{"id":26251,"date":"2024-09-30T09:23:24","date_gmt":"2024-09-30T09:23:24","guid":{"rendered":"https:\/\/cit.upc.edu\/?post_type=portfolio&#038;p=26251"},"modified":"2024-12-03T11:03:06","modified_gmt":"2024-12-03T11:03:06","slug":"epige-app-an-algorithm-that-facilitates-the-diagnosis-of-medulloblastoma","status":"publish","type":"portfolio","link":"https:\/\/cit.upc.edu\/en\/portfolio-item\/epige-app-an-algorithm-that-facilitates-the-diagnosis-of-medulloblastoma\/","title":{"rendered":"EpiGe-App: An algorithm that facilitates the diagnosis of medulloblastoma"},"content":{"rendered":"\n<p class=\"wp-block-paragraph\">30\/09\/2024<br>Project Header<br>right<br>no-repeat;left top;;<br>auto<br>20px<br><br><h4>A team from the Centre for Research in Biomedical Engineering (CREB) of the UPC and Sant Joan de D\u00e9u has created a new web application that allows faster, more accurate and less costly analysis and automated interpretation of the type of marrow-loblastoma. The tool is key to the individualised treatment of this type of malignant brain tumour that mainly affects children and young people.<\/h4><br>Project Header<br>no-repeat;left top;;<br>auto<br>20px<br><br><br>Medulloblastoma is a malignant brain tumour that mainly affects children and young adults, accounting for approximately 20% of all brain tumours in this population. Accurate classification of the molecular groups of medulloblastoma is crucial for oncologists to define the most appropriate treatment plan for each patient.<br><br>Molecular classification of medulloblastoma is increasingly important for clinical decision-making that defines patient management and treatment. Current classification systems for the molecular subgroups of medulloblastoma are expensive and take several weeks to obtain results. This makes them inaccessible for many centres around the world treating patients with brain tumours.<br><br>In this context, the team formed by researchers from CREB\\&#8217;s B2SLab of the UPC, the Institut de Recerca Sant Joan de D\u00e9u (IRSJD) and l\\&#8217;Hospital Sant Joan de D\u00e9u, has developed a new methodology to classify the main molecular groups of medulloblastomas quickly, accurately and easily, using technology within the reach of most centres that treat children with brain tumours.<br><br>Initially, in 2018, a team from the Laboratory of Molecular Oncology of the Hospital Sant Joan de D\u00e9u and coordinator of the Translational Genomics group of the IRSJD, analysed genomic data from more than 1,500 marulloblastoma samples obtained thanks to the collaboration of international research groups for two years. This study identified the minimum number of markers that allowed the classification of medulloblastoma into clinically relevant molecular groups with a reliability of 96%. From these data, CREB researchers were able to develop a system that allowed the classification of medulloblastoma into the three subgroups of clinical interest (WNT, SHH and non-WNT\/non-SHH) in an accurate, rapid and accessible manner.<br><br>With these results and to facilitate their application, the IRSJD and CREB\\&#8217;s B2SLab group have created an interactive web application, <a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.epige.irsjd.org\/\" target=\"_blank\" rel=\"noopener\">EpiGe<\/a>, which allows automated analysis and interpretation of the type of medulloblastoma. The advances achieved in this project have been rapidly transferred to care to support clinical decisions, to individualise patient therapy according to the genetic characteristics of the tumour and to offer more effective targeted therapies with less toxicity.<br><br>The EpiGe application allows the classification of medulloblastoma samples into the three molecular groups based on DNA methylation data obtained through the molecular technique of quantitative PCR (qPCR). Given the availability and accessibility of qPCR in most molecular biology laboratories, the tool developed makes the classification of these tumours an accessible test for most centres treating patients with central nervous system tumours.