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3S – Systematic, Systemic, and Systems Biology and Toxicology

A biological system is more than the sum of its parts – it accomplishes many functions via synergy. Deconstructing the system down to the molecular mechanism level necessitates the complement of reconstructing functions on all levels, i.e., in our conceptualization of biology and its perturbations,...

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Autores principales: Smirnova, Lena, Kleinstreuer, Nicole, Corvi, Raffaella, Levchenko, Andre, Fitzpatrick, Suzanne C., Hartung, Thomas
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6696989/
https://www.ncbi.nlm.nih.gov/pubmed/29677694
http://dx.doi.org/10.14573/altex.1804051
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author Smirnova, Lena
Kleinstreuer, Nicole
Corvi, Raffaella
Levchenko, Andre
Fitzpatrick, Suzanne C.
Hartung, Thomas
author_facet Smirnova, Lena
Kleinstreuer, Nicole
Corvi, Raffaella
Levchenko, Andre
Fitzpatrick, Suzanne C.
Hartung, Thomas
author_sort Smirnova, Lena
collection PubMed
description A biological system is more than the sum of its parts – it accomplishes many functions via synergy. Deconstructing the system down to the molecular mechanism level necessitates the complement of reconstructing functions on all levels, i.e., in our conceptualization of biology and its perturbations, our experimental models and computer modelling. Toxicology contains the somewhat arbitrary subclass “systemic toxicities”; however, there is no relevant toxic insult or general disease that is not systemic. At least inflammation and repair are involved that require coordinated signaling mechanisms across the organism. However, the more body components involved, the greater the challenge to recapitulate such toxicities using non-animal models. Here, the shortcomings of current systemic testing and the development of alternative approaches are summarized. We argue that we need a systematic approach to integrating existing knowledge as exemplified by systematic reviews and other evidence-based approaches. Such knowledge can guide us in modelling these systems using bioengineering and virtual computer models, i.e., via systems biology or systems toxicology approaches. Experimental multi-organon-chip and microphysiological systems (MPS) provide a more physiological view of the organism, facilitating more comprehensive coverage of systemic toxicities, i.e., the perturbation on organism level, without using substitute organisms (animals). The next challenge is to establish disease models, i.e., micropathophysiological systems (MPPS), to expand their utility to encompass biomedicine. Combining computational and experimental systems approaches and the challenges of validating them are discussed. The suggested 3S approach promises to leverage 21(st) century technology and systematic thinking to achieve a paradigm change in studying systemic effects.
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spelling pubmed-66969892019-08-16 3S – Systematic, Systemic, and Systems Biology and Toxicology Smirnova, Lena Kleinstreuer, Nicole Corvi, Raffaella Levchenko, Andre Fitzpatrick, Suzanne C. Hartung, Thomas ALTEX Article A biological system is more than the sum of its parts – it accomplishes many functions via synergy. Deconstructing the system down to the molecular mechanism level necessitates the complement of reconstructing functions on all levels, i.e., in our conceptualization of biology and its perturbations, our experimental models and computer modelling. Toxicology contains the somewhat arbitrary subclass “systemic toxicities”; however, there is no relevant toxic insult or general disease that is not systemic. At least inflammation and repair are involved that require coordinated signaling mechanisms across the organism. However, the more body components involved, the greater the challenge to recapitulate such toxicities using non-animal models. Here, the shortcomings of current systemic testing and the development of alternative approaches are summarized. We argue that we need a systematic approach to integrating existing knowledge as exemplified by systematic reviews and other evidence-based approaches. Such knowledge can guide us in modelling these systems using bioengineering and virtual computer models, i.e., via systems biology or systems toxicology approaches. Experimental multi-organon-chip and microphysiological systems (MPS) provide a more physiological view of the organism, facilitating more comprehensive coverage of systemic toxicities, i.e., the perturbation on organism level, without using substitute organisms (animals). The next challenge is to establish disease models, i.e., micropathophysiological systems (MPPS), to expand their utility to encompass biomedicine. Combining computational and experimental systems approaches and the challenges of validating them are discussed. The suggested 3S approach promises to leverage 21(st) century technology and systematic thinking to achieve a paradigm change in studying systemic effects. 2018 /pmc/articles/PMC6696989/ /pubmed/29677694 http://dx.doi.org/10.14573/altex.1804051 Text en This is an Open Access article distributed under the terms of the Creative Commons Attribution 4.0 International license (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium, provided the original work is appropriately cited.
spellingShingle Article
Smirnova, Lena
Kleinstreuer, Nicole
Corvi, Raffaella
Levchenko, Andre
Fitzpatrick, Suzanne C.
Hartung, Thomas
3S – Systematic, Systemic, and Systems Biology and Toxicology
title 3S – Systematic, Systemic, and Systems Biology and Toxicology
title_full 3S – Systematic, Systemic, and Systems Biology and Toxicology
title_fullStr 3S – Systematic, Systemic, and Systems Biology and Toxicology
title_full_unstemmed 3S – Systematic, Systemic, and Systems Biology and Toxicology
title_short 3S – Systematic, Systemic, and Systems Biology and Toxicology
title_sort 3s – systematic, systemic, and systems biology and toxicology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6696989/
https://www.ncbi.nlm.nih.gov/pubmed/29677694
http://dx.doi.org/10.14573/altex.1804051
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