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1.
Cell ; 171(6): 1397-1410.e14, 2017 Nov 30.
Artigo em Inglês | MEDLINE | ID: mdl-29107331

RESUMO

YAP is a mechanosensitive transcriptional activator with a critical role in cancer, regeneration, and organ size control. Here, we show that force applied to the nucleus directly drives YAP nuclear translocation by decreasing the mechanical restriction of nuclear pores to molecular transport. Exposure to a stiff environment leads cells to establish a mechanical connection between the nucleus and the cytoskeleton, allowing forces exerted through focal adhesions to reach the nucleus. Force transmission then leads to nuclear flattening, which stretches nuclear pores, reduces their mechanical resistance to molecular transport, and increases YAP nuclear import. The restriction to transport is further regulated by the mechanical stability of the transported protein, which determines both active nuclear transport of YAP and passive transport of small proteins. Our results unveil a mechanosensing mechanism mediated directly by nuclear pores, demonstrated for YAP but with potential general applicability in transcriptional regulation.


Assuntos
Transporte Ativo do Núcleo Celular , Proteínas Adaptadoras de Transdução de Sinal/metabolismo , Poro Nuclear/metabolismo , Fosfoproteínas/metabolismo , Animais , Fenômenos Biomecânicos , Proteínas de Ciclo Celular , Linhagem Celular Tumoral , Núcleo Celular/metabolismo , Humanos , Camundongos , Fatores de Transcrição , Transcrição Gênica , Proteínas de Sinalização YAP
2.
Nat Rev Mol Cell Biol ; 20(8): 457-473, 2019 08.
Artigo em Inglês | MEDLINE | ID: mdl-31182865

RESUMO

Integrins, and integrin-mediated adhesions, have long been recognized to provide the main molecular link attaching cells to the extracellular matrix (ECM) and to serve as bidirectional hubs transmitting signals between cells and their environment. Recent evidence has shown that their combined biochemical and mechanical properties also allow integrins to sense, respond to and interact with ECM of differing properties with exquisite specificity. Here, we review this work first by providing an overview of how integrin function is regulated from both a biochemical and a mechanical perspective, affecting integrin cell-surface availability, binding properties, activation or clustering. Then, we address how this biomechanical regulation allows integrins to respond to different ECM physicochemical properties and signals, such as rigidity, composition and spatial distribution. Finally, we discuss the importance of this sensing for major cell functions by taking cell migration and cancer as examples.


Assuntos
Movimento Celular , Matriz Extracelular/metabolismo , Integrinas/metabolismo , Proteínas de Neoplasias/metabolismo , Neoplasias/metabolismo , Microambiente Tumoral , Animais , Adesão Celular , Membrana Celular/metabolismo , Membrana Celular/patologia , Humanos , Neoplasias/patologia
3.
EMBO J ; 41(18): e110596, 2022 09 15.
Artigo em Inglês | MEDLINE | ID: mdl-35938214

RESUMO

Cells are constantly exposed to various chemical and physical stimuli. While much has been learned about the biochemical factors that regulate secretory trafficking from the endoplasmic reticulum (ER), much less is known about whether and how this trafficking is subject to regulation by mechanical signals. Here, we show that subjecting cells to mechanical strain both induces the formation of ER exit sites (ERES) and accelerates ER-to-Golgi trafficking. We found that cells with impaired ERES function were less capable of expanding their surface area when placed under mechanical stress and were more prone to develop plasma membrane defects when subjected to stretching. Thus, coupling of ERES function to mechanotransduction appears to confer resistance of cells to mechanical stress. Furthermore, we show that the coupling of mechanotransduction to ERES formation was mediated via a previously unappreciated ER-localized pool of the small GTPase Rac1. Mechanistically, we show that Rac1 interacts with the small GTPase Sar1 to drive budding of COPII carriers and stimulates ER-to-Golgi transport. This interaction therefore represents an unprecedented link between mechanical strain and export from the ER.


