Adaptive mechanochemical mechanisms of the nucleus during confined cell migration
Адаптивные механохимические механизмы ядра при миграции клетки в условиях ограниченного пространства
2026-06-24
SCID: 54.1/auqfd6j6
Discuss with AI
3D mechanochemical modelconfined cell migrationmechanosensitive calcium signalingnuclear deformationnuclear envelope rupture
Figures from the paper
Abstract (AI)
Cell migration through spatially confined microenvironments occurs in many biological processes such as embryonic development, immune surveillance, and cancer metastasis. A major bottleneck during such migration is the nucleus, which acts not only as a rigid mechanical obstacle but also as a crucial mechanosensor that modulates downstream signaling pathways. However, it remains poorly understood how nuclear deformation and mechanosensation together regulate cell migration through confined spaces. Here, we propose a three-dimensional (3D) mechanochemical model of confined nuclear translocation that integrates nuclear deformation with deformation-induced calcium signaling and subsequent regulation of cytoskeletal contractility. We show that cells undergo adaptive nuclear deformation, including nuclear envelope elongation and 3D buckling, to efficiently navigate confinements of varying sizes. There exists a biphasic relation between nuclear velocity and confinement size, arising from the interplay between nuclear deformability and mechanosensitive feedback. We demonstrate that local nuclear envelope rupture can occur under large deformation, enabling nuclear translocation through extreme confinements, as observed in prior experiments. Furthermore, we elucidate the critical roles of chromatin organization in nuclear translocation. This work reveals key mechanochemical mechanisms driving confined cell migration and provides a theoretical framework for studying nuclear dynamics across physiological and pathological contexts.
Key Findings
1
A 3D mechanochemical model was developed integrating nuclear deformation, deformation-induced calcium signaling, and regulation of cytoskeletal contractility during confined nuclear translocation.
2
Cells exhibit adaptive nuclear deformation modes, including nuclear envelope elongation and 3D buckling, to navigate confinements of varying sizes.
3
Chromatin organization plays a critical role in nuclear translocation within confined environments.
4
Local nuclear envelope rupture can occur under large deformations, enabling nuclear translocation through extreme confinements consistent with prior experiments.
5
There is a biphasic relationship between nuclear velocity and confinement size driven by interplay between nuclear deformability and mechanosensitive feedback.
Research Object
Cell nucleus undergoing deformation and translocation during confined cell migration
Research Subject
Mechanochemical mechanisms linking nuclear deformation, deformation-induced calcium signaling, regulation of cytoskeletal contractility, nuclear envelope behaviors (elongation, 3D buckling, rupture), and chromatin organization that enable adaptive nuclear translocation and determine nuclear velocity versus confinement size
Publication Details
Publication Date
2026-06-24
Journal
Publisher
ISSN
Cited by
0
Access Type
Author Information
Download PDF
Subscribe to digest