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1.
bioRxiv ; 2024 Jun 20.
Artículo en Inglés | MEDLINE | ID: mdl-38948723

RESUMEN

Oxidative protein folding in the endoplasmic reticulum (ER) is essential for all eukaryotic cells yet generates hydrogen peroxide (H2O2), a reactive oxygen species (ROS). The ER-transmembrane protein that provides reducing equivalents to ER and guards the cytosol for antioxidant defense remains unidentified. Here we combine AlphaFold2-based and functional reporter screens in C. elegans to identify a previously uncharacterized and evolutionarily conserved protein ERGU-1 that fulfills these roles. Deleting C. elegans ERGU-1 causes excessive H2O2 and transcriptional gene up-regulation through SKN-1, homolog of mammalian antioxidant master regulator NRF2. ERGU-1 deficiency also impairs organismal reproduction and behaviors. Both C. elegans and human ERGU-1 proteins localize to ER membranes and form network reticulum structures. We name this system ER-GUARD, Endoplasmic Reticulum Guardian Aegis of Redox Defense. Human and Drosophila homologs of ERGU-1 can rescue C. elegans mutant phenotypes, demonstrating evolutionarily ancient and conserved functions. Together, our results reveal an ER-membrane-specific protein machinery and defense-net system ER-GUARD for peroxide detoxification and suggest a previously unknown but conserved pathway for antioxidant defense in animal cells.

2.
Curr Opin Cell Biol ; 89: 102392, 2024 Jul 10.
Artículo en Inglés | MEDLINE | ID: mdl-38991476

RESUMEN

Migratory cells are polarized with protrusive fronts and contractile rears. This spatial organization necessitates long-range coordination of the signals that organize protrusions and contractions. Cells leverage reciprocal interactions of short-range biochemical signals and long-range mechanical forces for this integration. The interface between the plasma membrane and actin cortex is where this communication occurs. Here, we review how the membrane and cortex form an integrated system for long-range coordination of cell polarity. We highlight the role of membrane-to-cortex-attachment proteins as regulators of tension transmission across the cell and discuss the interplay between actin-membrane and polarity signaling complexes. Rather than presenting an exhaustive list of recent findings, we focus on important gaps in our current understanding.

3.
Sci Adv ; 10(4): eadj3880, 2024 Jan 26.
Artículo en Inglés | MEDLINE | ID: mdl-38266092

RESUMEN

Early-life stress experiences can produce lasting impacts on organismal adaptation and fitness. How transient stress elicits memory-like physiological effects is largely unknown. Here, we show that early-life thermal stress strongly up-regulates tsp-1, a gene encoding the conserved transmembrane tetraspanin in C. elegans. TSP-1 forms prominent multimers and stable web-like structures critical for membrane barrier functions in adults and during aging. Increased TSP-1 abundance persists even after transient early-life heat stress. Such regulation requires CBP-1, a histone acetyltransferase that facilitates initial tsp-1 transcription. Tetraspanin webs form regular membrane structures and mediate resilience-promoting effects of early-life thermal stress. Gain-of-function TSP-1 confers marked C. elegans longevity extension and thermal resilience in human cells. Together, our results reveal a cellular mechanism by which early-life thermal stress produces long-lasting memory-like impact on organismal resilience and longevity.


Asunto(s)
Experiencias Adversas de la Infancia , Proteínas de Caenorhabditis elegans , Resiliencia Psicológica , Adulto , Humanos , Animales , Longevidad , Trombospondina 1 , Caenorhabditis elegans , Tetraspaninas/genética , Factores de Transcripción , Proteínas de Caenorhabditis elegans/genética , Histona Acetiltransferasas
4.
bioRxiv ; 2023 Dec 17.
Artículo en Inglés | MEDLINE | ID: mdl-37546737

RESUMEN

Early-life stress experiences can produce lasting impacts on organismal adaptation and fitness. How transient stress elicits memory-like physiological effects is largely unknown. Here we show that early-life thermal stress strongly up-regulates tsp-1, a gene encoding the conserved transmembrane tetraspanin in C. elegans. TSP-1 forms prominent multimers and stable web-like structures critical for membrane barrier functions in adults and during aging. The up-regulation of TSP-1 persists even after transient early-life stress. Such regulation requires CBP-1, a histone acetyl-transferase that facilitates initial tsp-1 transcription. Tetraspanin webs form regular membrane structures and mediate resilience-promoting effects of early-life thermal stress. Gain-of-function TSP-1 confers marked C. elegans longevity extension and thermal resilience in human cells. Together, our results reveal a cellular mechanism by which early-life thermal stress produces long-lasting memory-like impact on organismal resilience and longevity.