Assuntos
Mecanotransdução Celular , Proteínas Monoméricas de Ligação ao GTP , Transporte Biológico , Vesículas Revestidas pelo Complexo de Proteína do Envoltório/metabolismo , Retículo Endoplasmático/metabolismo , Complexo de Golgi/metabolismo , Proteínas Monoméricas de Ligação ao GTP/metabolismo , Transporte Proteico/fisiologia
4.
Nat Mater ; 22(11): 1409-1420, 2023 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-37709930

RESUMO

The mechanical properties of the extracellular matrix dictate tissue behaviour. In epithelial tissues, laminin is a very abundant extracellular matrix component and a key supporting element. Here we show that laminin hinders the mechanoresponses of breast epithelial cells by shielding the nucleus from mechanical deformation. Coating substrates with laminin-111-unlike fibronectin or collagen I-impairs cell response to substrate rigidity and YAP nuclear localization. Blocking the laminin-specific integrin ß4 increases nuclear YAP ratios in a rigidity-dependent manner without affecting the cell forces or focal adhesions. By combining mechanical perturbations and mathematical modelling, we show that ß4 integrins establish a mechanical linkage between the substrate and keratin cytoskeleton, which stiffens the network and shields the nucleus from actomyosin-mediated mechanical deformation. In turn, this affects the nuclear YAP mechanoresponses, chromatin methylation and cell invasion in three dimensions. Our results demonstrate a mechanism by which tissues can regulate their sensitivity to mechanical signals.


Assuntos
Queratinas , Laminina , Laminina/metabolismo , Adesão Celular , Matriz Extracelular/metabolismo , Fibronectinas/metabolismo , Citoesqueleto/metabolismo , Integrinas/metabolismo
5.
Nature ; 552(7684): 219-224, 2017 12 14.
Artigo em Inglês | MEDLINE | ID: mdl-29211717

RESUMO

Cells can sense the density and distribution of extracellular matrix (ECM) molecules by means of individual integrin proteins and larger, integrin-containing adhesion complexes within the cell membrane. This spatial sensing drives cellular activity in a variety of normal and pathological contexts. Previous studies of cells on rigid glass surfaces have shown that spatial sensing of ECM ligands takes place at the nanometre scale, with integrin clustering and subsequent formation of focal adhesions impaired when single integrin-ligand bonds are separated by more than a few tens of nanometres. It has thus been suggested that a crosslinking 'adaptor' protein of this size might connect integrins to the actin cytoskeleton, acting as a molecular ruler that senses ligand spacing directly. Here, we develop gels whose rigidity and nanometre-scale distribution of ECM ligands can be controlled and altered. We find that increasing the spacing between ligands promotes the growth of focal adhesions on low-rigidity substrates, but leads to adhesion collapse on more-rigid substrates. Furthermore, disordering the ligand distribution drastically increases adhesion growth, but reduces the rigidity threshold for adhesion collapse. The growth and collapse of focal adhesions are mirrored by, respectively, the nuclear or cytosolic localization of the transcriptional regulator protein YAP. We explain these findings not through direct sensing of ligand spacing, but by using an expanded computational molecular-clutch model, in which individual integrin-ECM bonds-the molecular clutches-respond to force loading by recruiting extra integrins, up to a maximum value. This generates more clutches, redistributing the overall force among them, and reducing the force loading per clutch. At high rigidity and high ligand spacing, maximum recruitment is reached, preventing further force redistribution and leading to adhesion collapse. Measurements of cellular traction forces and actin flow speeds support our model. Our results provide a general framework for how cells sense spatial and physical information at the nanoscale, precisely tuning the range of conditions at which they form adhesions and activate transcriptional regulation.


