; disease duration: 6.4 ± 7.7 years] presenting combined FMDs to be analyzed. Based on motor phenotype, two independent clusters were identified: Cluster C1 (n = 82; 43.6%) and Cluster C2 (n = 106; 56.4%). Cluster C1 was characterized by functional tremor plus parkinsonism as the main clinical phenotype. Cluster C2 mainly included subjects with functional weakness. Cluster C1 included older subjects suffering from anxiety who were more treated with botulinum toxin and antiepileptics. Cluster C2 included younger subjects referring to different associated symptoms, such as pain, headache, and visual disturbances, who were more treated with antidepressants. CONCLUSION: Using a data-driven approach of clinical data from the Italian registry, we differentiated clinical subtypes among combined FMDs to be validated by prospective studies. Frontiers Media S.A. 2022-11-28 /pmc/articles/PMC9742245/ /pubmed/36518193 http://dx.doi.org/10.3389/fneur.2022.987593 Text en Copyright © 2022 Mostile, Geroin, Erro, Luca, Marcuzzo, Barone, Ceravolo, Mazzucchi, Pilotto, Padovani, Romito, Eleopra, Dallocchio, Arbasino, Bono, Bruno, Demartini, Gambini, Modugno, Olivola, Bonanni, Albanese, Ferrazzano, De Micco, Zibetti, Calandra-Buonaura, Petracca, Morgante, Esposito, Pisani, Manganotti, Stocchi, Coletti Moja, Di Vico, Tesolin, De Bertoldi, Ercoli, Defazio, Zappia, Nicoletti and Tinazzi. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neurology
Mostile, Giovanni
Geroin, Christian
Erro, Roberto
Luca, Antonina
Marcuzzo, Enrico
Barone, Paolo
Ceravolo, Roberto
Mazzucchi, Sonia
Pilotto, Andrea
Padovani, Alessandro
Romito, Luigi Michele
Eleopra, Roberto
Dallocchio, Carlo
Arbasino, Carla
Bono, Francesco
Bruno, Pietro Antonio
Demartini, Benedetta
Gambini, Orsola
Modugno, Nicola
Olivola, Enrica
Bonanni, Laura
Albanese, Alberto
Ferrazzano, Gina
De Micco, Rosa
Zibetti, Maurizio
Calandra-Buonaura, Giovanna
Petracca, Martina
Morgante, Francesca
Esposito, Marcello
Pisani, Antonio
Manganotti, Paolo
Stocchi, Fabrizio
Coletti Moja, Mario
Di Vico, Ilaria Antonella
Tesolin, Lucia
De Bertoldi, Francesco
Ercoli, Tommaso
Defazio, Giovanni
Zappia, Mario
Nicoletti, Alessandra
Tinazzi, Michele
Data-driven clustering of combined Functional Motor Disorders based on the Italian registry
title Data-driven clustering of combined Functional Motor Disorders based on the Italian registry
title_full Data-driven clustering of combined Functional Motor Disorders based on the Italian registry
title_fullStr Data-driven clustering of combined Functional Motor Disorders based on the Italian registry
title_full_unstemmed Data-driven clustering of combined Functional Motor Disorders based on the Italian registry
title_short Data-driven clustering of combined Functional Motor Disorders based on the Italian registry
title_sort data-driven clustering of combined functional motor disorders based on the italian registry
topic Neurology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9742245/
https://www.ncbi.nlm.nih.gov/pubmed/36518193
http://dx.doi.org/10.3389/fneur.2022.987593
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