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Atomic Force Microscopy micro-rheology reveals large structural inhomogeneities in single cell-nuclei
Michael Lherbette1, Ália Dos Santos2, Yukti Hari-Gupta2
1Institute of Biological Chemistry, Biophysics and Bioengineering, School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh, EH14 4AS, UK.
Scientific Reports
|August 16, 2017
Summary
Cell nuclei mechanics are key to gene regulation. Researchers found nuclei are softer and more viscous at the periphery, potentially regulating transcription via mechano-transduction.
Area of Science:
- Cell biology
- Biophysics
- Mechanobiology
Background:
- Cellular processes like growth, differentiation, and migration involve nuclear shape changes due to mechanical forces.
- Mechanical signals influence gene expression, but the mechanism of force transduction through the nucleus is not fully understood.
Purpose of the Study:
- To investigate how mechanical forces are transmitted through the nucleus.
- To quantitatively measure the mechanical properties (compliance) of individual mammalian cell nuclei.
Main Methods:
- Applied oscillatory mechanical strains (1-700 Hz) to individual nuclei from multiple mammalian cell lines.
- Compressed nuclei between two plates to measure their quantitative and qualitative mechanical responses.
Main Results:
- Nuclear compliance varied significantly (over one order of magnitude) and scaled with nuclear size.
- A consistent qualitative behavior was observed across cell lines: nuclei exhibited a softer, more viscous response at their periphery.
- This peripheral softness suggests reduced chromatin crosslinking in this region.
Conclusions:
- The nucleus's mechanical properties, particularly its peripheral softness, may play a crucial role in regulating gene transcription.
- This finding highlights the importance of mechano-transduction in the dynamic and active regions of the nucleus.
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