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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
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.
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
5.
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
6.
Cell Mol Gastroenterol Hepatol ; 8(3): 487-511, 2019.
Artículo en Inglés | MEDLINE | ID: mdl-31229598

RESUMEN

BACKGROUND & AIMS: The exocrine pancreas consists of acinar cells that produce digestive enzymes transported to the intestine through a branched ductal epithelium. Chronic pancreatitis is characterized by progressive inflammation, fibrosis, and loss of acinar tissue. These changes of the exocrine tissue are risk factors for pancreatic cancer. The cause of chronic pancreatitis cannot be identified in one quarter of patients. Here, we investigated how duct dysfunction could contribute to pancreatitis development. METHODS: The transcription factor Hnf1b, first expressed in pancreatic progenitors, is strictly restricted to ductal cells from late embryogenesis. We previously showed that Hnf1b is crucial for pancreas morphogenesis but its postnatal role still remains unelucidated. To investigate the role of pancreatic ducts in exocrine homeostasis, we inactivated the Hnf1b gene in vivo in mouse ductal cells. RESULTS: We uncovered that postnatal Hnf1b inactivation in pancreatic ducts leads to chronic pancreatitis in adults. Hnf1bΔduct mutants show dilatation of ducts, loss of acinar cells, acinar-to-ductal metaplasia, and lipomatosis. We deciphered the early events involved, with down-regulation of cystic disease-associated genes, loss of primary cilia, up-regulation of signaling pathways, especially the Yap pathway, which is involved in acinar-to-ductal metaplasia. Remarkably, Hnf1bΔduct mutants developed pancreatic intraepithelial neoplasia and promote pancreatic intraepithelial neoplasia progression in concert with KRAS. We further showed that adult Hnf1b inactivation in pancreatic ducts is associated with impaired regeneration after injury, with persistent metaplasia and initiation of neoplasia. CONCLUSIONS: Loss of Hnf1b in ductal cells leads to chronic pancreatitis and neoplasia. This study shows that Hnf1b deficiency may contribute to diseases of the exocrine pancreas and gains further insight into the etiology of pancreatitis and tumorigenesis.


Asunto(s)
Carcinoma in Situ/genética , Eliminación de Gen , Factor Nuclear 1-beta del Hepatocito/genética , Conductos Pancreáticos/crecimiento & desarrollo , Neoplasias Pancreáticas/genética , Pancreatitis/genética , Animales , Animales Recién Nacidos , Carcinoma in Situ/metabolismo , Femenino , Predisposición Genética a la Enfermedad , Factor Nuclear 1-beta del Hepatocito/metabolismo , Homeostasis , Humanos , Ratones , Páncreas Exocrino/metabolismo , Conductos Pancreáticos/metabolismo , Neoplasias Pancreáticas/metabolismo , Pancreatitis/complicaciones , Pancreatitis/metabolismo , Transducción de Señal
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