Molecular Regulators of Cellular Mechanoadaptation at Cell–Material Interfaces

Diverse essential cellular behaviors are determined by extracellular physical cues that are detected by highly orchestrated subcellular interactions with the extracellular microenvironment. To maintain the reciprocity of cellular responses and mechanical properties of the extracellular matrix, cells...

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Main Authors: Juhyeon Jo, Sama Abdi Nansa, Dong-Hwee Kim
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-12-01
Series:Frontiers in Bioengineering and Biotechnology
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fbioe.2020.608569/full
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spelling doaj-1e2368fa216641ababa9d7185c97defa2020-12-08T05:47:15ZengFrontiers Media S.A.Frontiers in Bioengineering and Biotechnology2296-41852020-12-01810.3389/fbioe.2020.608569608569Molecular Regulators of Cellular Mechanoadaptation at Cell–Material InterfacesJuhyeon JoSama Abdi NansaDong-Hwee KimDiverse essential cellular behaviors are determined by extracellular physical cues that are detected by highly orchestrated subcellular interactions with the extracellular microenvironment. To maintain the reciprocity of cellular responses and mechanical properties of the extracellular matrix, cells utilize a variety of signaling pathways that transduce biophysical stimuli to biochemical reactions. Recent advances in the micromanipulation of individual cells have shown that cellular responses to distinct physical and chemical features of the material are fundamental determinants of cellular mechanosensation and mechanotransduction. In the process of outside-in signal transduction, transmembrane protein integrins facilitate the formation of focal adhesion protein clusters that are connected to the cytoskeletal architecture and anchor the cell to the substrate. The linkers of nucleoskeleton and cytoskeleton molecular complexes, collectively termed LINC, are critical signal transducers that relay biophysical signals between the extranuclear cytoplasmic region and intranuclear nucleoplasmic region. Mechanical signals that involve cytoskeletal remodeling ultimately propagate into the nuclear envelope comprising the nuclear lamina in assistance with various nuclear membrane proteins, where nuclear mechanics play a key role in the subsequent alteration of gene expression and epigenetic modification. These intracellular mechanical signaling cues adjust cellular behaviors directly associated with mechanohomeostasis. Diverse strategies to modulate cell-material interfaces, including alteration of surface rigidity, confinement of cell adhesive region, and changes in surface topology, have been proposed to identify cellular signal transduction at the cellular and subcellular levels. In this review, we will discuss how a diversity of alterations in the physical properties of materials induce distinct cellular responses such as adhesion, migration, proliferation, differentiation, and chromosomal organization. Furthermore, the pathological relevance of misregulated cellular mechanosensation and mechanotransduction in the progression of devastating human diseases, including cardiovascular diseases, cancer, and aging, will be extensively reviewed. Understanding cellular responses to various extracellular forces is expected to provide new insights into how cellular mechanoadaptation is modulated by manipulating the mechanics of extracellular matrix and the application of these materials in clinical aspects.https://www.frontiersin.org/articles/10.3389/fbioe.2020.608569/fullcellular mechanobiologymechanoadaptationmechanotransductioncell-materials interactiondisease associated mechanoresponses
collection DOAJ
language English
format Article
sources DOAJ
author Juhyeon Jo
Sama Abdi Nansa
Dong-Hwee Kim
spellingShingle Juhyeon Jo
Sama Abdi Nansa
Dong-Hwee Kim
Molecular Regulators of Cellular Mechanoadaptation at Cell–Material Interfaces
Frontiers in Bioengineering and Biotechnology
cellular mechanobiology
mechanoadaptation
mechanotransduction
cell-materials interaction
disease associated mechanoresponses
author_facet Juhyeon Jo
Sama Abdi Nansa
Dong-Hwee Kim
author_sort Juhyeon Jo
title Molecular Regulators of Cellular Mechanoadaptation at Cell–Material Interfaces
title_short Molecular Regulators of Cellular Mechanoadaptation at Cell–Material Interfaces
title_full Molecular Regulators of Cellular Mechanoadaptation at Cell–Material Interfaces
title_fullStr Molecular Regulators of Cellular Mechanoadaptation at Cell–Material Interfaces
title_full_unstemmed Molecular Regulators of Cellular Mechanoadaptation at Cell–Material Interfaces
title_sort molecular regulators of cellular mechanoadaptation at cell–material interfaces
publisher Frontiers Media S.A.
series Frontiers in Bioengineering and Biotechnology
issn 2296-4185
publishDate 2020-12-01
description Diverse essential cellular behaviors are determined by extracellular physical cues that are detected by highly orchestrated subcellular interactions with the extracellular microenvironment. To maintain the reciprocity of cellular responses and mechanical properties of the extracellular matrix, cells utilize a variety of signaling pathways that transduce biophysical stimuli to biochemical reactions. Recent advances in the micromanipulation of individual cells have shown that cellular responses to distinct physical and chemical features of the material are fundamental determinants of cellular mechanosensation and mechanotransduction. In the process of outside-in signal transduction, transmembrane protein integrins facilitate the formation of focal adhesion protein clusters that are connected to the cytoskeletal architecture and anchor the cell to the substrate. The linkers of nucleoskeleton and cytoskeleton molecular complexes, collectively termed LINC, are critical signal transducers that relay biophysical signals between the extranuclear cytoplasmic region and intranuclear nucleoplasmic region. Mechanical signals that involve cytoskeletal remodeling ultimately propagate into the nuclear envelope comprising the nuclear lamina in assistance with various nuclear membrane proteins, where nuclear mechanics play a key role in the subsequent alteration of gene expression and epigenetic modification. These intracellular mechanical signaling cues adjust cellular behaviors directly associated with mechanohomeostasis. Diverse strategies to modulate cell-material interfaces, including alteration of surface rigidity, confinement of cell adhesive region, and changes in surface topology, have been proposed to identify cellular signal transduction at the cellular and subcellular levels. In this review, we will discuss how a diversity of alterations in the physical properties of materials induce distinct cellular responses such as adhesion, migration, proliferation, differentiation, and chromosomal organization. Furthermore, the pathological relevance of misregulated cellular mechanosensation and mechanotransduction in the progression of devastating human diseases, including cardiovascular diseases, cancer, and aging, will be extensively reviewed. Understanding cellular responses to various extracellular forces is expected to provide new insights into how cellular mechanoadaptation is modulated by manipulating the mechanics of extracellular matrix and the application of these materials in clinical aspects.
topic cellular mechanobiology
mechanoadaptation
mechanotransduction
cell-materials interaction
disease associated mechanoresponses
url https://www.frontiersin.org/articles/10.3389/fbioe.2020.608569/full
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