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1.
Nature ; 629(8012): 646-651, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38693259

RESUMEN

The shaping of human embryos begins with compaction, during which cells come into close contact1,2. Assisted reproductive technology studies indicate that human embryos fail compaction primarily because of defective adhesion3,4. On the basis of our current understanding of animal morphogenesis5,6, other morphogenetic engines, such as cell contractility, could be involved in shaping human embryos. However, the molecular, cellular and physical mechanisms driving human embryo morphogenesis remain uncharacterized. Using micropipette aspiration on human embryos donated to research, we have mapped cell surface tensions during compaction. This shows a fourfold increase of tension at the cell-medium interface whereas cell-cell contacts keep a steady tension. Therefore, increased tension at the cell-medium interface drives human embryo compaction, which is qualitatively similar to compaction in mouse embryos7. Further comparison between human and mouse shows qualitatively similar but quantitively different mechanical strategies, with human embryos being mechanically least efficient. Inhibition of cell contractility and cell-cell adhesion in human embryos shows that, whereas both cellular processes are required for compaction, only contractility controls the surface tensions responsible for compaction. Cell contractility and cell-cell adhesion exhibit distinct mechanical signatures when faulty. Analysing the mechanical signature of naturally failing embryos, we find evidence that non-compacting or partially compacting embryos containing excluded cells have defective contractility. Together, our study shows that an evolutionarily conserved increase in cell contractility is required to generate the forces driving the first morphogenetic movement shaping the human body.


Asunto(s)
Adhesión Celular , Embrión de Mamíferos , Desarrollo Embrionario , Animales , Femenino , Humanos , Masculino , Ratones , Fenómenos Biomecánicos , Embrión de Mamíferos/citología , Embrión de Mamíferos/embriología , Tensión Superficial , Adulto
2.
EMBO J ; 42(17): e114415, 2023 09 04.
Artículo en Inglés | MEDLINE | ID: mdl-37427462

RESUMEN

Cell fragmentation is commonly observed in human preimplantation embryos and is associated with poor prognosis during assisted reproductive technology (ART) procedures. However, the mechanisms leading to cell fragmentation remain largely unknown. Here, light sheet microscopy imaging of mouse embryos reveals that inefficient chromosome separation due to spindle defects, caused by dysfunctional molecular motors Myo1c or dynein, leads to fragmentation during mitosis. Extended exposure of the cell cortex to chromosomes locally triggers actomyosin contractility and pinches off cell fragments. This process is reminiscent of meiosis, during which small GTPase-mediated signals from chromosomes coordinate polar body extrusion (PBE) by actomyosin contraction. By interfering with the signals driving PBE, we find that this meiotic signaling pathway remains active during cleavage stages and is both required and sufficient to trigger fragmentation. Together, we find that fragmentation happens in mitosis after ectopic activation of actomyosin contractility by signals emanating from DNA, similar to those observed during meiosis. Our study uncovers the mechanisms underlying fragmentation in preimplantation embryos and, more generally, offers insight into the regulation of mitosis during the maternal-zygotic transition.


Asunto(s)
Actomiosina , Cuerpos Polares , Humanos , Animales , Ratones , Cuerpos Polares/metabolismo , Actomiosina/metabolismo , Blastocisto , Cromosomas , Meiosis , Oocitos/metabolismo , Huso Acromático/genética , Miosina Tipo I/genética , Miosina Tipo I/metabolismo
3.
PLoS Biol ; 20(3): e3001593, 2022 03.
Artículo en Inglés | MEDLINE | ID: mdl-35324889

