Chromatin and Cytoskeletal Tethering Determine Nuclear Morphology in Progerin-Expressing Cells

MC Lionetti and S Bonfanti and MR Fumagalli and Z Budrikis and F Font- Clos and G Costantini and O Chepizhko and S Zapperi and CAM La Porta, BIOPHYSICAL JOURNAL, 118, 2319-2332 (2020).

DOI: 10.1016/j.bpj.2020.04.001

The nuclear morphology of eukaryotic cells is determined by the interplay between the lamina forming the nuclear skeleton, the chromatin inside the nucleus, and the coupling with the cytoskeleton. Nuclear alterations are often associated with pathological conditions as in Hutchinson-Gilford progeria syndrome, in which a mutation in the lamin A gene yields an altered form of the protein, named progerin, and an aberrant nuclear shape. Here, we introduce an inducible cellular model of Hutchinson-Gilford progeria syndrome in HeLa cells in which increased progerin expression leads to alterations in the coupling of the lamin shell with cytoskeletal or chromatin tethers as well as with polycomb group proteins. Furthermore, our experiments show that progerin expression leads to enhanced nuclear shape fluctuations in response to cytoskeletal activity. To interpret the experimental results, we introduce a computational model of the cell nucleus that explicitly includes chromatin fibers, the nuclear shell, and coupling with the cytoskeleton. The model allows us to investigate how the geometrical organization of the chromatinlamin tether affects nuclear morphology and shape fluctuations. In sum, our findings highlight the crucial role played by laminchromatin and lamin-cytoskeletal alterations in determining nuclear shape morphology and in affecting cellular functions and gene regulation.

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