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Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival

The expanding targeted therapy landscape requires combinatorial biomarkers for patient stratification and treatment selection. This requires simultaneous exploration of multiple genes of relevant networks to account for the complexity of mechanisms that govern drug sensitivity and predict clinical o...

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Autores principales: Lazar, Vladimir, Magidi, Shai, Girard, Nicolas, Savignoni, Alexia, Martini, Jean-François, Massimini, Giorgio, Bresson, Catherine, Berger, Raanan, Onn, Amir, Raynaud, Jacques, Wunder, Fanny, Berindan-Neagoe, Ioana, Sekacheva, Marina, Braña, Irene, Tabernero, Josep, Felip, Enriqueta, Porgador, Angel, Kleinman, Claudia, Batist, Gerald, Solomon, Benjamin, Tsimberidou, Apostolia Maria, Soria, Jean-Charles, Rubin, Eitan, Kurzrock, Razelle, Schilsky, Richard L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8080819/
https://www.ncbi.nlm.nih.gov/pubmed/33911192
http://dx.doi.org/10.1038/s41698-021-00171-6
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author Lazar, Vladimir
Magidi, Shai
Girard, Nicolas
Savignoni, Alexia
Martini, Jean-François
Massimini, Giorgio
Bresson, Catherine
Berger, Raanan
Onn, Amir
Raynaud, Jacques
Wunder, Fanny
Berindan-Neagoe, Ioana
Sekacheva, Marina
Braña, Irene
Tabernero, Josep
Felip, Enriqueta
Porgador, Angel
Kleinman, Claudia
Batist, Gerald
Solomon, Benjamin
Tsimberidou, Apostolia Maria
Soria, Jean-Charles
Rubin, Eitan
Kurzrock, Razelle
Schilsky, Richard L.
author_facet Lazar, Vladimir
Magidi, Shai
Girard, Nicolas
Savignoni, Alexia
Martini, Jean-François
Massimini, Giorgio
Bresson, Catherine
Berger, Raanan
Onn, Amir
Raynaud, Jacques
Wunder, Fanny
Berindan-Neagoe, Ioana
Sekacheva, Marina
Braña, Irene
Tabernero, Josep
Felip, Enriqueta
Porgador, Angel
Kleinman, Claudia
Batist, Gerald
Solomon, Benjamin
Tsimberidou, Apostolia Maria
Soria, Jean-Charles
Rubin, Eitan
Kurzrock, Razelle
Schilsky, Richard L.
author_sort Lazar, Vladimir
collection PubMed
description The expanding targeted therapy landscape requires combinatorial biomarkers for patient stratification and treatment selection. This requires simultaneous exploration of multiple genes of relevant networks to account for the complexity of mechanisms that govern drug sensitivity and predict clinical outcomes. We present the algorithm, Digital Display Precision Predictor (DDPP), aiming to identify transcriptomic predictors of treatment outcome. For example, 17 and 13 key genes were derived from the literature by their association with MTOR and angiogenesis pathways, respectively, and their expression in tumor versus normal tissues was associated with the progression-free survival (PFS) of patients treated with everolimus or axitinib (respectively) using DDPP. A specific eight-gene set best correlated with PFS in six patients treated with everolimus: AKT2, TSC1, FKB-12, TSC2, RPTOR, RHEB, PIK3CA, and PIK3CB (r = 0.99, p = 5.67E−05). A two-gene set best correlated with PFS in five patients treated with axitinib: KIT and KITLG (r = 0.99, p = 4.68E−04). Leave-one-out experiments demonstrated significant concordance between observed and DDPP-predicted PFS (r = 0.9, p = 0.015) for patients treated with everolimus. Notwithstanding the small cohort and pending further prospective validation, the prototype of DDPP offers the potential to transform patients’ treatment selection with a tumor- and treatment-agnostic predictor of outcomes (duration of PFS).
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spelling pubmed-80808192021-05-05 Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival Lazar, Vladimir Magidi, Shai Girard, Nicolas Savignoni, Alexia Martini, Jean-François Massimini, Giorgio Bresson, Catherine Berger, Raanan Onn, Amir Raynaud, Jacques Wunder, Fanny Berindan-Neagoe, Ioana Sekacheva, Marina Braña, Irene Tabernero, Josep Felip, Enriqueta Porgador, Angel Kleinman, Claudia Batist, Gerald Solomon, Benjamin Tsimberidou, Apostolia Maria Soria, Jean-Charles Rubin, Eitan Kurzrock, Razelle Schilsky, Richard L. NPJ Precis Oncol Article The expanding targeted therapy landscape requires combinatorial biomarkers for patient stratification and treatment selection. This requires simultaneous exploration of multiple genes of relevant networks to account for the complexity of mechanisms that govern drug sensitivity and predict clinical outcomes. We present the algorithm, Digital Display Precision Predictor (DDPP), aiming to identify transcriptomic predictors of treatment outcome. For example, 17 and 13 key genes were derived from the literature by their association with MTOR and angiogenesis pathways, respectively, and their expression in tumor versus normal tissues was associated with the progression-free survival (PFS) of patients treated with everolimus or axitinib (respectively) using DDPP. A specific eight-gene set best correlated with PFS in six patients treated with everolimus: AKT2, TSC1, FKB-12, TSC2, RPTOR, RHEB, PIK3CA, and PIK3CB (r = 0.99, p = 5.67E−05). A two-gene set best correlated with PFS in five patients treated with axitinib: KIT and KITLG (r = 0.99, p = 4.68E−04). Leave-one-out experiments demonstrated significant concordance between observed and DDPP-predicted PFS (r = 0.9, p = 0.015) for patients treated with everolimus. Notwithstanding the small cohort and pending further prospective validation, the prototype of DDPP offers the potential to transform patients’ treatment selection with a tumor- and treatment-agnostic predictor of outcomes (duration of PFS). Nature Publishing Group UK 2021-04-28 /pmc/articles/PMC8080819/ /pubmed/33911192 http://dx.doi.org/10.1038/s41698-021-00171-6 Text en © The Author(s) 2021 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Lazar, Vladimir
Magidi, Shai
Girard, Nicolas
Savignoni, Alexia
Martini, Jean-François
Massimini, Giorgio
Bresson, Catherine
Berger, Raanan
Onn, Amir
Raynaud, Jacques
Wunder, Fanny
Berindan-Neagoe, Ioana
Sekacheva, Marina
Braña, Irene
Tabernero, Josep
Felip, Enriqueta
Porgador, Angel
Kleinman, Claudia
Batist, Gerald
Solomon, Benjamin
Tsimberidou, Apostolia Maria
Soria, Jean-Charles
Rubin, Eitan
Kurzrock, Razelle
Schilsky, Richard L.
Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival
title Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival
title_full Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival
title_fullStr Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival
title_full_unstemmed Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival
title_short Digital Display Precision Predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival
title_sort digital display precision predictor: the prototype of a global biomarker model to guide treatments with targeted therapy and predict progression-free survival
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8080819/
https://www.ncbi.nlm.nih.gov/pubmed/33911192
http://dx.doi.org/10.1038/s41698-021-00171-6
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