Assuntos
Membrana Celular/metabolismo , Matriz Extracelular/metabolismo , Adesões Focais , Integrinas/metabolismo , Ligantes , Modelos Biológicos , Actinas/metabolismo , Proteínas Adaptadoras de Transdução de Sinal/metabolismo , Animais , Proteínas de Ciclo Celular , Membrana Celular/química , Matriz Extracelular/química , Regulação da Expressão Gênica , Humanos , Camundongos , Miosinas/metabolismo , Proteínas Nucleares/metabolismo , Fosfoproteínas/metabolismo , Maleabilidade , Fatores de Transcrição/metabolismo , Transcrição Gênica , Proteínas de Sinalização YAP
6.
Soft Matter ; 17(12): 3367-3379, 2021 Mar 28.
Artigo em Inglês | MEDLINE | ID: mdl-33644786

RESUMO

Cell membranes interact with a myriad of curvature-active proteins that control membrane morphology and are responsible for mechanosensation and mechanotransduction. Some of these proteins, such as those containing BAR domains, are curved and elongated, and hence may adopt different states of orientational order, from isotropic to maximize entropy to nematic as a result of crowding or to adapt to the curvature of the underlying membrane. Here, extending the classical work of Onsager for ordering in hard particle systems and that of [E. S. Nascimento et al., Phys. Rev. E, 2017, 96, 022704], we develop a mean-field density functional theory to predict the orientational order and evaluate the free energy of ensembles of elongated and curved objects on curved membranes. This theory depends on the microscopic properties of the particles and explains how a density-dependent isotropic-to-nematic transition is modified by anisotropic curvature. We also examine the coexistence of isotropic and nematic phases. This theory predicts how ordering depends on geometry but we assume here that the geometry is fixed. It also lays the ground to understand the interplay between membrane reshaping by BAR proteins and molecular order, examined by [Le Roux et al., submitted, 2020].


Assuntos
Mecanotransdução Celular , Anisotropia , Membrana Celular , Membranas
7.
Proc Natl Acad Sci U S A ; 115(6): 1192-1197, 2018 02 06.
Artigo em Inglês | MEDLINE | ID: mdl-29358406

RESUMO

Cell response to matrix rigidity has been explained by the mechanical properties of the actin-talin-integrin-fibronectin clutch. Here the molecular clutch model is extended to account for cell interactions with purely viscous surfaces (i.e., without an elastic component). Supported lipid bilayers present an idealized and controllable system through which to study this concept. Using lipids of different diffusion coefficients, the mobility (i.e., surface viscosity) of the presented ligands (in this case RGD) was altered by an order of magnitude. Cell size and cytoskeletal organization were proportional to viscosity. Furthermore, there was a higher number of focal adhesions and a higher phosphorylation of FAK on less-mobile (more-viscous) surfaces. Actin retrograde flow, an indicator of the force exerted on surfaces, was also seen to be faster on more mobile surfaces. This has consequential effects on downstream molecules; the mechanosensitive YAP protein localized to the nucleus more on less-mobile (more-viscous) surfaces and differentiation of myoblast cells was enhanced on higher viscosity. This behavior was explained within the framework of the molecular clutch model, with lower viscosity leading to a low force loading rate, preventing the exposure of mechanosensitive proteins, and with a higher viscosity causing a higher force loading rate exposing these sites, activating downstream pathways. Consequently, the understanding of how viscosity (regardless of matrix stiffness) influences cell response adds a further tool to engineer materials that control cell behavior.


Assuntos
Proteínas Adaptadoras de Transdução de Sinal/metabolismo , Quinase 1 de Adesão Focal/metabolismo , Bicamadas Lipídicas/química , Mioblastos/citologia , Fosfoproteínas/metabolismo , Actinas/metabolismo , Animais , Proteínas de Ciclo Celular , Linhagem Celular , Forma Celular , Matriz Extracelular/química , Matriz Extracelular/metabolismo , Fibronectinas/química , Adesões Focais , Bicamadas Lipídicas/metabolismo , Camundongos , Microscopia de Força Atômica , Mioblastos/metabolismo , Oligopeptídeos/química , Oligopeptídeos/metabolismo , Fosfatidilcolinas/química , Propriedades de Superfície , Viscosidade , Proteínas de Sinalização YAP
8.
Nat Mater ; 18(9): 1015-1023, 2019 09.
Artigo em Inglês | MEDLINE | ID: mdl-31160803