RESUMEN

Actomyosin contractility is a major engine of preimplantation morphogenesis, which starts at the 8-cell stage during mouse embryonic development. Contractility becomes first visible with the appearance of periodic cortical waves of contraction (PeCoWaCo), which travel around blastomeres in an oscillatory fashion. How contractility of the mouse embryo becomes active remains unknown. We have taken advantage of PeCoWaCo to study the awakening of contractility during preimplantation development. We find that PeCoWaCo become detectable in most embryos only after the second cleavage and gradually increase their oscillation frequency with each successive cleavage. To test the influence of cell size reduction during cleavage divisions, we use cell fusion and fragmentation to manipulate cell size across a 20- to 60-µm range. We find that the stepwise reduction in cell size caused by cleavage divisions does not explain the presence of PeCoWaCo or their accelerating rhythm. Instead, we discover that blastomeres gradually decrease their surface tensions until the 8-cell stage and that artificially softening cells enhances PeCoWaCo prematurely. We further identify the programmed down-regulation of the formin Fmnl3 as a required event to soften the cortex and expose PeCoWaCo. Therefore, during cleavage stages, cortical softening, mediated by Fmnl3 down-regulation, awakens zygotic contractility before preimplantation morphogenesis.


Asunto(s)
Blastómeros , Desarrollo Embrionario , Animales , Blastómeros/metabolismo , Embrión de Mamíferos , Femenino , Ratones , Morfogénesis , Embarazo , Cigoto
4.
Biophys J ; 2024 Mar 26.
Artículo en Inglés | MEDLINE | ID: mdl-38528761

RESUMEN

Compaction is the first morphogenetic movement of the eutherian mammals and involves a developmentally regulated adhesion process. Previous studies investigated cellular and mechanical aspects of compaction. During mouse and human compaction, cells spread onto each other as a result of a contractility-mediated increase in surface tension pulling at the edges of their cell-cell contacts. However, how compaction may affect the mechanical stability of cell-cell contacts remains unknown. Here, we used a dual pipette aspiration assay on cell doublets to quantitatively analyze the mechanical stability of compacting mouse embryos. We measured increased mechanical stability of contacts with rupture forces growing from 40 to 70 nN, which was highly correlated with cell-cell contact expansion. Analyzing the dynamic molecular reorganization of cell-cell contacts, we find minimal recruitment of the cell-cell adhesion molecule Cdh1 (also known as E-cadherin) to contacts but we observe its reorganization into a peripheral adhesive ring. However, this reorganization is not associated with increased effective bond density, contrary to previous reports in other adhesive systems. Using genetics, we reduce the levels of Cdh1 or replace it with a chimeric adhesion molecule composed of the extracellular domain of Cdh1 and the intracellular domain of Cdh2 (also known as N-cadherin). We find that reducing the levels of Cdh1 impairs the mechanical stability of cell-cell contacts due to reduced contact growth, which nevertheless show higher effective bond density than wild-type contacts of similar size. On the other hand, chimeric adhesion molecules cannot form large or strong contacts indicating that the intracellular domain of Cdh2 is unable to reorganize contacts and/or is mechanically weaker than the one of Cdh1 in mouse embryos. Together, we find that mouse embryo compaction mechanically strengthens cell-cell adhesion via the expansion of Cdh1 adhesive rings that maintain pre-compaction levels of effective bond density.

5.
Semin Cell Dev Biol ; 120: 22-31, 2021 12.
Artículo en Inglés | MEDLINE | ID: mdl-34253437

RESUMEN

During preimplantation development, the human embryo forms the blastocyst, the structure enabling uterine implantation. The blastocyst consists of an epithelial envelope, the trophectoderm, encompassing a fluid-filled lumen, the blastocoel, and a cluster of pluripotent stem cells, the inner cell mass. This specific architecture is crucial for the implantation and further development of the human embryo. Furthermore, the morphology of the human embryo is a prime determinant for clinicians to assess the implantation potential of in vitro fertilized human embryos, which constitutes a key aspect of assisted reproduction technology. Therefore, it is crucial to understand how the human embryo builds the blastocyst. As any material, the human embryo changes shape under the action of forces. Here, we review recent advances in our understanding of the mechanical forces shaping the blastocyst. We discuss the cellular processes responsible for generating morphogenetic forces that were studied mostly in the mouse and review the literature on human embryos to see which of them may be conserved. Based on the specific morphological defects commonly observed in clinics during human preimplantation development, we discuss how mechanical forces and their underlying cellular processes may be affected. Together, we propose that bringing tissue mechanics to the clinics will advance our understanding of human preimplantation development, as well as our ability to help infertile couples to have babies.


