H2020Individual fellowship2017–2019

MiMEtiC · Molecular mechanisms of the mechanical interaction between the cell nucleus and the actin cytoskeleton

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2017-03-01 → 2019-02-28
EU contribution
€171,461
Participants
2
Scheme
MSCA-IF-EF-ST

Lines connect the coordinator with its partners.

Results in brief

Molecular mechanisms of the mechanical interaction between the cell nucleus and the actin cytoskeleton

Cell survival and tissue integrity depend on the ability to maintain structural and functional integrity even under conditions of stress. Cells are constantly exposed to dynamic changes in their physical microenvironment, and these mechanical forces is a source of physiologically and clinically relevant stress. Mechanical stress protection operates during cell differentiation, adhesion and migration, and is of particular importance for maintaining tissues such as skeletal muscle, heart, lung, vasculature, and skin. Yet, underlying molecular mechanisms have not been comprehensively studied. However, what is already obvious is that impairment mechanical stress protection and/or mechanoadaptation processes gives rise to diverse diseases, including myopathies, heart and kidney failure, leukocyte adhesion deficiencies, progeroid diseases and cancer. Thus, there is a critical research need for detailed molecular understanding of mechanical stress responses in order to design diagnostic tools and therapeutic interventions. Epithelial tissues such as the skin epidermis are critical load-bearing elements of the body. They undergo large-scale, force-driven deformations during morphogenesis and in the adult organism. Strikingly, in contrast to cancer cells where mechanical deformations have been shown to induce nuclear rupture and DNA damage, such effects have not been observed in untransformed epithelial cells. On the contrary, epithelial cells have been shown to be capable of undergoing extreme deformation without damage, and to withstand long-term mechanical strain without signs of genomic damage or loss of viability. This project aimed to understand how nuclei respond to mechanical stress and how the genome is protected under extreme nuclear deformations

Data: CORDIS, © European Union

Project objective

The cytoskeleton plays a pivotal role in growth, development, and disease by sensing mechanical stress and mediating structural remodeling and cell functional responses. The cytoskeleton, which is linked directly to the nuclear lamina and thereby to chromatin, has recently been proposed to impact on chromatin remodeling and transcriptional activity. However, the mechanisms and biological consequences of force-dependent chromatin remodeling have remained elusive. Within this context main goals for my project are 1) to characterize nuclear rheology and stress transmission over the nuclear-cytoskeletal linkage, 2) to identify molecular mechanisms of force transmission into the nucleus and 3) to develop a numerical model of cell contractility and remodeling to systematically and quantitatively investigate the stress transmission to the nucleus to test my hypothesis that global force application to the nucleus can control nuclear mechanics, chromatin structure and transcriptional activity in a predictable, biologically meaningful way.This interdisciplinary project, integrating both cell/molecular biology of genome regulation and bioengineering, will advance our understanding of cellular mechanosensing and mechanotransduction, and carries therefore a strong transformative potential for discovering new strategies to mitigate many diseases where the interplay of mechanics and biochemistry are critical.

Original text from CORDIS.

Participants

  • HELSINGIN YLIOPISTO · HelsinkiCoordinatorFinland
  • MAX-PLANCK-GESELLSCHAFT ZUR FORDERUNG DER WISSENSCHAFTEN EV · MUNCHENGermany

Links

Data: CORDIS, © European Union