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1.
Cell ; 187(11): 2652-2656, 2024 May 23.
Artículo en Inglés | MEDLINE | ID: mdl-38788688

RESUMEN

Mechanobiology-the field studying how cells produce, sense, and respond to mechanical forces-is pivotal in the analysis of how cells and tissues take shape in development and disease. As we venture into the future of this field, pioneers share their insights, shaping the trajectory of future research and applications.


Asunto(s)
Biofisica , Animales , Humanos , Fenómenos Biomecánicos , Forma de la Célula , Mecanotransducción Celular
2.
Cell ; 187(13): 3445-3459.e15, 2024 Jun 20.
Artículo en Inglés | MEDLINE | ID: mdl-38838668

RESUMEN

Understanding cellular force transmission dynamics is crucial in mechanobiology. We developed the DNA-based ForceChrono probe to measure force magnitude, duration, and loading rates at the single-molecule level within living cells. The ForceChrono probe circumvents the limitations of in vitro single-molecule force spectroscopy by enabling direct measurements within the dynamic cellular environment. Our findings reveal integrin force loading rates of 0.5-2 pN/s and durations ranging from tens of seconds in nascent adhesions to approximately 100 s in mature focal adhesions. The probe's robust and reversible design allows for continuous monitoring of these dynamic changes as cells undergo morphological transformations. Additionally, by analyzing how mutations, deletions, or pharmacological interventions affect these parameters, we can deduce the functional roles of specific proteins or domains in cellular mechanotransduction. The ForceChrono probe provides detailed insights into the dynamics of mechanical forces, advancing our understanding of cellular mechanics and the molecular mechanisms of mechanotransduction.


Asunto(s)
Mecanotransducción Celular , Imagen Individual de Molécula , Animales , Humanos , Ratones , Fenómenos Biomecánicos , Adhesión Celular , ADN/química , ADN/metabolismo , Adhesiones Focales/metabolismo , Integrinas/metabolismo , Microscopía de Fuerza Atómica/métodos , Imagen Individual de Molécula/métodos , Línea Celular , Supervivencia Celular , Emparejamiento Base , Calibración
3.
Cell ; 186(7): 1478-1492.e15, 2023 03 30.
Artículo en Inglés | MEDLINE | ID: mdl-36870331

RESUMEN

Lungs undergo mechanical strain during breathing, but how these biophysical forces affect cell fate and tissue homeostasis are unclear. We show that biophysical forces through normal respiratory motion actively maintain alveolar type 1 (AT1) cell identity and restrict these cells from reprogramming into AT2 cells in the adult lung. AT1 cell fate is maintained at homeostasis by Cdc42- and Ptk2-mediated actin remodeling and cytoskeletal strain, and inactivation of these pathways causes a rapid reprogramming into the AT2 cell fate. This plasticity induces chromatin reorganization and changes in nuclear lamina-chromatin interactions, which can discriminate AT1 and AT2 cell identity. Unloading the biophysical forces of breathing movements leads to AT1-AT2 cell reprogramming, revealing that normal respiration is essential to maintain alveolar epithelial cell fate. These data demonstrate the integral function of mechanotransduction in maintaining lung cell fate and identifies the AT1 cell as an important mechanosensor in the alveolar niche.


Asunto(s)
Células Epiteliales Alveolares , Mecanotransducción Celular , Células Epiteliales Alveolares/metabolismo , Células Cultivadas , Pulmón , Diferenciación Celular/fisiología , Respiración
4.
Cell ; 186(16): 3386-3399.e15, 2023 08 03.
Artículo en Inglés | MEDLINE | ID: mdl-37541196

RESUMEN

The gastrointestinal tract is in a state of constant motion. These movements are tightly regulated by the presence of food and help digestion by mechanically breaking down and propelling gut content. Mechanical sensing in the gut is thought to be essential for regulating motility; however, the identity of the neuronal populations, the molecules involved, and the functional consequences of this sensation are unknown. Here, we show that humans lacking PIEZO2 exhibit impaired bowel sensation and motility. Piezo2 in mouse dorsal root, but not nodose ganglia is required to sense gut content, and this activity slows down food transit rates in the stomach, small intestine, and colon. Indeed, Piezo2 is directly required to detect colon distension in vivo. Our study unveils the mechanosensory mechanisms that regulate the transit of luminal contents throughout the gut, which is a critical process to ensure proper digestion, nutrient absorption, and waste removal.