<br><br>To train the learning algorithm, genomic data from 4,800 samples, including 3,044 primary marulloblastomas and 1,644 non-marulloblastoma samples, were used. With these samples, a methylation status predictor algorithm was generated from raw qPCR data and from this prediction, an automatic classifier was generated into molecular subgroups of medulloblastoma. Through this learning, EpiGe-App is able to accurately classify WNT, SHH and non-WNT\/non-SHH molecular subgroups of medulloblastoma, which can help medical teams define the most appropriate treatment.<br><br>The EpiGe-App allows healthcare professionals around the world to upload the results obtained following the detailed protocol available on the website. In less than two minutes, the platform returns a report with the result, offering 96% reliability in identifying the marulloblastoma subgroup.<br><br>The EpiGe-App has been funded with the support of the patient family associations of the Hospital Sant Joan de D\u00e9u, the TV3 Marathon and the Ministry of Science, Innovation and Universities with a budget of \u20ac298,625. The project has lasted three years.<br><br><br><br><a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.epige.irsjd.org\/\" target=\"_blank\" rel=\"noopener\">Access to the EpiGe platform<\/a><br><br><br>Main Text<br>no-repeat;left top;;<br>auto<br><br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/IRSJD-02-28-EpiGen-Abstract.jpg\" alt=\"IRSJD-02-28-EpiGen-Abstract\"><br>full<br>contain<br>center center<br>hide<br><br><br>26198,26195,26192,26207<br>4<br>full<br>hide<br><br><h4>Funding<\/h4><br>hide<br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/patients-1.png\" alt=\"patients\"><br>full<br><a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.sjdhospitalbarcelona.org\/es\/colabora\">https:\/\/www.sjdhospitalbarcelona.org\/es\/colabora<\/a><br>contain<br>center center<br>hide<br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/isciii.png\" alt=\"isciii\"><br>full<br><a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.isciii.es\/Paginas\/Inicio.aspx\">https:\/\/www.isciii.es\/Paginas\/Inicio.aspx<\/a><br>contain<br>center center<br>hide<br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/marato.png\" alt=\"marato\"><br>full<br><a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.ccma.cat\/tv3\/marato\/en\/fundacio\/\">https:\/\/www.ccma.cat\/tv3\/marato\/en\/fundacio\/<\/a><br>contain<br>center center<br>hide<br><br><h5>Technology<\/h5><br><br><a target=\"_blank\" target=\"_blank\" href=\"\/en\/health\/\" target=\"_blank\" rel=\"noopener\">Health<\/a><br><br><a target=\"_blank\" target=\"_blank\" href=\"\/en\/digital-transformation\/\" target=\"_blank\" rel=\"noopener\">Digital Transformation<\/a><br>Tecnolog\u00eda<br>no-repeat;left top;;<br>auto<br>0px<br><br>25<br><br>25<br><br><h5>Topic<\/h5><br><br><a target=\"_blank\" target=\"_blank\" href=\"\/en\/smart-city\/\" target=\"_blank\" rel=\"noopener\">Smart City<\/a><br>Tema<br>no-repeat;left top;;<br>auto<br>30px<br><br>40<br><br><h5>You want to know more?<\/h5><br>Contact Button<br>no-repeat;left top;;<br>auto<br>0px<br><br><hr class=\"no_line\" style=\"margin: 0 auto 0px auto\"\/>\n<br><br><a class=\"button  button_size_2\" href=\"\"         title=\"\"><span class=\"button_label\">Button<\/span><\/a>\n<br><br><br><br><hr class=\"no_line\" style=\"margin: 0 auto 0px auto\"\/>\n<br><br><a class=\"button  button_size_2\" href=\"\"         title=\"\"><span class=\"button_label\">Button<\/span><\/a>\n<br>no-repeat;left top;;<br>auto<br><br>50<br><br><h4>Related Projects<\/h4><br>Proyectos Relacionados<br>no-repeat;left top;;<br>auto<br><br>4<br>grid<br>4<br>date<br>DESC<br><br><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">30\/09\/2024<br>Project Header<br>right<br>no-repeat;left top;;<br>auto<br>20px<br><br><h4>A team from the Centre for Research in Biomedical Engineering (CREB) of the UPC and Sant Joan de D\u00e9u has created a new web application that allows faster, more accurate and less costly analysis and automated interpretation of the type of medulloblastoma. The tool is key to the individualised treatment of this type of malignant brain tumour that mainly affects children and young people.<\/h4><br>Project Header<br>no-repeat;left top;;<br>auto<br>20px<br><br><br>Medulloblastoma is a malignant brain tumour that mainly affects children and young adults, accounting for approximately 20% of all brain tumours in this population. Accurate classification of the molecular groups of medulloblastoma is crucial for oncologists to define the most appropriate treatment plan for each patient.