Redesigning COVID 19 care with network medicine and machine learning: A review

Emerging evidence regarding COVID 19 highlights the role of individual resistance and immune function in both susceptibility to infection as well as severity of disease. Multiple factors influence the response of the human host when exposed to viral pathogens. Influencing an individual’s susceptibil...

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Autores:
Tipo de recurso:
Article of investigation
Fecha de publicación:
2020
Institución:
Universidad de Bogotá Jorge Tadeo Lozano
Repositorio:
Expeditio: repositorio UTadeo
Idioma:
eng
OAI Identifier:
oai:expeditiorepositorio.utadeo.edu.co:20.500.12010/14252
Acceso en línea:
https://doi.org/10.1016/j.mayocpiqo.2020.09.008
http://hdl.handle.net/20.500.12010/14252
Palabra clave:
COVID 19
Medicine and Machine Learning
Síndrome respiratorio agudo grave
COVID-19
SARS-CoV-2
Coronavirus
Rights
License
Abierto (Texto Completo)
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dc.title.spa.fl_str_mv Redesigning COVID 19 care with network medicine and machine learning: A review
title Redesigning COVID 19 care with network medicine and machine learning: A review
spellingShingle Redesigning COVID 19 care with network medicine and machine learning: A review
COVID 19
Medicine and Machine Learning
Síndrome respiratorio agudo grave
COVID-19
SARS-CoV-2
Coronavirus
title_short Redesigning COVID 19 care with network medicine and machine learning: A review
title_full Redesigning COVID 19 care with network medicine and machine learning: A review
title_fullStr Redesigning COVID 19 care with network medicine and machine learning: A review
title_full_unstemmed Redesigning COVID 19 care with network medicine and machine learning: A review
title_sort Redesigning COVID 19 care with network medicine and machine learning: A review
dc.subject.spa.fl_str_mv COVID 19
Medicine and Machine Learning
topic COVID 19
Medicine and Machine Learning
Síndrome respiratorio agudo grave
COVID-19
SARS-CoV-2
Coronavirus
dc.subject.lemb.spa.fl_str_mv Síndrome respiratorio agudo grave
COVID-19
SARS-CoV-2
Coronavirus
description Emerging evidence regarding COVID 19 highlights the role of individual resistance and immune function in both susceptibility to infection as well as severity of disease. Multiple factors influence the response of the human host when exposed to viral pathogens. Influencing an individual’s susceptibility to infection include such factors as nutritional status, physical and psychosocial stressors, obesity, protein calorie malnutrition, emotional resilience, single nucleotide polymorphisms (SNPs), environmental toxins—including air pollution and first- and second-hand tobacco smoke, sleep habits, sedentary lifestyle, drug-induced nutritional deficiencies and drug-induced immunomodulatory effects, availability of nutrient dense food and empty calories. This review examines the network of interacting co-factors that influence the host-pathogen relationship, which in turn determine one’s susceptibility to viral infections like COVID 19. It then evaluates the role of machine learning, including predictive analytics and random forest modeling, to help clinicians assess patients’ risk of developing active infection and devise a comprehensive approach to prevention and treatment.