Asunto(s)
Tránsito Gastrointestinal , Canales Iónicos , Mecanotransducción Celular , Animales , Humanos , Ratones , Digestión , Canales Iónicos/metabolismo , Neuronas/metabolismo
5.
Annu Rev Biochem ; 91: 33-59, 2022 06 21.
Artículo en Inglés | MEDLINE | ID: mdl-35287472

RESUMEN

Single-molecule magnetic tweezers deliver magnetic force and torque to single target molecules, permitting the study of dynamic changes in biomolecular structures and their interactions. Because the magnetic tweezer setups can generate magnetic fields that vary slowly over tens of millimeters-far larger than the nanometer scale of the single molecule events being observed-this technique can maintain essentially constant force levels during biochemical experiments while generating a biologically meaningful force on the order of 1-100 pN. When using bead-tether constructs to pull on single molecules, smaller magnetic beads and shorter submicrometer tethers improve dynamic response times and measurement precision. In addition, employing high-speed cameras, stronger light sources, and a graphics programming unit permits true high-resolution single-molecule magnetic tweezers that can track nanometer changes in target molecules on a millisecond or even submillisecond time scale. The unique force-clamping capacity of the magnetic tweezer technique provides a way to conduct measurements under near-equilibrium conditions and directly map the energy landscapes underlying various molecular phenomena. High-resolution single-molecule magnetic tweezerscan thus be used to monitor crucial conformational changes in single-protein molecules, including those involved in mechanotransduction and protein folding.


Asunto(s)
ADN , Mecanotransducción Celular , ADN/química , Fenómenos Magnéticos
6.
Cell ; 185(19): 3638-3638.e1, 2022 09 15.
Artículo en Inglés | MEDLINE | ID: mdl-36113430

RESUMEN

Cells are continuously exposed to tissue-specific extrinsic forces that are counteracted by cell-intrinsic force generation through the actomyosin cytoskeleton and alterations in the material properties of various cellular components, including the nucleus. Forces impact nuclei both directly through inducing deformation, which is sensed by various mechanosensitive components of the nucleus, as well as indirectly through the actomyosin cytoskeleton and mechanosensitive pathways activated in the cytoplasm. To view this SnapShot, open or download the PDF.


Asunto(s)
Actomiosina , Mecanotransducción Celular , Citoesqueleto de Actina/metabolismo , Actomiosina/metabolismo , Núcleo Celular/metabolismo , Citoesqueleto/metabolismo , Mecanotransducción Celular/fisiología
7.
Annu Rev Biochem ; 90: 507-534, 2021 06 20.
Artículo en Inglés | MEDLINE | ID: mdl-34153212

RESUMEN

Mechanosensation is the ability to detect dynamic mechanical stimuli (e.g., pressure, stretch, and shear stress) and is essential for a wide variety of processes, including our sense of touch on the skin. How touch is detected and transduced at the molecular level has proved to be one of the great mysteries of sensory biology. A major breakthrough occurred in 2010 with the discovery of a family of mechanically gated ion channels that were coined PIEZOs. The last 10 years of investigation have provided a wealth of information about the functional roles and mechanisms of these molecules. Here we focus on PIEZO2, one of the two PIEZO proteins found in humans and other mammals. We review how work at the molecular, cellular, and systems levels over the past decade has transformed our understanding of touch and led to unexpected insights into other types of mechanosensation beyond the skin.