RESUMO

Epithelial repair and regeneration are driven by collective cell migration and division. Both cellular functions involve tightly controlled mechanical events, but how physical forces regulate cell division in migrating epithelia is largely unknown. Here we show that cells dividing in the migrating zebrafish epicardium exert large cell-extracellular matrix (ECM) forces during cytokinesis. These forces point towards the division axis and are exerted through focal adhesions that connect the cytokinetic ring to the underlying ECM. When subjected to high loading rates, these cytokinetic focal adhesions prevent closure of the contractile ring, leading to multi-nucleation through cytokinetic failure. By combining a clutch model with experiments on substrates of different rigidity, ECM composition and ligand density, we show that failed cytokinesis is triggered by adhesion reinforcement downstream of increased myosin density. The mechanical interaction between the cytokinetic ring and the ECM thus provides a mechanism for the regulation of cell division and polyploidy that may have implications in regeneration and cancer.


Assuntos
Divisão Celular , Citocinese , Pericárdio/citologia , Poliploidia , Peixe-Zebra , Animais , Matriz Extracelular
9.
Nat Mater ; 18(4): 397-405, 2019 04.
Artigo em Inglês | MEDLINE | ID: mdl-30778227

RESUMO

The generation of organoids is one of the biggest scientific advances in regenerative medicine. Here, by lengthening the time that human pluripotent stem cells (hPSCs) were exposed to a three-dimensional microenvironment, and by applying defined renal inductive signals, we generated kidney organoids that transcriptomically matched second-trimester human fetal kidneys. We validated these results using ex vivo and in vitro assays that model renal development. Furthermore, we developed a transplantation method that utilizes the chick chorioallantoic membrane. This approach created a soft in vivo microenvironment that promoted the growth and differentiation of implanted kidney organoids, as well as providing a vascular component. The stiffness of the in ovo chorioallantoic membrane microenvironment was recapitulated in vitro by fabricating compliant hydrogels. These biomaterials promoted the efficient generation of renal vesicles and nephron structures, demonstrating that a soft environment accelerates the differentiation of hPSC-derived kidney organoids.


Assuntos
Espaço Extracelular/metabolismo , Rim/citologia , Organoides/citologia , Células-Tronco Pluripotentes/citologia , Técnicas de Cultura de Tecidos/métodos , Diferenciação Celular , Microambiente Celular , Feminino , Humanos , Cinética , Células-Tronco Pluripotentes/metabolismo , Gravidez , Terceiro Trimestre da Gravidez , Transcriptoma
10.
Nat Mater ; 21(9): 995-996, 2022 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-36002724
11.
Nat Mater ; 16(10): 1029-1037, 2017 10.
Artigo em Inglês | MEDLINE | ID: mdl-28892054

RESUMO

For an organism to develop and maintain homeostasis, cell types with distinct functions must often be separated by physical boundaries. The formation and maintenance of such boundaries are commonly attributed to mechanisms restricted to the cells lining the boundary. Here we show that, besides these local subcellular mechanisms, the formation and maintenance of tissue boundaries involves long-lived, long-ranged mechanical events. Following contact between two epithelial monolayers expressing, respectively, EphB2 and its ligand ephrinB1, both monolayers exhibit oscillatory patterns of traction forces and intercellular stresses that tend to pull cell-matrix adhesions away from the boundary. With time, monolayers jam, accompanied by the emergence of deformation waves that propagate away from the boundary. This phenomenon is not specific to EphB2/ephrinB1 repulsion but is also present during the formation of boundaries with an inert interface and during fusion of homotypic epithelial layers. Our findings thus unveil a global physical mechanism that sustains tissue separation independently of the biochemical and mechanical features of the local tissue boundary.