<br><br>Molecular classification of medulloblastoma is increasingly important for clinical decision-making that defines patient management and treatment. Current classification systems for the molecular subgroups of medulloblastoma are expensive and take several weeks to obtain results. This makes them inaccessible for many centres around the world treating patients with brain tumours.<br><br>In this context, the team formed by researchers from CREB\\&#8217;s B2SLab of the UPC, the Institut de Recerca Sant Joan de D\u00e9u (IRSJD) and l\\&#8217;Hospital Sant Joan de D\u00e9u, has developed a new methodology to classify the main molecular groups of medulloblastomas quickly, accurately and easily, using technology within the reach of most centres that treat children with brain tumours.<br><br>Initially, in 2018, a team from the Laboratory of Molecular Oncology of the Hospital Sant Joan de D\u00e9u and coordinator of the Translational Genomics group of the IRSJD, analysed genomic data from more than 1,500 meduloblastoma samples obtained thanks to the collaboration of international research groups for two years. This study identified the minimum number of markers that allowed the classification of medulloblastoma into clinically relevant molecular groups with a reliability of 96%. From these data, CREB researchers were able to develop a system that allowed the classification of medulloblastoma into the three subgroups of clinical interest (WNT, SHH and non-WNT\/non-SHH) in an accurate, rapid and accessible manner.<br><br>With these results and to facilitate their application, the IRSJD and CREB\\&#8217;s B2SLab group have created an interactive web application, <a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.epige.irsjd.org\/\" target=\"_blank\" rel=\"noopener\">EpiGe<\/a>, which allows automated analysis and interpretation of the type of medulloblastoma. The advances achieved in this project have been rapidly transferred to care to support clinical decisions, to individualise patient therapy according to the genetic characteristics of the tumour and to offer more effective targeted therapies with less toxicity.<br><br>The EpiGe application allows the classification of medulloblastoma samples into the three molecular groups based on DNA methylation data obtained through the molecular technique of quantitative PCR (qPCR). Given the availability and accessibility of qPCR in most molecular biology laboratories, the tool developed makes the classification of these tumours an accessible test for most centres treating patients with central nervous system tumours.<br><br>To train the learning algorithm, genomic data from 4,800 samples, including 3,044 primary meduloblastomas and 1,644 non-meduloblastoma samples, were used. With these samples, a methylation status predictor algorithm was generated from raw qPCR data and from this prediction, an automatic classifier was generated into molecular subgroups of medulloblastoma. Through this learning, EpiGe-App is able to accurately classify WNT, SHH and non-WNT\/non-SHH molecular subgroups of medulloblastoma, which can help medical teams define the most appropriate treatment.<br><br>The EpiGe-App allows healthcare professionals around the world to upload the results obtained following the detailed protocol available on the website. In less than two minutes, the platform returns a report with the result, offering 96% reliability in identifying the meduloblastoma subgroup.<br><br>The EpiGe-App has been funded with the support of the patient family associations of the Hospital Sant Joan de D\u00e9u, the TV3 Marathon and the Ministry of Science, Innovation and Universities with a budget of \u20ac298,625. The project has lasted three years.