5.
Cell ; 186(14): 3049-3061.e15, 2023 07 06.
Artículo en Inglés | MEDLINE | ID: mdl-37311454

RESUMEN

Membrane tension is thought to be a long-range integrator of cell physiology. Membrane tension has been proposed to enable cell polarity during migration through front-back coordination and long-range protrusion competition. These roles necessitate effective tension transmission across the cell. However, conflicting observations have left the field divided as to whether cell membranes support or resist tension propagation. This discrepancy likely originates from the use of exogenous forces that may not accurately mimic endogenous forces. We overcome this complication by leveraging optogenetics to directly control localized actin-based protrusions or actomyosin contractions while simultaneously monitoring the propagation of membrane tension using dual-trap optical tweezers. Surprisingly, actin-driven protrusions and actomyosin contractions both elicit rapid global membrane tension propagation, whereas forces applied to cell membranes alone do not. We present a simple unifying mechanical model in which mechanical forces that engage the actin cortex drive rapid, robust membrane tension propagation through long-range membrane flows.


Asunto(s)
Actinas , Actomiosina , Actinas/metabolismo , Actomiosina/metabolismo , Citoesqueleto de Actina/metabolismo , Membrana Celular/metabolismo , Movimiento Celular/fisiología
6.
Nat Immunol ; 23(8): 1169-1182, 2022 08.
Artículo en Inglés | MEDLINE | ID: mdl-35882934

RESUMEN

Emergent physical properties of tissues are not readily understood by reductionist studies of their constituent cells. Here, we show molecular signals controlling cellular, physical, and structural properties and collectively determine tissue mechanics of lymph nodes, an immunologically relevant adult tissue. Lymph nodes paradoxically maintain robust tissue architecture in homeostasis yet are continually poised for extensive expansion upon immune challenge. We find that in murine models of immune challenge, cytoskeletal mechanics of a cellular meshwork of fibroblasts determine tissue tension independently of extracellular matrix scaffolds. We determine that C-type lectin-like receptor 2 (CLEC-2)-podoplanin signaling regulates the cell surface mechanics of fibroblasts, providing a mechanically sensitive pathway to regulate lymph node remodeling. Perturbation of fibroblast mechanics through genetic deletion of podoplanin attenuates T cell activation. We find that increased tissue tension through the fibroblastic stromal meshwork is required to trigger the initiation of fibroblast proliferation and restore homeostatic cellular ratios and tissue structure through lymph node expansion.


Asunto(s)
Fibroblastos , Ganglios Linfáticos , Animales , Matriz Extracelular/metabolismo , Fibroblastos/metabolismo , Homeostasis , Lectinas Tipo C/metabolismo , Ratones
8.
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
9.
Cell ; 185(5): 777-793.e20, 2022 03 03.
Artículo en Inglés | MEDLINE | ID: mdl-35196500

RESUMEN

In development, lineage segregation is coordinated in time and space. An important example is the mammalian inner cell mass, in which the primitive endoderm (PrE, founder of the yolk sac) physically segregates from the epiblast (EPI, founder of the fetus). While the molecular requirements have been well studied, the physical mechanisms determining spatial segregation between EPI and PrE remain elusive. Here, we investigate the mechanical basis of EPI and PrE sorting. We find that rather than the differences in static cell surface mechanical parameters as in classical sorting models, it is the differences in surface fluctuations that robustly ensure physical lineage sorting. These differential surface fluctuations systematically correlate with differential cellular fluidity, which we propose together constitute a non-equilibrium sorting mechanism for EPI and PrE lineages. By combining experiments and modeling, we identify cell surface dynamics as a key factor orchestrating the correct spatial segregation of the founder embryonic lineages.


