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Biology subjects

Lopez-Menendez, H.

Publications and source records attributed to Lopez-Menendez, H..

2 recordsLinked to original sources

3D environment modulates persistent lamin distribution and the biomechanical signature of the nucleus.

The interplay between cells and their surrounding microenvironment drives multiple cellular functions, including migration, proliferation, and cell fate transitions. The nucleus is a mechanosensitive organelle that adapts external mechanical and biochemical signals provided by the environment into nuclear changes with functional consequences for cell biology. However, the morphological and functional changes of the nucleus induced by 3D extracellular signals remain unclear. Here, we demonstrated that cells derived from 3D conditions conserve changes from cell confinement and show an aberrant nuclear morphology and localization of lamin B1, even in the absence of cellular confinement. We found that actin polymerization and protein kinase C (PKC) activity mediate the abnormal distribution of lamin B1 in 3D conditions-derived cells. These cells present altered chromatin compaction, gene transcription and cellular functions such as cell viability and migration. By combining biomechanical techniques and single-nucleus analysis, we have determined that the nucleus from 3D conditions-derived cells shows a different mechanical behavior and biophysical signature than the nucleus from control cells. Together, our work substantiates novel insights into how the extracellular environment alters the cell biology by promoting permanent changes in the chromatin, morphology, lamin B1 distribution, and the mechanical response of the nucleus.

cell biology↗

Persistent confined migration confers permanent nuclear and functional changes in migrating cells.

Nuclear deformability plays a critical role in cell migration. During this process, the remodeling of internal components of the nucleus has a direct impact on DNA damage and cell behavior; however, how persistent migration promotes nuclear changes leading to phenotypical and functional consequences remains poorly understood. Here, we described that the persistent migration through physical barriers was sufficient to promote permanent modifications in migratory-altered cells. We found that lamin B1 altered its localization, concomitant with morphological and transcriptional changes. Migratory-altered cells showed alterations in cellular functions such as DNA repair and cell migration. We applied biochemical and biophysical approaches to identify that confined conditions altered the biomechanical response of the nucleus. Mechanistically, we determined that actin dynamics controlled the redistribution of lamin, and the basal levels of DNA damage in migratory-altered cells. Our observations reveal a novel role for confined cell conditions in consistent nuclear and genomic alterations that might handle the genetic instability and cellular heterogeneity in aging diseases and cancer. HighlightsO_LIPersistent confined migration promotes permanent mophological changes. C_LIO_LILamin B1 is redistribution in the nucleus of migratory altered cells. C_LIO_LIMigratory-altered cells exhibit transcriptional and functional changes related to cell migration and survival. C_LIO_LIActin polymerization controls nuclear changes induced by cell migration. C_LI

cell biology↗