Asunto(s)
Blastocisto/fisiología , Animales , Humanos , Ratones
6.
Nature ; 536(7616): 344-348, 2016 08 18.
Artículo en Inglés | MEDLINE | ID: mdl-27487217

RESUMEN

During pre-implantation development, the mammalian embryo self-organizes into the blastocyst, which consists of an epithelial layer encapsulating the inner-cell mass (ICM) giving rise to all embryonic tissues. In mice, oriented cell division, apicobasal polarity and actomyosin contractility are thought to contribute to the formation of the ICM. However, how these processes work together remains unclear. Here we show that asymmetric segregation of the apical domain generates blastomeres with different contractilities, which triggers their sorting into inner and outer positions. Three-dimensional physical modelling of embryo morphogenesis reveals that cells internalize only when differences in surface contractility exceed a predictable threshold. We validate this prediction using biophysical measurements, and successfully redirect cell sorting within the developing blastocyst using maternal myosin (Myh9)-knockout chimaeric embryos. Finally, we find that loss of contractility causes blastomeres to show ICM-like markers, regardless of their position. In particular, contractility controls Yap subcellular localization, raising the possibility that mechanosensing occurs during blastocyst lineage specification. We conclude that contractility couples the positioning and fate specification of blastomeres. We propose that this ensures the robust self-organization of blastomeres into the blastocyst, which confers remarkable regulative capacities to mammalian embryos.


Asunto(s)
Masa Celular Interna del Blastocisto/citología , Diferenciación Celular , División Celular , Movimiento Celular , Embrión de Mamíferos/citología , Embrión de Mamíferos/embriología , Proteínas Adaptadoras Transductoras de Señales/metabolismo , Animales , Blastocisto/citología , Blastómeros/citología , Proteínas de Ciclo Celular , Linaje de la Célula , Polaridad Celular , Desarrollo Embrionario , Femenino , Masculino , Ratones , Fosfoproteínas/metabolismo , Transporte de Proteínas , Reproducibilidad de los Resultados , Proteínas Señalizadoras YAP
7.
Proc Natl Acad Sci U S A ; 116(48): 24108-24114, 2019 11 26.
Artículo en Inglés | MEDLINE | ID: mdl-31699818

RESUMEN

Metastasis is the main cause of cancer-related deaths. How a single oncogenic cell evolves within highly organized epithelium is still unknown. Here, we found that the overexpression of the protein kinase atypical protein kinase C ι (aPKCi), an oncogene, triggers basally oriented epithelial cell extrusion in vivo as a potential mechanism for early breast tumor cell invasion. We found that cell segregation is the first step required for basal extrusion of luminal cells and identify aPKCi and vinculin as regulators of cell segregation. We propose that asymmetric vinculin levels at the junction between normal and aPKCi+ cells trigger an increase in tension at these cell junctions. Moreover, we show that aPKCi+ cells acquire promigratory features, including increased vinculin levels and vinculin dynamics at the cell-substratum contacts. Overall, this study shows that a balance between cell contractility and cell-cell adhesion is crucial for promoting basally oriented cell extrusion, a mechanism for early breast cancer cell invasion.


Asunto(s)
Neoplasias de la Mama/metabolismo , Isoenzimas/fisiología , Proteína Quinasa C/fisiología , Vinculina/metabolismo , Neoplasias de la Mama/patología , Adhesión Celular , Línea Celular Tumoral , Separación Celular , Humanos , Uniones Intercelulares/metabolismo , Isoenzimas/genética , Isoenzimas/metabolismo , Invasividad Neoplásica , Proteína Quinasa C/genética , Proteína Quinasa C/metabolismo
8.
Phys Biol ; 18(4)2021 04 14.
Artículo en Inglés | MEDLINE | ID: mdl-33276350

