Literature DB >> 28819695

Theoretical modeling of mechanical homeostasis of a mammalian cell under gravity-directed vector.

Lüwen Zhou1,2, Chen Zhang1,2, Fan Zhang1,2, Shouqin Lü1,2, Shujin Sun1,2, Dongyuan Lü1,2, Mian Long3,4.   

Abstract

Translocation of dense nucleus along gravity vector initiates mechanical remodeling of a eukaryotic cell. In our previous experiments, we quantified the impact of gravity vector on cell remodeling by placing an MC3T3-E1 cell onto upward (U)-, downward (D)-, or edge-on (E)- orientated substrate. Our experimental data demonstrate that orientation dependence of nucleus longitudinal translocation is positively correlated with cytoskeletal (CSK) remodeling of their expressions and structures and also is associated with rearrangement of focal adhesion complex (FAC). However, the underlying mechanism how CSK network and FACs are reorganized in a mammalian cell remains unclear. In this paper, we developed a theoretical biomechanical model to integrate the mechanosensing of nucleus translocation with CSK remodeling and FAC reorganization induced by a gravity vector. The cell was simplified as a nucleated tensegrity structure in the model. The cell and CSK filaments were considered to be symmetrical. All elements of CSK filaments and cytomembrane that support the nucleus were simplified as springs. FACs were simplified as an adhesion cluster of parallel bonds with shared force. Our model proposed that gravity vector-directed translocation of the cell nucleus is mechanically balanced by CSK remodeling and FAC reorganization induced by a gravitational force. Under gravity, dense nucleus tends to translocate and exert additional compressive or stretching force on the cytoskeleton. Finally, changes of the tension force acting on talin by microfilament alter the size of FACs. Results from our model are in qualitative agreement with those from experiments.

Entities:  

Keywords:  Cytoskeletal remodeling; FAC reorganization; Gravity directed; Mechanosensing; Nucleus translocation

Mesh:

Substances:

Year:  2017        PMID: 28819695     DOI: 10.1007/s10237-017-0954-y

Source DB:  PubMed          Journal:  Biomech Model Mechanobiol        ISSN: 1617-7940


  6 in total

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2.  Microgravity and space radiation inhibit autophagy in human capillary endothelial cells, through either opposite or synergistic effects on specific molecular pathways.

Authors:  Ivana Barravecchia; Chiara De Cesari; Mattia Forcato; Francesca Scebba; Olga V Pyankova; Joanna M Bridger; Helen A Foster; Giovanni Signore; Andrea Borghini; Mariagrazia Andreassi; Massimiliano Andreazzoli; Silvio Bicciato; Mario Enrico Pè; Debora Angeloni
Journal:  Cell Mol Life Sci       Date:  2021-12-22       Impact factor: 9.261

3.  Differential Contributions of Actin and Myosin to the Physical Phenotypes and Invasion of Pancreatic Cancer Cells.

Authors:  Angelyn V Nguyen; Brittany Trompetto; Xing Haw Marvin Tan; Michael B Scott; Kenneth Hsueh-Heng Hu; Eric Deeds; Manish J Butte; Pei Yu Chiou; Amy C Rowat
Journal:  Cell Mol Bioeng       Date:  2019-10-31       Impact factor: 2.321

4.  Flow-enhanced priming of hESCs through H2B acetylation and chromatin decondensation.

Authors:  Jiawen Wang; Yi Wu; Xiao Zhang; Fan Zhang; Dongyuan Lü; Bing Shangguan; Yuxin Gao; Mian Long
Journal:  Stem Cell Res Ther       Date:  2019-11-27       Impact factor: 6.832

5.  Microgravity-Induced Alterations of Inflammation-Related Mechanotransduction in Endothelial Cells on Board SJ-10 Satellite.

Authors:  Ning Li; Chengzhi Wang; Shujin Sun; Chen Zhang; Dongyuan Lü; Qin Chen; Mian Long
Journal:  Front Physiol       Date:  2018-07-31       Impact factor: 4.566

6.  Cells´ Flow and Immune Cell Priming under alternating g-forces in Parabolic Flight.

Authors:  D Moser; S J Sun; N Li; K Biere; M Hoerl; S Matzel; M Feuerecker; J-I Buchheim; C Strewe; C S Thiel; Y X Gao; C Z Wang; O Ullrich; M Long; A Choukèr
Journal:  Sci Rep       Date:  2019-08-02       Impact factor: 4.379

  6 in total

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