Asunto(s)
Descubrimiento de Drogas/métodos , Canales Iónicos/química , Canales Iónicos/fisiología , Mecanotransducción Celular/fisiología , Animales , Barorreflejo/fisiología , Humanos , Canales Iónicos/genética , Canales Iónicos/metabolismo , Ratones , Propiocepción/fisiología , Células Madre/fisiología , Tacto
8.
Cell ; 184(4): 969-982.e13, 2021 02 18.
Artículo en Inglés | MEDLINE | ID: mdl-33571427

RESUMEN

Iron overload causes progressive organ damage and is associated with arthritis, liver damage, and heart failure. Elevated iron levels are present in 1%-5% of individuals; however, iron overload is undermonitored and underdiagnosed. Genetic factors affecting iron homeostasis are emerging. Individuals with hereditary xerocytosis, a rare disorder with gain-of-function (GOF) mutations in mechanosensitive PIEZO1 ion channel, develop age-onset iron overload. We show that constitutive or macrophage expression of a GOF Piezo1 allele in mice disrupts levels of the iron regulator hepcidin and causes iron overload. We further show that PIEZO1 is a key regulator of macrophage phagocytic activity and subsequent erythrocyte turnover. Strikingly, we find that E756del, a mild GOF PIEZO1 allele present in one-third of individuals of African descent, is strongly associated with increased plasma iron. Our study links macrophage mechanotransduction to iron metabolism and identifies a genetic risk factor for increased iron levels in African Americans.


Asunto(s)
Canales Iónicos/metabolismo , Hierro/metabolismo , Negro o Afroamericano , Envejecimiento/metabolismo , Alelos , Animales , Estudios de Cohortes , Recuento de Eritrocitos , Eritropoyesis , Mutación con Ganancia de Función/genética , Hepatocitos/metabolismo , Hepcidinas/sangre , Hepcidinas/metabolismo , Humanos , Hierro/sangre , Sobrecarga de Hierro/metabolismo , Macrófagos/metabolismo , Mecanotransducción Celular , Ratones Endogámicos C57BL , Fagocitosis , Fenotipo , Estrés Fisiológico
9.
Nat Rev Mol Cell Biol ; 24(7): 495-516, 2023 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-36849594

RESUMEN

Mechanical properties of extracellular matrices (ECMs) regulate essential cell behaviours, including differentiation, migration and proliferation, through mechanotransduction. Studies of cell-ECM mechanotransduction have largely focused on cells cultured in 2D, on top of elastic substrates with a range of stiffnesses. However, cells often interact with ECMs in vivo in a 3D context, and cell-ECM interactions and mechanisms of mechanotransduction in 3D can differ from those in 2D. The ECM exhibits various structural features as well as complex mechanical properties. In 3D, mechanical confinement by the surrounding ECM restricts changes in cell volume and cell shape but allows cells to generate force on the matrix by extending protrusions and regulating cell volume as well as through actomyosin-based contractility. Furthermore, cell-matrix interactions are dynamic owing to matrix remodelling. Accordingly, ECM stiffness, viscoelasticity and degradability often play a critical role in regulating cell behaviours in 3D. Mechanisms of 3D mechanotransduction include traditional integrin-mediated pathways that sense mechanical properties and more recently described mechanosensitive ion channel-mediated pathways that sense 3D confinement, with both converging on the nucleus for downstream control of transcription and phenotype. Mechanotransduction is involved in tissues from development to cancer and is being increasingly harnessed towards mechanotherapy. Here we discuss recent progress in our understanding of cell-ECM mechanotransduction in 3D.


Asunto(s)
Matriz Extracelular , Mecanotransducción Celular , Matriz Extracelular/metabolismo , Citoesqueleto de Actina , Diferenciación Celular , Integrinas/metabolismo
10.
Cell ; 181(4): 800-817.e22, 2020 05 14.
Artículo en Inglés | MEDLINE | ID: mdl-32302590

RESUMEN

Tissue homeostasis requires maintenance of functional integrity under stress. A central source of stress is mechanical force that acts on cells, their nuclei, and chromatin, but how the genome is protected against mechanical stress is unclear. We show that mechanical stretch deforms the nucleus, which cells initially counteract via a calcium-dependent nuclear softening driven by loss of H3K9me3-marked heterochromatin. The resulting changes in chromatin rheology and architecture are required to insulate genetic material from mechanical force. Failure to mount this nuclear mechanoresponse results in DNA damage. Persistent, high-amplitude stretch induces supracellular alignment of tissue to redistribute mechanical energy before it reaches the nucleus. This tissue-scale mechanoadaptation functions through a separate pathway mediated by cell-cell contacts and allows cells/tissues to switch off nuclear mechanotransduction to restore initial chromatin state. Our work identifies an unconventional role of chromatin in altering its own mechanical state to maintain genome integrity in response to deformation.