publishDate 2020
dc.date.accessioned.none.fl_str_mv 2020-10-06T16:40:09Z
dc.date.available.none.fl_str_mv 2020-10-06T16:40:09Z
dc.date.created.none.fl_str_mv 2020
dc.type.local.spa.fl_str_mv Artículo
dc.type.coar.spa.fl_str_mv http://purl.org/coar/resource_type/c_2df8fbb1
format http://purl.org/coar/resource_type/c_2df8fbb1
dc.identifier.issn.spa.fl_str_mv 2542-4548
dc.identifier.other.spa.fl_str_mv https://doi.org/10.1016/j.mayocpiqo.2020.09.008
dc.identifier.uri.none.fl_str_mv http://hdl.handle.net/20.500.12010/14252
dc.identifier.doi.spa.fl_str_mv https://doi.org/10.1016/j.mayocpiqo.2020.09.008
identifier_str_mv 2542-4548
url https://doi.org/10.1016/j.mayocpiqo.2020.09.008
http://hdl.handle.net/20.500.12010/14252
dc.language.iso.spa.fl_str_mv eng
language eng
dc.rights.coar.fl_str_mv http://purl.org/coar/access_right/c_abf2
dc.rights.local.spa.fl_str_mv Abierto (Texto Completo)
rights_invalid_str_mv Abierto (Texto Completo)
http://purl.org/coar/access_right/c_abf2
dc.format.extent.spa.fl_str_mv 30 páginas
dc.format.mimetype.spa.fl_str_mv application/pdf
dc.publisher.spa.fl_str_mv Mayo Clinic Proceedings: Innovations, Quality & Outcomes
dc.source.spa.fl_str_mv reponame:Expeditio Repositorio Institucional UJTL
instname:Universidad de Bogotá Jorge Tadeo Lozano
instname_str Universidad de Bogotá Jorge Tadeo Lozano
institution Universidad de Bogotá Jorge Tadeo Lozano
reponame_str Expeditio Repositorio Institucional UJTL
collection Expeditio Repositorio Institucional UJTL
bitstream.url.fl_str_mv https://expeditiorepositorio.utadeo.edu.co/bitstream/20.500.12010/14252/2/license.txt
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spelling 2020-10-06T16:40:09Z2020-10-06T16:40:09Z20202542-4548https://doi.org/10.1016/j.mayocpiqo.2020.09.008http://hdl.handle.net/20.500.12010/14252https://doi.org/10.1016/j.mayocpiqo.2020.09.008Emerging evidence regarding COVID 19 highlights the role of individual resistance and immune function in both susceptibility to infection as well as severity of disease. Multiple factors influence the response of the human host when exposed to viral pathogens. Influencing an individual’s susceptibility to infection include such factors as nutritional status, physical and psychosocial stressors, obesity, protein calorie malnutrition, emotional resilience, single nucleotide polymorphisms (SNPs), environmental toxins—including air pollution and first- and second-hand tobacco smoke, sleep habits, sedentary lifestyle, drug-induced nutritional deficiencies and drug-induced immunomodulatory effects, availability of nutrient dense food and empty calories. This review examines the network of interacting co-factors that influence the host-pathogen relationship, which in turn determine one’s susceptibility to viral infections like COVID 19. It then evaluates the role of machine learning, including predictive analytics and random forest modeling, to help clinicians assess patients’ risk of developing active infection and devise a comprehensive approach to prevention and treatment.30 páginasapplication/pdfengMayo Clinic Proceedings: Innovations, Quality & Outcomesreponame:Expeditio Repositorio Institucional UJTLinstname:Universidad de Bogotá Jorge Tadeo LozanoCOVID 19Medicine and Machine LearningSíndrome respiratorio agudo graveCOVID-19SARS-CoV-2CoronavirusRedesigning COVID 19 care with network medicine and machine learning: A reviewArtículohttp://purl.org/coar/resource_type/c_2df8fbb1Abierto (Texto Completo)http://purl.org/coar/access_right/c_abf2Halamka, JohnCerrato, PaulPerlman, AdamLICENSElicense.txtlicense.txttext/plain; charset=utf-82938https://expeditiorepositorio.utadeo.edu.co/bitstream/20.500.12010/14252/2/license.txtabceeb1c943c50d3343516f9dbfc110fMD52open accessTHUMBNAILRedesigning-COVID-19-Care-with-Network-Me_2020_Mayo-Clinic-Proceedings--Inno.pdf.jpgRedesigning-COVID-19-Care-with-Network-Me_2020_Mayo-Clinic-Proceedings--Inno.pdf.jpgIM Thumbnailimage/jpeg12283https://expeditiorepositorio.utadeo.edu.co/bitstream/20.500.12010/14252/3/Redesigning-COVID-19-Care-with-Network-Me_2020_Mayo-Clinic-Proceedings--Inno.pdf.jpg5179380455227c14d9aa407c4557cde4MD53open access20.500.12010/14252oai:expeditiorepositorio.utadeo.edu.co:20.500.12010/142522021-03-17 18:51:17.707metadata only accessRepositorio Institucional - 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