Genetic effects on molecular network states explain complex traits

Author:

Weith Matthias1ORCID,Großbach Jan1ORCID,Clement‐Ziza Mathieu2ORCID,Gillet Ludovic3ORCID,Rodríguez‐López María4ORCID,Marguerat Samuel4,Workman Christopher T5ORCID,Picotti Paola3,Bähler Jürg4ORCID,Aebersold Ruedi3,Beyer Andreas1ORCID

Affiliation:

1. Excellence Cluster on Cellular Stress Responses in Aging Associated Diseases University of Cologne Cologne Germany

2. Lesaffre Institute for Science and Technology, Lesaffre Marcq‐en‐Baroeul France

3. Department of Biology Institute of Molecular Systems Biology, ETH Zürich Zürich Switzerland

4. Institute of Healthy Ageing and Department of Genetics, Evolution & Environment University College London London UK

5. Department of Biotechnology and Biomedicine Technical University of Denmark Lyngby Denmark

Abstract

AbstractThe complexity of many cellular and organismal traits results from the integration of genetic and environmental factors via molecular networks. Network structure and effect propagation are best understood at the level of functional modules, but so far, no concept has been established to include the global network state. Here, we show when and how genetic perturbations lead to molecular changes that are confined to small parts of a network versus when they lead to modulation of network states. Integrating multi‐omics profiling of genetically heterogeneous budding and fission yeast strains with an array of cellular traits identified a central state transition of the yeast molecular network that is related to PKA and TOR (PT) signaling. Genetic variants affecting this PT state globally shifted the molecular network along a single‐dimensional axis, thereby modulating processes including energy and amino acid metabolism, transcription, translation, cell cycle control, and cellular stress response. We propose that genetic effects can propagate through large parts of molecular networks because of the functional requirement to centrally coordinate the activity of fundamental cellular processes.

Funder

European Commission

Publisher

Springer Science and Business Media LLC

Subject

Applied Mathematics,Computational Theory and Mathematics,General Agricultural and Biological Sciences,General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,Information Systems

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