Asunto(s)
Núcleo Celular/fisiología , Heterocromatina/fisiología , Mecanotransducción Celular/fisiología , Animales , Línea Celular , Núcleo Celular/metabolismo , Cromatina/metabolismo , Cromatina/fisiología , Heterocromatina/metabolismo , Humanos , Masculino , Mecanorreceptores/fisiología , Células Madre Mesenquimatosas , Ratones , Estrés Mecánico
11.
Cell ; 180(5): 956-967.e17, 2020 03 05.
Artículo en Inglés | MEDLINE | ID: mdl-32084332

RESUMEN

Mechanotransduction, the conversion of mechanical stimuli into electrical signals, is a fundamental process underlying essential physiological functions such as touch and pain sensing, hearing, and proprioception. Although the mechanisms for some of these functions have been identified, the molecules essential to the sense of pain have remained elusive. Here we report identification of TACAN (Tmem120A), an ion channel involved in sensing mechanical pain. TACAN is expressed in a subset of nociceptors, and its heterologous expression increases mechanically evoked currents in cell lines. Purification and reconstitution of TACAN in synthetic lipids generates a functional ion channel. Finally, a nociceptor-specific inducible knockout of TACAN decreases the mechanosensitivity of nociceptors and reduces behavioral responses to painful mechanical stimuli but not to thermal or touch stimuli. We propose that TACAN is an ion channel that contributes to sensing mechanical pain.


Asunto(s)
Canales Iónicos/fisiología , Mecanotransducción Celular/genética , Nociceptores/metabolismo , Dolor/genética , Tacto/genética , Animales , Regulación de la Expresión Génica/genética , Humanos , Canales Iónicos/genética , Lípidos/genética , Ratones , Ratones Noqueados , Dolor/fisiopatología , Técnicas de Placa-Clamp , Estrés Mecánico , Tacto/fisiología
12.
Cell ; 182(3): 545-562.e23, 2020 08 06.
Artículo en Inglés | MEDLINE | ID: mdl-32621799

RESUMEN

Scar tissue size following myocardial infarction is an independent predictor of cardiovascular outcomes, yet little is known about factors regulating scar size. We demonstrate that collagen V, a minor constituent of heart scars, regulates the size of heart scars after ischemic injury. Depletion of collagen V led to a paradoxical increase in post-infarction scar size with worsening of heart function. A systems genetics approach across 100 in-bred strains of mice demonstrated that collagen V is a critical driver of postinjury heart function. We show that collagen V deficiency alters the mechanical properties of scar tissue, and altered reciprocal feedback between matrix and cells induces expression of mechanosensitive integrins that drive fibroblast activation and increase scar size. Cilengitide, an inhibitor of specific integrins, rescues the phenotype of increased post-injury scarring in collagen-V-deficient mice. These observations demonstrate that collagen V regulates scar size in an integrin-dependent manner.


Asunto(s)
Cicatriz/metabolismo , Colágeno Tipo V/deficiencia , Colágeno Tipo V/metabolismo , Lesiones Cardíacas/metabolismo , Contracción Miocárdica/genética , Miofibroblastos/metabolismo , Animales , Cicatriz/genética , Cicatriz/fisiopatología , Colágeno Tipo I/genética , Colágeno Tipo I/metabolismo , Cadena alfa 1 del Colágeno Tipo I , Colágeno Tipo III/genética , Colágeno Tipo III/metabolismo , Colágeno Tipo V/genética , Matriz Extracelular/genética , Matriz Extracelular/metabolismo , Femenino , Fibrosis/genética , Fibrosis/metabolismo , Regulación de la Expresión Génica/genética , Integrinas/antagonistas & inhibidores , Integrinas/genética , Integrinas/metabolismo , Isoproterenol/farmacología , Masculino , Mecanotransducción Celular/genética , Ratones , Ratones Endogámicos C57BL , Ratones Noqueados , Microscopía de Fuerza Atómica/instrumentación , Microscopía Electrónica de Transmisión , Contracción Miocárdica/efectos de los fármacos , Miofibroblastos/citología , Miofibroblastos/patología , Miofibroblastos/ultraestructura , Análisis de Componente Principal , Proteómica , RNA-Seq , Análisis de la Célula Individual
13.
Annu Rev Cell Dev Biol ; 37: 233-256, 2021 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-34213953