Asunto(s)
Blastocisto , Embrión de Mamíferos , Endodermo , Animales , Blastocisto/metabolismo , Diferenciación Celular/fisiología , Linaje de la Célula/fisiología , Membrana Celular/metabolismo , Embrión de Mamíferos/metabolismo , Desarrollo Embrionario , Endodermo/metabolismo , Mamíferos , Ratones , Transporte de Proteínas
10.
Cell Stem Cell ; 28(2): 273-284.e6, 2021 02 04.
Artículo en Inglés | MEDLINE | ID: mdl-33217323

RESUMEN

Cell fate transitions are frequently accompanied by changes in cell shape and mechanics. However, how cellular mechanics affects the instructive signaling pathways controlling cell fate is poorly understood. To probe the interplay between shape, mechanics, and fate, we use mouse embryonic stem cells (ESCs), which change shape as they undergo early differentiation. We find that shape change is regulated by a ß-catenin-mediated decrease in RhoA activity and subsequent decrease in the plasma membrane tension. Strikingly, preventing a decrease in membrane tension results in early differentiation defects in ESCs and gastruloids. Decreased membrane tension facilitates the endocytosis of FGF signaling components, which activate ERK signaling and direct the exit from the ESC state. Increasing Rab5a-facilitated endocytosis rescues defective early differentiation. Thus, we show that a mechanically triggered increase in endocytosis regulates early differentiation. Our findings are of fundamental importance for understanding how cell mechanics regulates biochemical signaling and therefore cell fate.


Asunto(s)
Células Madre Embrionarias , Células Madre Embrionarias de Ratones , Animales , Diferenciación Celular , Endocitosis , Ratones , Transducción de Señal
11.
Dev Cell ; 51(4): 460-475.e10, 2019 11 18.
Artículo en Inglés | MEDLINE | ID: mdl-31607653

RESUMEN

In development, wound healing, and cancer metastasis, vertebrate cells move through 3D interstitial matrix, responding to chemical and physical guidance cues. Protrusion at the cell front has been extensively studied, but the retraction phase of the migration cycle is not well understood. Here, we show that fast-moving cells guided by matrix cues establish positive feedback control of rear retraction by sensing membrane tension. We reveal a mechanism of rear retraction in 3D matrix and durotaxis controlled by caveolae, which form in response to low membrane tension at the cell rear. Caveolae activate RhoA-ROCK1/PKN2 signaling via the RhoA guanidine nucleotide exchange factor (GEF) Ect2 to control local F-actin organization and contractility in this subcellular region and promote translocation of the cell rear. A positive feedback loop between cytoskeletal signaling and membrane tension leads to rapid retraction to complete the migration cycle in fast-moving cells, providing directional memory to drive persistent cell migration in complex matrices.


Asunto(s)
Movimiento Celular/fisiología , Seudópodos/fisiología , Citoesqueleto de Actina/metabolismo , Actinas/metabolismo , Animales , Caveolas/fisiología , Línea Celular Tumoral , Membrana Celular/metabolismo , Membrana Celular/fisiología , Polaridad Celular/fisiología , Extensiones de la Superficie Celular/metabolismo , Extensiones de la Superficie Celular/fisiología , Citoesqueleto/metabolismo , Citosol/metabolismo , Matriz Extracelular/metabolismo , Humanos , Ratones , Proteína Quinasa C/metabolismo , Seudópodos/metabolismo , Ratas , Transducción de Señal , Quinasas Asociadas a rho/metabolismo , Proteína de Unión al GTP rhoA/metabolismo
12.
Dev Cell ; 45(2): 170-182.e7, 2018 04 23.
Artículo en Inglés | MEDLINE | ID: mdl-29689193

RESUMEN

How growing cells cope with size expansion while ensuring mechanical integrity is not known. In walled cells, such as those of microbes and plants, growth and viability are both supported by a thin and rigid encasing cell wall (CW). We deciphered the dynamic mechanisms controlling wall surface assembly during cell growth, using a sub-resolution microscopy approach to monitor CW thickness in live rod-shaped fission yeast cells. We found that polar cell growth yielded wall thinning and that thickness negatively influenced growth. Thickness at growing tips exhibited a fluctuating behavior with thickening phases followed by thinning phases, indicative of a delayed feedback promoting thickness homeostasis. This feedback was mediated by mechanosensing through the CW integrity pathway, which probes strain in the wall to adjust synthase localization and activity to surface growth. Mutants defective in thickness homeostasis lysed by rupturing the wall, demonstrating its pivotal role for walled cell survival.


Asunto(s)
Pared Celular/fisiología , Morfogénesis/fisiología , Proteínas de Schizosaccharomyces pombe/metabolismo , Schizosaccharomyces/fisiología , Fenómenos Biomecánicos , Ciclo Celular , Polaridad Celular , Proliferación Celular , Forma de la Célula , Supervivencia Celular , Pared Celular/ultraestructura , Modelos Biológicos , Schizosaccharomyces/ultraestructura , Estrés Mecánico
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