RESUMEN

The way in which interactions between mechanics and biochemistry lead to the emergence of complex cell and tissue organization is an old question that has recently attracted renewed interest from biologists, physicists, mathematicians and computer scientists. Rapid advances in optical physics, microscopy and computational image analysis have greatly enhanced our ability to observe and quantify spatiotemporal patterns of signalling, force generation, deformation, and flow in living cells and tissues. Powerful new tools for genetic, biophysical and optogenetic manipulation are allowing us to perturb the underlying machinery that generates these patterns in increasingly sophisticated ways. Rapid advances in theory and computing have made it possible to construct predictive models that describe how cell and tissue organization and dynamics emerge from the local coupling of biochemistry and mechanics. Together, these advances have opened up a wealth of new opportunities to explore how mechanochemical patterning shapes organismal development. In this roadmap, we present a series of forward-looking case studies on mechanochemical patterning in development, written by scientists working at the interface between the physical and biological sciences, and covering a wide range of spatial and temporal scales, organisms, and modes of development. Together, these contributions highlight the many ways in which the dynamic coupling of mechanics and biochemistry shapes biological dynamics: from mechanoenzymes that sense force to tune their activity and motor output, to collectives of cells in tissues that flow and redistribute biochemical signals during development.


Asunto(s)
Fenómenos Biomecánicos , Morfogénesis , Transducción de Señal , Modelos Biológicos
9.
Development ; 144(10): 1798-1806, 2017 05 15.
Artículo en Inglés | MEDLINE | ID: mdl-28512197

RESUMEN

The segregation of different cell types into distinct tissues is a fundamental process in metazoan development. Differences in cell adhesion and cortex tension are commonly thought to drive cell sorting by regulating tissue surface tension (TST). However, the role that differential TST plays in cell segregation within the developing embryo is as yet unclear. Here, we have analyzed the role of differential TST for germ layer progenitor cell segregation during zebrafish gastrulation. Contrary to previous observations that differential TST drives germ layer progenitor cell segregation in vitro, we show that germ layers display indistinguishable TST within the gastrulating embryo, arguing against differential TST driving germ layer progenitor cell segregation in vivo We further show that the osmolarity of the interstitial fluid (IF) is an important factor that influences germ layer TST in vivo, and that lower osmolarity of the IF compared with standard cell culture medium can explain why germ layers display differential TST in culture but not in vivo Finally, we show that directed migration of mesendoderm progenitors is required for germ layer progenitor cell segregation and germ layer formation.


Asunto(s)
Tipificación del Cuerpo , Movimiento Celular , Líquido Extracelular/química , Gastrulación/fisiología , Células Madre/química , Células Madre/fisiología , Pez Cebra/embriología , Animales , Animales Modificados Genéticamente , Embrión no Mamífero , Mesodermo/química , Mesodermo/citología , Mesodermo/embriología , Concentración Osmolar , Células Madre/citología , Tensión Superficial
10.
Biol Cell ; 109(9): 323-338, 2017 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-28681376

RESUMEN

During pre-implantation development, the mammalian zygote transforms into the blastocyst, the structure that will implant the embryo in the maternal uterus. Consisting of a squamous epithelium enveloping a fluid-filled cavity and the inner cell mass, the blastocyst is sculpted by a succession of morphogenetic events. These deformations result from the changes in the forces and mechanical properties of the tissue composing the embryo. Here, I review the recent studies, which, for the first time, informed us on the mechanics of blastocyst morphogenesis.


Asunto(s)
Blastocisto/citología , Morfogénesis , Animales , Fenómenos Biomecánicos , Linaje de la Célula , Epitelio/metabolismo , Humanos , Mórula/citología
11.
Nature ; 552(7684): 178-179, 2017 12 14.
Artículo en Inglés | MEDLINE | ID: mdl-29239372
12.
Semin Cell Dev Biol ; 47-48: 110-7, 2015 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-26256955

RESUMEN

During embryonic development, tissues deform by a succession and combination of morphogenetic processes. Tissue compaction is the morphogenetic process by which a tissue adopts a tighter structure. Recent studies characterized the respective roles of cells' adhesive and contractile properties in tissue compaction. In this review, we formalize the mechanical and molecular principles of tissue compaction and we analyze through the prism of this framework several morphogenetic events: the compaction of the early mouse embryo, the formation of the fly retina, the segmentation of somites and the separation of germ layers during gastrulation.