<br><br>\u00a0 \u00a0 \u2192\u00a0<a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.epige.irsjd.org\/\" target=\"_blank\" rel=\"noopener\">Access to the EpiGe platform<\/a><br>Main Text<br>no-repeat;left top;;<br>auto<br><br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/IRSJD-02-28-EpiGen-Abstract.jpg\" alt=\"IRSJD-02-28-EpiGen-Abstract\"><br>full<br>contain<br>center center<br>hide<br><br>Image: Fundaci\u00f3 Sant Joan de D\u00e9u \u2013 Institut de Recerca Sant Joan de D\u00e9u<br>hide<br><br><br>26198,26195,26192,26207<br>4<br>full<br>hide<br><br><h4>Funding<\/h4><br>hide<br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/patients-1.png\" alt=\"patients\"><br>full<br><a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.sjdhospitalbarcelona.org\/es\/colabora\">https:\/\/www.sjdhospitalbarcelona.org\/es\/colabora<\/a><br>contain<br>center center<br>hide<br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/isciii.png\" alt=\"isciii\"><br>full<br><a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.isciii.es\/Paginas\/Inicio.aspx\">https:\/\/www.isciii.es\/Paginas\/Inicio.aspx<\/a><br>contain<br>center center<br>hide<br><br><img decoding=\"async\" src=\"https:\/\/cit.upc.edu\/wp-content\/uploads\/2024\/09\/marato.png\" alt=\"marato\"><br>full<br><a target=\"_blank\" target=\"_blank\" href=\"https:\/\/www.ccma.cat\/tv3\/marato\/en\/fundacio\/\">https:\/\/www.ccma.cat\/tv3\/marato\/en\/fundacio\/<\/a><br>contain<br>center center<br>hide<br><br><h5>Technology<\/h5><br><br><a target=\"_blank\" target=\"_blank\" href=\"\/en\/health\/\" target=\"_blank\" rel=\"noopener\">Health<\/a><br><br><a target=\"_blank\" target=\"_blank\" href=\"\/en\/digital-transformation\/\" target=\"_blank\" rel=\"noopener\">Digital Transformation<\/a><br>Tecnolog\u00eda<br>no-repeat;left top;;<br>auto<br>0px<br><br>25<br><br>25<br><br><h5>Topic<\/h5><br><br><a target=\"_blank\" target=\"_blank\" href=\"\/en\/smart-city\/\" target=\"_blank\" rel=\"noopener\">Smart City<\/a><br>Tema<br>no-repeat;left top;;<br>auto<br>30px<br><br>40<br><br><h5>You want to know more?<\/h5><br>Contact Button<br>no-repeat;left top;;<br>auto<br>0px<br><br><hr class=\"no_line\" style=\"margin: 0 auto 0px auto\"\/>\n<br><br><a class=\"button  button_size_2\" href=\"\"         title=\"\"><span class=\"button_label\">Button<\/span><\/a>\n<br><br><br><br><hr class=\"no_line\" style=\"margin: 0 auto 0px auto\"\/>\n<br><br><a class=\"button  button_size_2\" href=\"\"         title=\"\"><span class=\"button_label\">Button<\/span><\/a>\n<br>no-repeat;left top;;<br>auto<br><br>50<br><br><h4>Related Projects<\/h4><br>Proyectos Relacionados<br>no-repeat;left top;;<br>auto<br><br>4<br>grid<br>4<br>date<br>DESC<br><br><\/p>\n","protected":false},"excerpt":{"rendered":"<p>30\/09\/2024Project Headerrightno-repeat;left top;;auto20px A team from the Centre for Research in Biomedical Engineering (CREB) of the UPC and Sant Joan de D\u00e9u has created a new<span class=\"excerpt-hellip\"> [\u2026]<\/span><\/p>\n","protected":false},"author":5,"featured_media":26250,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":[],"portfolio-types":[929,407,925,156,223],"class_list":["post-26251","portfolio","type-portfolio","status-publish","has-post-thumbnail","hentry","portfolio-types-bd-en","portfolio-types-salud","portfolio-types-sc-en","portfolio-types-tecnologias-de-la-salud-en","portfolio-types-tecnologias-de-las-tic-en"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.1 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>EpiGe-App: An algorithm for diagnosis of medulloblastoma - CIT UPC<\/title>\n<meta name=\"description\" content=\"A team from the Centre for Research in Biomedical Engineering (CREB) of the UPC and Sant Joan de D\u00e9u has created a new web application that allows faster, more accurate and less costly analysis and automated interpretation of the type of marrow-loblastoma. The tool is key to the individualised treatment of this type of malignant brain tumour that mainly affects children and young people.\" \/>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/cit.upc.edu\/en\/portfolio-item\/epige-app-an-algorithm-that-facilitates-the-diagnosis-of-medulloblastoma\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"EpiGe-App: An algorithm for diagnosis of medulloblastoma - CIT UPC\" \/>\n<meta property=\"og:description\" content=\"A team from the Centre for Research in Biomedical Engineering (CREB) of the UPC and Sant Joan de D\u00e9u has created a new web application that allows faster, more accurate and less costly analysis and automated interpretation of the type of marrow-loblastoma. 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