Network physiology reveals relations between network topology and physiological function
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Open Access
- 1 January 2012
- journal article
- research article
- Published by Springer Nature in Nature Communications
- Vol. 3 (1) , 1-9
- https://doi.org/10.1038/ncomms1705
Abstract
The human organism is an integrated network where complex physiological systems, each with its own regulatory mechanisms, continuously interact, and where failure of one system can trigger a breakdown of the entire network. Identifying and quantifying dynamical networks of diverse systems with different types of interactions is a challenge. Here we develop a framework to probe interactions among diverse systems, and we identify a physiological network. We find that each physiological state is characterized by a specific network structure, demonstrating a robust interplay between network topology and function. Across physiological states, the network undergoes topological transitions associated with fast reorganization of physiological interactions on time scales of a few minutes, indicating high network flexibility in response to perturbations. The proposed system-wide integrative approach may facilitate the development of a new field, Network Physiology.Keywords
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This publication has 41 references indexed in Scilit:
- Catastrophic cascade of failures in interdependent networksNature, 2010
- The functional connectivity of different EEG bands moves towards small-world network organization during sleepClinical Neurophysiology, 2008
- PHYLOGENETIC ANALYSIS OF THE ECOLOGY AND EVOLUTION OF MAMMALIAN SLEEPEvolution, 2008
- Experimental Evidence for Phase Synchronization Transitions in the Human Cardiorespiratory SystemPhysical Review Letters, 2007
- Complex networks: Structure and dynamicsPhysics Reports, 2006
- Engineered gene circuitsNature, 2002
- Statistical mechanics of complex networksReviews of Modern Physics, 2002
- Sleep inertiaSleep Medicine Reviews, 2000
- Emergent Properties of Networks of Biological Signaling PathwaysScience, 1999
- Multiple Organ Failure Pathophysiology and Potential Future TherapyAnnals of Surgery, 1992