RESUMEN

The cell nucleus is best known as the container of the genome. Its envelope provides a barrier for passive macromolecule diffusion, which enhances the control of gene expression. As its largest and stiffest organelle, the nucleus also defines the minimal space requirements of a cell. Internal or external pressures that deform a cell to its physical limits cause a corresponding nuclear deformation. Evidence is consolidating that the nucleus, in addition to its genetic functions, serves as a physical sensing device for critical cell body deformation. Nuclear mechanotransduction allows cells to adapt their acute behaviors, mechanical stability, paracrine signaling, and fate to their physical surroundings. This review summarizes the basic chemical and mechanical properties of nuclear components, and how these properties are thought to be utilized for mechanosensing.


Asunto(s)
Núcleo Celular , Mecanotransducción Celular , Núcleo Celular/genética , Núcleo Celular/metabolismo , Mecanotransducción Celular/fisiología
14.
Annu Rev Biochem ; 88: 577-604, 2019 06 20.
Artículo en Inglés | MEDLINE | ID: mdl-30566373

RESUMEN

The Hippo pathway was initially discovered in Drosophila melanogaster as a key regulator of tissue growth. It is an evolutionarily conserved signaling cascade regulating numerous biological processes, including cell growth and fate decision, organ size control, and regeneration. The core of the Hippo pathway in mammals consists of a kinase cascade, MST1/2 and LATS1/2, as well as downstream effectors, transcriptional coactivators YAP and TAZ. These core components of the Hippo pathway control transcriptional programs involved in cell proliferation, survival, mobility, stemness, and differentiation. The Hippo pathway is tightly regulated by both intrinsic and extrinsic signals, such as mechanical force, cell-cell contact, polarity, energy status, stress, and many diffusible hormonal factors, the majority of which act through G protein-coupled receptors. Here, we review the current understanding of molecular mechanisms by which signals regulate the Hippo pathway with an emphasis on mechanotransduction and the effects of this pathway on basic biology and human diseases.


Asunto(s)
Proteínas Serina-Treonina Quinasas/metabolismo , Transducción de Señal , Animales , Vía de Señalización Hippo , Humanos , Mecanotransducción Celular , Proteínas Serina-Treonina Quinasas/fisiología , Serina-Treonina Quinasa 3 , Proteínas Supresoras de Tumor/metabolismo
15.
Nat Rev Mol Cell Biol ; 23(7): 465-480, 2022 07.
Artículo en Inglés | MEDLINE | ID: mdl-35365816

RESUMEN

Mechanical signalling affects multiple biological processes during development and in adult organisms, including cell fate transitions, cell migration, morphogenesis and immune responses. Here, we review recent insights into the mechanisms and functions of two main routes of mechanical signalling: outside-in mechanical signalling, such as mechanosensing of substrate properties or shear stresses; and mechanical signalling regulated by the physical properties of the cell surface itself. We discuss examples of how these two classes of mechanical signalling regulate stem cell function, as well as developmental processes in vivo. We also discuss how cell surface mechanics affects intracellular signalling and, in turn, how intracellular signalling controls cell surface mechanics, generating feedback into the regulation of mechanosensing. The cooperation between mechanosensing, intracellular signalling and cell surface mechanics has a profound impact on biological processes. We discuss here our understanding of how these three elements interact to regulate stem cell fate and development.