Asunto(s)
Comunicación Celular/fisiología , Desarrollo Embrionario/fisiología , Estratos Germinativos/fisiología , Fenómenos Mecánicos , Animales , Tipificación del Cuerpo/fisiología , Adhesión Celular/fisiología , Gastrulación/fisiología , Estratos Germinativos/citología , Estratos Germinativos/embriología , Humanos , Modelos Biológicos
13.
Development ; 138(21): 4673-83, 2011 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-21965614

RESUMEN

Facial branchiomotor neurons (FBMNs) in zebrafish and mouse embryonic hindbrain undergo a characteristic tangential migration from rhombomere (r) 4, where they are born, to r6/7. Cohesion among neuroepithelial cells (NCs) has been suggested to function in FBMN migration by inhibiting FBMNs positioned in the basal neuroepithelium such that they move apically between NCs towards the midline of the neuroepithelium instead of tangentially along the basal side of the neuroepithelium towards r6/7. However, direct experimental evaluation of this hypothesis is still lacking. Here, we have used a combination of biophysical cell adhesion measurements and high-resolution time-lapse microscopy to determine the role of NC cohesion in FBMN migration. We show that reducing NC cohesion by interfering with Cadherin 2 (Cdh2) activity results in FBMNs positioned at the basal side of the neuroepithelium moving apically towards the neural tube midline instead of tangentially towards r6/7. In embryos with strongly reduced NC cohesion, ectopic apical FBMN movement frequently results in fusion of the bilateral FBMN clusters over the apical midline of the neural tube. By contrast, reducing cohesion among FBMNs by interfering with Contactin 2 (Cntn2) expression in these cells has little effect on apical FBMN movement, but reduces the fusion of the bilateral FBMN clusters in embryos with strongly diminished NC cohesion. These data provide direct experimental evidence that NC cohesion functions in tangential FBMN migration by restricting their apical movement.


Asunto(s)
Movimiento Celular/fisiología , Neuronas Motoras/fisiología , Tubo Neural/citología , Tubo Neural/embriología , Células Neuroepiteliales/fisiología , Pez Cebra/anatomía & histología , Pez Cebra/embriología , Animales , Animales Modificados Genéticamente , Cadherinas/genética , Cadherinas/metabolismo , Fusión Celular , Ratones , Morfogénesis/fisiología , Neuronas Motoras/citología , Células Neuroepiteliales/citología , Proteínas de Pez Cebra/genética , Proteínas de Pez Cebra/metabolismo
14.
Artículo en Inglés | MEDLINE | ID: mdl-38951024

RESUMEN

The blastocyst forms during the first days of mammalian development. The structure of the blastocyst is conserved among placental mammals and is paramount to the establishment of the first mammalian lineages. The blastocyst is composed of an extraembryonic epithelium, the trophectoderm (TE), that envelopes a fluid-filled lumen and the inner cell mass (ICM). To shape the blastocyst, embryos transit through three stages driven by forces that have been characterized in the mouse embryo over the past decade. The morphogenetically quiescent cleavage stages mask dynamic cytoskeletal remodeling. Then, during the formation of the morula, cells pull themselves together and the strongest ones internalize. Finally, the blastocyst forms after the pressurized lumen breaks the radial symmetry of the embryo before expanding in cycles of collapses and regrowth. In this review, we delineate the force patterns sculpting the blastocyst, based on our knowledge on the mouse and, to some extent, human embryos.

15.
Commun Biol ; 7(1): 184, 2024 Feb 15.
Artículo en Inglés | MEDLINE | ID: mdl-38360973

RESUMEN

At the early stage of tumor progression, fibroblasts are located at the outer edges of the tumor, forming an encasing layer around it. In this work, we have developed a 3D in vitro model where fibroblasts' layout resembles the structure seen in carcinoma in situ. We use a microfluidic encapsulation technology to co-culture fibroblasts and cancer cells within hollow, permeable, and elastic alginate shells. We find that in the absence of spatial constraint, fibroblasts and cancer cells do not mix but segregate into distinct aggregates composed of individual cell types. However, upon confinement, fibroblasts enwrap cancer cell spheroid. Using a combination of biophysical methods and live imaging, we find that buildup of compressive stress is required to induce fibroblasts spreading over the aggregates of tumor cells. We propose that compressive stress generated by the tumor growth might be a mechanism that prompts fibroblasts to form a capsule around the tumor.