Assuntos
Relógios Biológicos , Efrina-B1/metabolismo , Células Epiteliais/metabolismo , Matriz Extracelular/metabolismo , Receptor EphB2/metabolismo , Estresse Fisiológico , Animais , Cães , Efrina-B1/genética , Células Epiteliais/citologia , Epitélio/metabolismo , Matriz Extracelular/genética , Células Madin Darby de Rim Canino , Receptor EphB2/genética
12.
Proc Natl Acad Sci U S A ; 110(15): E1361-70, 2013 Apr 09.
Artigo em Inglês | MEDLINE | ID: mdl-23515331

RESUMO

Focal adhesions are mechanosensitive elements that enable mechanical communication between cells and the extracellular matrix. Here, we demonstrate a major mechanosensitive pathway in which α-actinin triggers adhesion maturation by linking integrins to actin in nascent adhesions. We show that depletion of the focal adhesion protein α-actinin enhances force generation in initial adhesions on fibronectin, but impairs mechanotransduction in a subsequent step, preventing adhesion maturation. Expression of an α-actinin fragment containing the integrin binding domain, however, dramatically reduces force generation in depleted cells. This behavior can be explained by a competition between talin (which mediates initial adhesion and force generation) and α-actinin for integrin binding. Indeed, we show in an in vitro assay that talin and α-actinin compete for binding to ß3 integrins, but cooperate in binding to ß1 integrins. Consistently, we find opposite effects of α-actinin depletion and expression of mutants on substrates that bind ß3 integrins (fibronectin and vitronectin) versus substrates that only bind ß1 integrins (collagen). We thus suggest that nascent adhesions composed of ß3 integrins are initially linked to the actin cytoskeleton by talin, and then α-actinin competes with talin to bind ß3 integrins. Force transmitted through α-actinin then triggers adhesion maturation. Once adhesions have matured, α-actinin recruitment correlates with force generation, suggesting that α-actinin is the main link transmitting force between integrins and the cytoskeleton in mature adhesions. Such a multistep process enables cells to adjust forces on matrices, unveiling a role of α-actinin that is different from its well-studied function as an actin cross-linker.


Assuntos
Actinina/metabolismo , Matriz Extracelular/metabolismo , Integrina beta1/metabolismo , Integrina beta3/metabolismo , Animais , Adesão Celular , Fibroblastos/metabolismo , Fibronectinas/metabolismo , Camundongos , Pinças Ópticas , Estresse Mecânico , Talina/metabolismo
13.
Nat Mater ; 13(6): 631-7, 2014 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-24793358

RESUMO

Tissue rigidity regulates processes in development, cancer and wound healing. However, how cells detect rigidity, and thereby modulate their behaviour, remains unknown. Here, we show that sensing and adaptation to matrix rigidity in breast myoepithelial cells is determined by the bond dynamics of different integrin types. Cell binding to fibronectin through either α5ß1 integrins (constitutively expressed) or αvß6 integrins (selectively expressed in cancer and development) adapts force generation, actin flow and integrin recruitment to rigidities associated with healthy or malignant tissue, respectively. In vitro experiments and theoretical modelling further demonstrate that this behaviour is explained by the different binding and unbinding rates of both integrin types to fibronectin. Moreover, rigidity sensing through differences in integrin bond dynamics applies both when integrins bind separately and when they compete for binding to fibronectin.


Assuntos
Antígenos de Neoplasias/metabolismo , Fibronectinas/metabolismo , Integrinas/metabolismo , Mecanotransdução Celular/fisiologia , Modelos Biológicos , Receptores de Vitronectina/metabolismo , Antígenos de Neoplasias/genética , Células Cultivadas , Fibronectinas/genética , Humanos , Integrinas/genética , Receptores de Vitronectina/genética
15.
Proc Natl Acad Sci U S A ; 109(14): 5328-33, 2012 Apr 03.
Artigo em Inglês | MEDLINE | ID: mdl-22431603