Asunto(s)
Fenómenos Biológicos , Mecanotransducción Celular , Diferenciación Celular , Mecanotransducción Celular/fisiología , Morfogénesis , Transducción de Señal
16.
Cell ; 179(4): 937-952.e18, 2019 10 31.
Artículo en Inglés | MEDLINE | ID: mdl-31675500

RESUMEN

Cell-cell junctions respond to mechanical forces by changing their organization and function. To gain insight into the mechanochemical basis underlying junction mechanosensitivity, we analyzed tight junction (TJ) formation between the enveloping cell layer (EVL) and the yolk syncytial layer (YSL) in the gastrulating zebrafish embryo. We found that the accumulation of Zonula Occludens-1 (ZO-1) at TJs closely scales with tension of the adjacent actomyosin network, revealing that these junctions are mechanosensitive. Actomyosin tension triggers ZO-1 junctional accumulation by driving retrograde actomyosin flow within the YSL, which transports non-junctional ZO-1 clusters toward the TJ. Non-junctional ZO-1 clusters form by phase separation, and direct actin binding of ZO-1 is required for stable incorporation of retrogradely flowing ZO-1 clusters into TJs. If the formation and/or junctional incorporation of ZO-1 clusters is impaired, then TJs lose their mechanosensitivity, and consequently, EVL-YSL movement is delayed. Thus, phase separation and flow of non-junctional ZO-1 confer mechanosensitivity to TJs.


Asunto(s)
Desarrollo Embrionario/genética , Mecanotransducción Celular/genética , Uniones Estrechas/genética , Proteína de la Zonula Occludens-1/genética , Citoesqueleto de Actina/genética , Actomiosina/genética , Animales , Animales Modificados Genéticamente/genética , Animales Modificados Genéticamente/crecimiento & desarrollo , Embrión no Mamífero/fisiología , Regulación del Desarrollo de la Expresión Génica/genética , Humanos , Proteínas de la Membrana/genética , Ratones , Fosfoproteínas/genética , Unión Proteica , Uniones Estrechas/fisiología , Saco Vitelino/crecimiento & desarrollo , Saco Vitelino/metabolismo , Pez Cebra/genética , Pez Cebra/crecimiento & desarrollo
17.
Cell ; 177(7): 1738-1756.e23, 2019 06 13.
Artículo en Inglés | MEDLINE | ID: mdl-31104842

RESUMEN

Glycosylphosphatidylinositol-anchored proteins (GPI-APs) are a major class of lipid-anchored plasma membrane proteins. GPI-APs form nanoclusters generated by cortical acto-myosin activity. While our understanding of the physical principles governing this process is emerging, the molecular machinery and functional relevance of GPI-AP nanoclustering are unknown. Here, we first show that a membrane receptor signaling pathway directs nanocluster formation. Arg-Gly-Asp motif-containing ligands bound to the ß1-integrin receptor activate src and focal adhesion kinases, resulting in RhoA signaling. This cascade triggers actin-nucleation via specific formins, which, along with myosin activity, drive the nanoclustering of membrane proteins with actin-binding domains. Concurrently, talin-mediated activation of the mechano-transducer vinculin is required for the coupling of the acto-myosin machinery to inner-leaflet lipids, thereby generating GPI-AP nanoclusters. Second, we show that these nanoclusters are functional; disruption of their formation either in GPI-anchor remodeling mutants or in vinculin mutants impairs cell spreading and migration, hallmarks of integrin function.


Asunto(s)
Integrina beta1/metabolismo , Mecanotransducción Celular , Microdominios de Membrana/metabolismo , Secuencias de Aminoácidos , Animales , Células CHO , Cricetulus , Proteína-Tirosina Quinasas de Adhesión Focal/genética , Proteína-Tirosina Quinasas de Adhesión Focal/metabolismo , Humanos , Integrina beta1/genética , Microdominios de Membrana/genética , Vinculina/genética , Vinculina/metabolismo , Proteína de Unión al GTP rhoA/genética , Proteína de Unión al GTP rhoA/metabolismo , Familia-src Quinasas/genética , Familia-src Quinasas/metabolismo
18.
Annu Rev Cell Dev Biol ; 36: 385-410, 2020 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-32628862

RESUMEN

Development encapsulates the morphogenesis of an organism from a single fertilized cell to a functional adult. A critical part of development is the specification of organ forms. Beyond the molecular control of morphogenesis, shape in essence entails structural constraints and thus mechanics. Revisiting recent results in biophysics and development, and comparing animal and plant model systems, we derive key overarching principles behind the formation of organs across kingdoms. In particular, we highlight how growing organs are active rather than passive systems and how such behavior plays a role in shaping the organ. We discuss the importance of considering different scales in understanding how organs form. Such an integrative view of organ development generates new questions while calling for more cross-fertilization between scientific fields and model system communities.