Asunto(s)
Carcinoma in Situ , Fibroblastos , Humanos , Línea Celular Tumoral , Fibroblastos/metabolismo , Esferoides Celulares , Técnicas de Cocultivo , Carcinoma in Situ/metabolismo , Carcinoma in Situ/patología
16.
Life Sci Alliance ; 6(6)2023 06.
Artículo en Inglés | MEDLINE | ID: mdl-36944420

RESUMEN

The oocyte must grow and mature before fertilization, thanks to a close dialogue with the somatic cells that surround it. Part of this communication is through filopodia-like protrusions, called transzonal projections (TZPs), sent by the somatic cells to the oocyte membrane. To investigate the contribution of TZPs to oocyte quality, we impaired their structure by generating a full knockout mouse of the TZP structural component myosin-X (MYO10). Using spinning disk and super-resolution microscopy combined with a machine-learning approach to phenotype oocyte morphology, we show that the lack of Myo10 decreases TZP density during oocyte growth. Reduction in TZPs does not prevent oocyte growth but impairs oocyte-matrix integrity. Importantly, we reveal by transcriptomic analysis that gene expression is altered in TZP-deprived oocytes and that oocyte maturation and subsequent early embryonic development are partially affected, effectively reducing mouse fertility. We propose that TZPs play a role in the structural integrity of the germline-somatic complex, which is essential for regulating gene expression in the oocyte and thus its developmental potential.


Asunto(s)
Folículo Ovárico , Seudópodos , Femenino , Animales , Ratones , Folículo Ovárico/metabolismo , Oocitos/metabolismo , Oogénesis/fisiología , Células Germinativas , Miosinas
17.
Dev Biol ; 354(1): 102-10, 2011 Jun 01.
Artículo en Inglés | MEDLINE | ID: mdl-21463614

RESUMEN

The process of gastrulation is highly conserved across vertebrates on both the genetic and morphological levels, despite great variety in embryonic shape and speed of development. This mechanism spatially separates the germ layers and establishes the organizational foundation for future development. Mesodermal identity is specified in a superficial layer of cells, the epiblast, where cells maintain an epithelioid morphology. These cells involute to join the deeper hypoblast layer where they adopt a migratory, mesenchymal morphology. Expression of a cascade of related transcription factors orchestrates the parallel genetic transition from primitive to mature mesoderm. Although the early and late stages of this process are increasingly well understood, the transition between them has remained largely mysterious. We present here the first high resolution in vivo observations of the blebby transitional morphology of involuting mesodermal cells in a vertebrate embryo. We further demonstrate that the zebrafish spadetail mutation creates a reversible block in the maturation program, stalling cells in the transition state. This mutation creates an ideal system for dissecting the specific properties of cells undergoing the morphological transition of maturing mesoderm, as we demonstrate with a direct measurement of cell-cell adhesion.


Asunto(s)
Mesodermo/metabolismo , Proteínas de Dominio T Box/genética , Proteínas de Pez Cebra/genética , Pez Cebra/genética , Animales , Adhesión Celular , Movimiento Celular , Embrión no Mamífero/citología , Embrión no Mamífero/embriología , Embrión no Mamífero/metabolismo , Transición Epitelial-Mesenquimal , Regulación del Desarrollo de la Expresión Génica , Inmunohistoquímica , Hibridación in Situ , Mesodermo/citología , Mesodermo/embriología , Mutación , Proteínas de Dominio T Box/metabolismo , Pez Cebra/embriología , Pez Cebra/metabolismo , Proteínas de Pez Cebra/metabolismo
18.
Cells Dev ; 168: 203752, 2021 12.
Artículo en Inglés | MEDLINE | ID: mdl-34634520

RESUMEN

The blastocyst has long been a hallmark system of study in developmental biology due to its importance in mammalian development and clinical relevance for assisted reproductive technologies. In recent years, the blastocyst is emerging as a system of study for mathematical modelling. In this review, we compile, to our knowledge, all models describing preimplantation development. Coupled with experiments, these models have provided insight regarding the morphogenesis and cell-fate specification throughout preimplantation development. In the case of cell-fate specification, theoretical models have provided mechanisms explaining how proportion of cell types are established and maintained when confronted to perturbations. For cell-shape based models, they have described quantitatively how mechanical forces sculpt the blastocyst and even predicted how morphogenesis could be manipulated. As theoretical biology develops, we believe the next critical stage in modelling involves an integration of cell fate and mechanics to provide integrative models of development at distinct spatiotemporal scales. We discuss how, building on a balanced base of mechanical and chemical models, the preimplantation embryo will play a key role in integrating these two faces of the same coin.


