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Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer

Background and rationale. The therapeutic interventions against lung cancer are currently based on a fully personalized approach to the disease with considerable improvement of patients’ outcome. Alongside continuous scientific progresses and research investments, massive technologic efforts, innova...

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Autores principales: Stella, Giulia Maria, Lettieri, Sara, Piloni, Davide, Ferrarotti, Ilaria, Perrotta, Fabio, Corsico, Angelo Guido, Bortolotto, Chandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10385174/
https://www.ncbi.nlm.nih.gov/pubmed/37513953
http://dx.doi.org/10.3390/ph16071042
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author Stella, Giulia Maria
Lettieri, Sara
Piloni, Davide
Ferrarotti, Ilaria
Perrotta, Fabio
Corsico, Angelo Guido
Bortolotto, Chandra
author_facet Stella, Giulia Maria
Lettieri, Sara
Piloni, Davide
Ferrarotti, Ilaria
Perrotta, Fabio
Corsico, Angelo Guido
Bortolotto, Chandra
author_sort Stella, Giulia Maria
collection PubMed
description Background and rationale. The therapeutic interventions against lung cancer are currently based on a fully personalized approach to the disease with considerable improvement of patients’ outcome. Alongside continuous scientific progresses and research investments, massive technologic efforts, innovative challenges, and consolidated achievements together with research investments are at the bases of the engineering and manufacturing revolution that allows a significant gain in clinical setting. Aim and methods. The scope of this review is thus to focus, rather than on the biologic traits, on the analysis of the precision sensors and novel generation materials, as semiconductors, which are below the clinical development of personalized diagnosis and treatment. In this perspective, a careful revision and analysis of the state of the art of the literature and experimental knowledge is presented. Results. Novel materials are being used in the development of personalized diagnosis and treatment for lung cancer. Among them, semiconductors are used to analyze volatile cancer compounds and allow early disease diagnosis. Moreover, they can be used to generate MEMS which have found an application in advanced imaging techniques as well as in drug delivery devices. Conclusions. Overall, these issues represent critical issues only partially known and generally underestimated by the clinical community. These novel micro-technology-based biosensing devices, based on the use of molecules at atomic concentrations, are crucial for clinical innovation since they have allowed the recent significant advances in cancer biology deciphering as well as in disease detection and therapy. There is an urgent need to create a stronger dialogue between technologists, basic researchers, and clinicians to address all scientific and manufacturing efforts towards a real improvement in patients’ outcome. Here, great attention is focused on their application against lung cancer, from their exploitations in translational research to their application in diagnosis and treatment development, to ensure early diagnosis and better clinical outcomes.
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spelling pubmed-103851742023-07-30 Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer Stella, Giulia Maria Lettieri, Sara Piloni, Davide Ferrarotti, Ilaria Perrotta, Fabio Corsico, Angelo Guido Bortolotto, Chandra Pharmaceuticals (Basel) Review Background and rationale. The therapeutic interventions against lung cancer are currently based on a fully personalized approach to the disease with considerable improvement of patients’ outcome. Alongside continuous scientific progresses and research investments, massive technologic efforts, innovative challenges, and consolidated achievements together with research investments are at the bases of the engineering and manufacturing revolution that allows a significant gain in clinical setting. Aim and methods. The scope of this review is thus to focus, rather than on the biologic traits, on the analysis of the precision sensors and novel generation materials, as semiconductors, which are below the clinical development of personalized diagnosis and treatment. In this perspective, a careful revision and analysis of the state of the art of the literature and experimental knowledge is presented. Results. Novel materials are being used in the development of personalized diagnosis and treatment for lung cancer. Among them, semiconductors are used to analyze volatile cancer compounds and allow early disease diagnosis. Moreover, they can be used to generate MEMS which have found an application in advanced imaging techniques as well as in drug delivery devices. Conclusions. Overall, these issues represent critical issues only partially known and generally underestimated by the clinical community. These novel micro-technology-based biosensing devices, based on the use of molecules at atomic concentrations, are crucial for clinical innovation since they have allowed the recent significant advances in cancer biology deciphering as well as in disease detection and therapy. There is an urgent need to create a stronger dialogue between technologists, basic researchers, and clinicians to address all scientific and manufacturing efforts towards a real improvement in patients’ outcome. Here, great attention is focused on their application against lung cancer, from their exploitations in translational research to their application in diagnosis and treatment development, to ensure early diagnosis and better clinical outcomes. MDPI 2023-07-22 /pmc/articles/PMC10385174/ /pubmed/37513953 http://dx.doi.org/10.3390/ph16071042 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Stella, Giulia Maria
Lettieri, Sara
Piloni, Davide
Ferrarotti, Ilaria
Perrotta, Fabio
Corsico, Angelo Guido
Bortolotto, Chandra
Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer
title Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer
title_full Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer
title_fullStr Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer
title_full_unstemmed Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer
title_short Smart Sensors and Microtechnologies in the Precision Medicine Approach against Lung Cancer
title_sort smart sensors and microtechnologies in the precision medicine approach against lung cancer
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10385174/
https://www.ncbi.nlm.nih.gov/pubmed/37513953
http://dx.doi.org/10.3390/ph16071042
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