Asunto(s)
Morfogénesis , Especificidad de Órganos , Animales , Anisotropía , Fenómenos Biomecánicos , Humanos , Mecanotransducción Celular , Modelos Biológicos
19.
Nat Immunol ; 22(11): 1391-1402, 2021 11.
Artículo en Inglés | MEDLINE | ID: mdl-34686865

RESUMEN

Epithelial cells have an ability termed 'cell competition', which is an immune surveillance-like function that extrudes precancerous cells from the epithelial layer, leading to apoptosis and clearance. However, it remains unclear how epithelial cells recognize and extrude transformed cells. Here, we discovered that a PirB family protein, leukocyte immunoglobulin-like receptor B3 (LILRB3), which is expressed on non-transformed epithelial cells, recognizes major histocompatibility complex class I (MHC class I) that is highly expressed on transformed cells. MHC class I interaction with LILRB3 expressed on normal epithelial cells triggers an SHP2-ROCK2 pathway that generates a mechanical force to extrude transformed cells. Removal of transformed cells occurs independently of natural killer (NK) cell or CD8+ cytotoxic T cell-mediated activity. This is a new mechanism in that the immunological ligand-receptor system generates a mechanical force in non-immune epithelial cells to extrude precancerous cells in the same epithelial layer.


Asunto(s)
Antígenos CD/metabolismo , Apoptosis , Competencia Celular , Células Epiteliales/metabolismo , Antígenos de Histocompatibilidad Clase I/metabolismo , Neoplasias Pulmonares/metabolismo , Lesiones Precancerosas/metabolismo , Receptores Inmunológicos/metabolismo , Animales , Antígenos CD/genética , Subunidad alfa 1 del Factor de Unión al Sitio Principal/metabolismo , Perros , Células Epiteliales/inmunología , Células Epiteliales/patología , Células HaCaT , Humanos , Neoplasias Pulmonares/genética , Neoplasias Pulmonares/inmunología , Neoplasias Pulmonares/patología , Células de Riñón Canino Madin Darby , Mecanotransducción Celular , Ratones , Ratones Endogámicos BALB C , Ratones Desnudos , Lesiones Precancerosas/genética , Lesiones Precancerosas/inmunología , Lesiones Precancerosas/patología , Proteína Tirosina Fosfatasa no Receptora Tipo 11/metabolismo , Células RAW 264.7 , Receptores Inmunológicos/genética , Estrés Mecánico , Quinasas Asociadas a rho/metabolismo
20.
Immunity ; 57(1): 52-67.e10, 2024 Jan 09.
Artículo en Inglés | MEDLINE | ID: mdl-38091995

RESUMEN

The regulation of polymorphonuclear leukocyte (PMN) function by mechanical forces encountered during their migration across restrictive endothelial cell junctions is not well understood. Using genetic, imaging, microfluidic, and in vivo approaches, we demonstrated that the mechanosensor Piezo1 in PMN plasmalemma induced spike-like Ca2+ signals during trans-endothelial migration. Mechanosensing increased the bactericidal function of PMN entering tissue. Mice in which Piezo1 in PMNs was genetically deleted were defective in clearing bacteria, and their lungs were predisposed to severe infection. Adoptive transfer of Piezo1-activated PMNs into the lungs of Pseudomonas aeruginosa-infected mice or exposing PMNs to defined mechanical forces in microfluidic systems improved bacterial clearance phenotype of PMNs. Piezo1 transduced the mechanical signals activated during transmigration to upregulate nicotinamide adenine dinucleotide phosphate (NADPH) oxidase 4, crucial for the increased PMN bactericidal activity. Thus, Piezo1 mechanosensing of increased PMN tension, while traversing the narrow endothelial adherens junctions, is a central mechanism activating the host-defense function of transmigrating PMNs.


Asunto(s)
Movimiento Celular , Pulmón , Mecanotransducción Celular , Neutrófilos , Animales , Ratones , Membrana Celular , Canales Iónicos/genética , Neutrófilos/metabolismo , Neutrófilos/microbiología , Actividad Bactericida de la Sangre/genética , Mecanotransducción Celular/genética
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