RESUMO

Cell growth and differentiation are critically dependent upon matrix rigidity, yet many aspects of the cellular rigidity-sensing mechanism are not understood. Here, we analyze matrix forces after initial cell-matrix contact, when early rigidity-sensing events occur, using a series of elastomeric pillar arrays with dimensions extending to the submicron scale (2, 1, and 0.5 µm in diameter covering a range of stiffnesses). We observe that the cellular response is fundamentally different on micron-scale and submicron pillars. On 2-µm diameter pillars, adhesions form at the pillar periphery, forces are directed toward the center of the cell, and a constant maximum force is applied independent of stiffness. On 0.5-µm diameter pillars, adhesions form on the pillar tops, and local contractions between neighboring pillars are observed with a maximum displacement of ∼60 nm, independent of stiffness. Because mutants in rigidity sensing show no detectable displacement on 0.5-µm diameter pillars, there is a correlation between local contractions to 60 nm and rigidity sensing. Localization of myosin between submicron pillars demonstrates that submicron scale myosin filaments can cause these local contractions. Finally, submicron pillars can capture many details of cellular force generation that are missed on larger pillars and more closely mimic continuous surfaces.


Assuntos
Diferenciação Celular , Divisão Celular , Animais , Células Cultivadas , Imunofluorescência , Camundongos , Microscopia Eletrônica de Varredura , Propriedades de Superfície
16.
J Cell Sci ; 125(Pt 13): 3025-38, 2012 Jul 01.
Artigo em Inglês | MEDLINE | ID: mdl-22797926

RESUMO

From the extracellular matrix to the cytoskeleton, a network of molecular links connects cells to their environment. Molecules in this network transmit and detect mechanical forces, which subsequently determine cell behavior and fate. Here, we reconstruct the mechanical pathway followed by these forces. From matrix proteins to actin through integrins and adaptor proteins, we review how forces affect the lifetime of bonds and stretch or alter the conformation of proteins, and how these mechanical changes are converted into biochemical signals in mechanotransduction events. We evaluate which of the proteins in the network can participate in mechanotransduction and which are simply responsible for transmitting forces in a dynamic network. Besides their individual properties, we also analyze how the mechanical responses of a protein are determined by their serial connections from the matrix to actin, their parallel connections in integrin clusters and by the rate at which force is applied to them. All these define mechanical molecular pathways in cells, which are emerging as key regulators of cell function alongside better studied biochemical pathways.


Assuntos
Actinas/química , Integrinas/química , Mecanotransdução Celular , Animais , Fenômenos Biomecânicos , Adesão Celular , Movimento Celular , Citoesqueleto/química , Matriz Extracelular/química , Adesões Focais/química , Humanos , Plaquinas/química , Dobramento de Proteína , Processamento de Proteína Pós-Traducional , Estresse Mecânico
17.
Proc Natl Acad Sci U S A ; 108(35): 14467-72, 2011 Aug 30.
Artigo em Inglês | MEDLINE | ID: mdl-21808040

RESUMO

Cell migration and spreading involve the coordination of membrane trafficking, actomyosin contraction, and modifications to plasma membrane tension and area. The biochemical or biophysical basis for this coordination is however unknown. In this study, we show that during cell spreading, lamellipodia protrusion flattens plasma membrane folds and blebs and, once the plasma membrane area is depleted, there is a temporary increase in membrane tension by over twofold that is followed by activation of exocytosis and myosin contraction. Further, an artificial increase in plasma membrane tension stopped lamellipodia protrusion and activated an exocytotic burst. Subsequent decrease in tension restored spreading with activation of contraction. Conversely, blebbistatin inhibition of actomyosin contraction resulted in an even greater increase in plasma membrane tension and exocytosis activation. This spatiotemporal synchronization indicates that membrane tension is the signal that coordinates membrane trafficking, actomyosin contraction, and plasma membrane area change. We suggest that cells use plasma membrane tension as a global physical parameter to control cell motility.


