Systems medicine of inflammaging

Systems Medicine (SM) can be defined as an extension of Systems Biology (SB) to Clinical-Epidemiological disciplines through a shifting paradigm, starting from a cellular, toward a patient centered framework. According to this vision, the three pillars of SM are Biomedical hypotheses, experimental d...

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Published inBriefings in bioinformatics Vol. 17; no. 3; pp. 527 - 540
Main Authors Castellani, Gastone C., Menichetti, Giulia, Garagnani, Paolo, Giulia Bacalini, Maria, Pirazzini, Chiara, Franceschi, Claudio, Collino, Sebastiano, Sala, Claudia, Remondini, Daniel, Giampieri, Enrico, Mosca, Ettore, Bersanelli, Matteo, Vitali, Silvia, Valle, Italo Faria do, Liò, Pietro, Milanesi, Luciano
Format Journal Article
LanguageEnglish
Published England Oxford Publishing Limited (England) 01.05.2016
Oxford University Press
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Online AccessGet full text
ISSN1467-5463
1477-4054
1477-4054
DOI10.1093/bib/bbv062

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Abstract Systems Medicine (SM) can be defined as an extension of Systems Biology (SB) to Clinical-Epidemiological disciplines through a shifting paradigm, starting from a cellular, toward a patient centered framework. According to this vision, the three pillars of SM are Biomedical hypotheses, experimental data, mainly achieved by Omics technologies and tailored computational, statistical and modeling tools. The three SM pillars are highly interconnected, and their balancing is crucial. Despite the great technological progresses producing huge amount of data (Big Data) and impressive computational facilities, the Bio-Medical hypotheses are still of primary importance. A paradigmatic example of unifying Bio-Medical theory is the concept of Inflammaging. This complex phenotype is involved in a large number of pathologies and patho-physiological processes such as aging, age-related diseases and cancer, all sharing a common inflammatory pathogenesis. This Biomedical hypothesis can be mapped into an ecological perspective capable to describe by quantitative and predictive models some experimentally observed features, such as microenvironment, niche partitioning and phenotype propagation. In this article we show how this idea can be supported by computational methods useful to successfully integrate, analyze and model large data sets, combining cross-sectional and longitudinal information on clinical, environmental and omics data of healthy subjects and patients to provide new multidimensional biomarkers capable of distinguishing between different pathological conditions, e.g. healthy versus unhealthy state, physiological versus pathological aging.
AbstractList Systems Medicine (SM) can be defined as an extension of Systems Biology (SB) to Clinical-Epidemiological disciplines through a shifting paradigm, starting from a cellular, toward a patient centered framework. According to this vision, the three pillars of SM are Biomedical hypotheses, experimental data, mainly achieved by Omics technologies and tailored computational, statistical and modeling tools. The three SM pillars are highly interconnected, and their balancing is crucial. Despite the great technological progresses producing huge amount of data (Big Data) and impressive computational facilities, the Bio-Medical hypotheses are still of primary importance. A paradigmatic example of unifying Bio-Medical theory is the concept of Inflammaging. This complex phenotype is involved in a large number of pathologies and patho-physiological processes such as aging, age-related diseases and cancer, all sharing a common inflammatory pathogenesis. This Biomedical hypothesis can be mapped into an ecological perspective capable to describe by quantitative and predictive models some experimentally observed features, such as microenvironment, niche partitioning and phenotype propagation. In this article we show how this idea can be supported by computational methods useful to successfully integrate, analyze and model large data sets, combining cross-sectional and longitudinal information on clinical, environmental and omics data of healthy subjects and patients to provide new multidimensional biomarkers capable of distinguishing between different pathological conditions, e.g. healthy versus unhealthy state, physiological versus pathological aging.
Author Franceschi, Claudio
Vitali, Silvia
Menichetti, Giulia
Liò, Pietro
Collino, Sebastiano
Bersanelli, Matteo
Valle, Italo Faria do
Mosca, Ettore
Milanesi, Luciano
Sala, Claudia
Pirazzini, Chiara
Remondini, Daniel
Giulia Bacalini, Maria
Garagnani, Paolo
Giampieri, Enrico
Castellani, Gastone C.
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Issue 3
Keywords multilayer networks
propagation
ecological model
networks
inflammation
multi-scale
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Snippet Systems Medicine (SM) can be defined as an extension of Systems Biology (SB) to Clinical-Epidemiological disciplines through a shifting paradigm, starting from...
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StartPage 527
SubjectTerms Aging
Bioinformatics
Biomarkers
Cellular
Computation
computational methodology
Cross-Sectional Studies
data collection
ecological differentiation
Humans
Hypotheses
Inflammation
Mathematical models
Medicine
Neoplasms
Partitioning
Pathogenesis
Patients
phenotype
Physiology
Pillars
Prediction models
Systems Analysis
Systems Biology
Title Systems medicine of inflammaging
URI https://www.ncbi.nlm.nih.gov/pubmed/26307062
https://www.proquest.com/docview/1793587093
https://www.proquest.com/docview/1790452541
https://www.proquest.com/docview/1808706117
https://www.proquest.com/docview/1825475008
https://www.proquest.com/docview/2253259930
https://pubmed.ncbi.nlm.nih.gov/PMC4870395
Volume 17
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