Asunto(s)
Blastocisto , Desarrollo Embrionario , Animales , Blastocisto/metabolismo , Diferenciación Celular , Mamíferos , Morfogénesis
19.
Elife ; 102021 04 19.
Artículo en Inglés | MEDLINE | ID: mdl-33871354

RESUMEN

During the first days of mammalian development, the embryo forms the blastocyst, the structure responsible for implanting the mammalian embryo. Consisting of an epithelium enveloping the pluripotent inner cell mass and a fluid-filled lumen, the blastocyst results from a series of cleavage divisions, morphogenetic movements, and lineage specification. Recent studies have identified the essential role of actomyosin contractility in driving cytokinesis, morphogenesis, and fate specification, leading to the formation of the blastocyst. However, the preimplantation development of contractility mutants has not been characterized. Here, we generated single and double maternal-zygotic mutants of non-muscle myosin II heavy chains (NMHCs) to characterize them with multiscale imaging. We found that Myh9 (NMHC II-A) is the major NMHC during preimplantation development as its maternal-zygotic loss causes failed cytokinesis, increased duration of the cell cycle, weaker embryo compaction, and reduced differentiation, whereas Myh10 (NMHC II-B) maternal-zygotic loss is much less severe. Double maternal-zygotic mutants for Myh9 and Myh10 show a much stronger phenotype, failing most of the attempts of cytokinesis. We found that morphogenesis and fate specification are affected but nevertheless carry on in a timely fashion, regardless of the impact of the mutations on cell number. Strikingly, even when all cell divisions fail, the resulting single-celled embryo can initiate trophectoderm differentiation and lumen formation by accumulating fluid in increasingly large vacuoles. Therefore, contractility mutants reveal that fluid accumulation is a cell-autonomous process and that the preimplantation program carries on independently of successful cell division.


Asunto(s)
Blastocisto/metabolismo , División Celular , Mutación , Cadenas Pesadas de Miosina/genética , Miosina Tipo IIB no Muscular/genética , Animales , Ciclo Celular , Diferenciación Celular , Citocinesis , Bases de Datos Genéticas , Técnicas de Cultivo de Embriones , Femenino , Regulación del Desarrollo de la Expresión Génica , Humanos , Ratones Endogámicos C57BL , Ratones Transgénicos , Microscopía por Video , Morfogénesis , Cadenas Pesadas de Miosina/metabolismo , Miosina Tipo IIB no Muscular/metabolismo , Factores de Tiempo , Imagen de Lapso de Tiempo
20.
Curr Opin Cell Biol ; 66: 123-129, 2020 10.
Artículo en Inglés | MEDLINE | ID: mdl-32711300

RESUMEN

During preimplantation development, the mouse embryo forms the blastocyst, which consists of a squamous epithelium enveloping a fluid-filled lumen and a cluster of pluripotent cells. The shaping of the blastocyst into its specific architecture is a prerequisite to implantation and further development of the embryo. Recent studies identified the central role of the actomyosin cortex in generating the forces driving the successive steps of blastocyst morphogenesis. As seen in other developing animals, actomyosin functions across spatial scales from the subcellular to the tissue levels. In addition, the slow development of the mouse embryo reveals that actomyosin contractility operates at multiple timescales with periodic cortical waves of contraction every ∼80 s and tissue remodeling over hours.


Asunto(s)
Actomiosina/metabolismo , Blastocisto/citología , Morfogénesis , Citoesqueleto de Actina , Animales , Desarrollo Embrionario , Ratones , Modelos Biológicos
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