Assuntos
Actomiosina/fisiologia , Membrana Celular/metabolismo , Movimento Celular , Exocitose , Actinas/química , Animais , Membrana Celular/química , Células Cultivadas , Camundongos , Estresse Mecânico
18.
Nat Commun ; 15(1): 3363, 2024 Apr 18.
Artigo em Inglês | MEDLINE | ID: mdl-38637494

RESUMO

Colorectal cancer (CRC) tumors are composed of heterogeneous and plastic cell populations, including a pool of cancer stem cells that express LGR5. Whether these distinct cell populations display different mechanical properties, and how these properties might contribute to metastasis is poorly understood. Using CRC patient derived organoids (PDOs), we find that compared to LGR5- cells, LGR5+ cancer stem cells are stiffer, adhere better to the extracellular matrix (ECM), move slower both as single cells and clusters, display higher nuclear YAP, show a higher survival rate in response to mechanical confinement, and form larger transendothelial gaps. These differences are largely explained by the downregulation of the membrane to cortex attachment proteins Ezrin/Radixin/Moesin (ERMs) in the LGR5+ cells. By analyzing single cell RNA-sequencing (scRNA-seq) expression patterns from a patient cohort, we show that this downregulation is a robust signature of colorectal tumors. Our results show that LGR5- cells display a mechanically dynamic phenotype suitable for dissemination from the primary tumor whereas LGR5+ cells display a mechanically stable and resilient phenotype suitable for extravasation and metastatic growth.


Assuntos
Neoplasias Colorretais , Receptores Acoplados a Proteínas G , Humanos , Receptores Acoplados a Proteínas G/genética , Receptores Acoplados a Proteínas G/metabolismo , Neoplasias Colorretais/patologia , Células-Tronco Neoplásicas/metabolismo , Fenótipo
19.
Curr Opin Cell Biol ; 84: 102229, 2023 10.
Artigo em Inglês | MEDLINE | ID: mdl-37633090

RESUMO

The cellular microenvironment is highly heterogeneous and dynamic. Therefore, cells must be equipped with molecular tools to adapt and respond to constantly fluctuating inputs. One such input is mechanical force, which activates signalling and regulates cell behaviour in the process of mechanotransduction. Whereas the mechanisms activating mechanotransduction are well studied, the reversibility of this process, whereby cells disassemble and reverse force-activated signalling pathways upon cessation of mechanical stimulation is far less understood. In this review we will outline some of the key experimental techniques to investigate the reversibility of mechanical signalling, and key discoveries arising from them.


Assuntos
Microambiente Celular , Mecanotransdução Celular , Transdução de Sinais
20.
J Cell Biol ; 222(9)2023 09 04.
Artigo em Inglês | MEDLINE | ID: mdl-37378613

RESUMO

Autonomous circadian clocks exist in nearly every mammalian cell type. These cellular clocks are subjected to a multilayered regulation sensitive to the mechanochemical cell microenvironment. Whereas the biochemical signaling that controls the cellular circadian clock is increasingly well understood, mechanisms underlying regulation by mechanical cues are largely unknown. Here we show that the fibroblast circadian clock is mechanically regulated through YAP/TAZ nuclear levels. We use high-throughput analysis of single-cell circadian rhythms and apply controlled mechanical, biochemical, and genetic perturbations to study the expression of the clock gene Rev-erbα. We observe that Rev-erbα circadian oscillations are disrupted with YAP/TAZ nuclear translocation. By targeted mutations and overexpression of YAP/TAZ, we show that this mechanobiological regulation, which also impacts core components of the clock such as Bmal1 and Cry1, depends on the binding of YAP/TAZ to the transcriptional effector TEAD. This mechanism could explain the impairment of circadian rhythms observed when YAP/TAZ activity is upregulated, as in cancer and aging.


Assuntos
Relógios Circadianos , Fatores de Transcrição de Domínio TEA , Proteínas com Motivo de Ligação a PDZ com Coativador Transcricional , Proteínas de Sinalização YAP , Animais , Relógios Circadianos/genética , Ritmo Circadiano/genética , Mamíferos , Transdução de Sinais , Proteínas de Sinalização YAP/genética , Fatores de Transcrição de Domínio TEA/genética , Proteínas com Motivo de Ligação a PDZ com Coativador Transcricional/genética
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