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Viability Assays for Cells in Culture
Published on: January 20, 2014
Nano-Mechanical Characterization of Ataxia Telangiectasia Cells Treated with Dexamethasone
Michele Menotta1, Sara Biagiotti2, Giulia Bartolini2
1Department of Biomolecular Sciences, University of Urbino "Carlo Bo", Urbino, Italy. michele.menotta@uniurb.it.
Abstract:
Ataxia telangiectasia is a rare genetic disease and no therapy is currently available. Glucocorticoid analogues have been shown to improve the neurological symptoms of treated patients. In the present study ataxia telangiectasia and wild type cells were used as a cellular model and treated with dexamethasone. The cells were subsequently investigated for membrane and whole cell mechanical properties by atomic force microscopy. In addition, cytoskeleton protein dynamics and nuclear shapes were assayed by fluorescence microscopy, while western blots were used to assess actin and tubulin content. At the macro level, dexamethasone directly modified the cell shape, Young's modulus and cytoskeleton protein dynamics. At the nano level, the roughness of the cell surface and the local nano-mechanical proprieties were found to be affected by Dexa. Our results show that ataxia telangiectasia and wild type cells are affected by Dexa, although there are dissimilarities in some macro-level and nano-level features between the tested cell lines. The Young's modulus of the cells appears to depend mainly on nuclear shape, with a slight contribution from the tested cytoskeleton proteins. The current study proposes that dexamethasone influences ataxia telangiectasia cell membranes contents, cell components and cell shape.
Insights
Dexamethasone impacts cell mechanics in ataxia telangiectasia models. This study reveals how the drug affects cell shape and membrane properties, offering insights for potential therapies.
Area of Science:
- Biophysics
- Cell Biology
- Genetics
Background:
- Ataxia telangiectasia (AT) is a rare genetic disorder with no current treatment.
- Glucocorticoid analogues, like dexamethasone, have shown promise in improving neurological symptoms in AT patients.
Purpose of the Study:
- To investigate the effects of dexamethasone on the mechanical properties of ataxia telangiectasia and wild-type cells.
- To analyze dexamethasone's impact on cellular and subcellular structures.
Main Methods:
- Atomic force microscopy was used to assess membrane and whole-cell mechanical properties.
- Fluorescence microscopy and western blotting were employed to study cytoskeleton dynamics, nuclear shape, and protein content (actin, tubulin).
Main Results:
- Dexamethasone altered cell shape, Young's modulus, and cytoskeleton dynamics at the macro level.
- Cell surface roughness and nano-mechanical properties were affected at the nano level.
- Differences were observed between AT and wild-type cells, with Young's modulus primarily linked to nuclear shape.
Conclusions:
- Dexamethasone influences the mechanical properties and structural components of both AT and wild-type cells.
- The study suggests dexamethasone affects cell membranes, components, and shape in AT models.
- Findings provide a basis for understanding dexamethasone's therapeutic potential in AT.

