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1.
Childs Nerv Syst ; 40(4): 1287-1294, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38240785

RESUMO

Intramedullary spinal capillary hemangioma is a rare occurrence in pediatric patients, and only limited cases have been reported. This study presents the first two cases of spinal capillary hemangioma co-present with retained medullary cord and one case of spinal capillary hemangioma with lumbosacral lipomatous malformation. Previous literature on ten patients with this pathology was reviewed. We speculated pathogenesis, imaging features, and histopathologic findings of the disease.


Assuntos
Hemangioma Capilar , Lipoma , Neoplasias da Medula Espinal , Neoplasias da Coluna Vertebral , Humanos , Hemangioma Capilar/complicações , Hemangioma Capilar/patologia , Hemangioma Capilar/cirurgia , Lipoma/complicações , Imageamento por Ressonância Magnética , Neurulação , Medula Espinal/cirurgia , Neoplasias da Medula Espinal/cirurgia , Neoplasias da Coluna Vertebral/complicações , Lactente , Feminino
2.
Methods Mol Biol ; 2746: 73-85, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38070081

RESUMO

Whole-mount in situ hybridization is cable to harness the inherent advantages of zebrafish as a model organism for developmental biology, particularly when visualizing the formation of the neural tube, specifically at the level of the midbrain-hindbrain boundary. The size and transparency of developing zebrafish embryos allow for the visualization of neural markers in vivo along the length of the developing zebrafish central nervous system. In practice, this technique is useful for examining defects in neurulation and midbrain-hindbrain boundary formation that may arise following gene manipulation, for example, CRISPR mutagenesis. This method describes the process of embryo collection and preparation, RNA probe transcription, probe hybridization in vivo, as well as the process of probe detection and visualization.


Assuntos
Neurulação , Peixe-Zebra , Animais , Peixe-Zebra/genética , Regulação da Expressão Gênica no Desenvolvimento , Mesencéfalo , Rombencéfalo , Hibridização In Situ
3.
Emerg Top Life Sci ; 7(4): 423-437, 2023 Dec 18.
Artigo em Inglês | MEDLINE | ID: mdl-38087891

RESUMO

Neurulation is a critical step in early embryonic development, giving rise to the neural tube, the primordium of the central nervous system in amniotes. Understanding this complex, multi-scale, multi-tissue morphogenetic process is essential to provide insights into normal development and the etiology of neural tube defects. Innovations in tissue engineering have fostered the generation of pluripotent stem cell-based in vitro models, including organoids, that are emerging as unique tools for delving into neurulation mechanisms, especially in the context of human development. Each model captures specific aspects of neural tube morphogenesis, from epithelialization to neural tissue elongation, folding and cavitation. In particular, the recent models of human and mouse trunk morphogenesis, such as gastruloids, that form a spinal neural plate-like or neural tube-like structure are opening new avenues to study normal and pathological neurulation. Here, we review the morphogenetic events generating the neural tube in the mammalian embryo and questions that remain unanswered. We discuss the advantages and limitations of existing in vitro models of neurulation and possible future technical developments.


Assuntos
Defeitos do Tubo Neural , Neurulação , Camundongos , Animais , Humanos , Neurulação/fisiologia , Tubo Neural , Placa Neural , Células-Tronco , Mamíferos
4.
J Med Genet ; 60(12): 1146-1152, 2023 Nov 27.
Artigo em Inglês | MEDLINE | ID: mdl-37775263

RESUMO

Congenital vertebral malformations (CVMs) and neural tube defects (NTDs) are common birth defects affecting the spine and nervous system, respectively, due to defects in somitogenesis and neurulation. Somitogenesis and neurulation rely on factors secreted from neighbouring tissues and the integrity of the axial structure. Crucial signalling pathways like Wnt, Notch and planar cell polarity regulate somitogenesis and neurulation with significant crosstalk. While previous studies suggest an association between CVMs and NTDs, the exact mechanism underlying this relationship remains unclear. In this review, we explore embryonic development, signalling pathways and clinical phenotypes involved in the association between CVMs and NTDs. Moreover, we provide a summary of syndromes that exhibit occurrences of both CVMs and NTDs. We aim to provide insights into the potential mechanisms underlying the association between CVMs and NTDs, thereby facilitating clinical diagnosis and management of these anomalies.


Assuntos
Defeitos do Tubo Neural , Feminino , Gravidez , Humanos , Defeitos do Tubo Neural/epidemiologia , Defeitos do Tubo Neural/genética , Coluna Vertebral/metabolismo , Desenvolvimento Embrionário , Neurulação/genética , Transdução de Sinais/genética
5.
Biol Rev Camb Philos Soc ; 98(6): 2271-2283, 2023 12.
Artigo em Inglês | MEDLINE | ID: mdl-37534608

RESUMO

Neurulation transforms the neuroectoderm into the neural tube. This transformation relies on reorganising the configurational relationships between the orientations of intrinsic polarities of neighbouring cells. These orientational intercellular relationships are established, maintained, and modulated by orientational cell adhesions (OCAs). Here, using zebrafish (Danio rerio) neurulation as a major model, we propose a new perspective on how OCAs contribute to the parallel, antiparallel, and opposing intercellular relationships that underlie the neural plate-keel-rod-tube transformation, a stepwise process of cell aggregation followed by cord hollowing. We also discuss how OCAs in neurulation may be regulated by various adhesion molecules, including cadherins, Eph/Ephrins, Claudins, Occludins, Crumbs, Na+ /K+ -ATPase, and integrins. By comparing neurulation among species, we reveal that antiparallel OCAs represent a conserved mechanism for the fusion of the neural tube. Throughout, we highlight some outstanding questions regarding OCAs in neurulation. Answers to these questions will help us understand better the mechanisms of tubulogenesis of many tissues.


Assuntos
Neurulação , Peixe-Zebra , Animais , Adesão Celular , Tubo Neural/metabolismo , Placa Neural/metabolismo
6.
Adv Tech Stand Neurosurg ; 47: 225-234, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37640877

RESUMO

Terminal myelocystocele (TMC) has been a puzzling entity of spinal dysraphism. It is found in the sacrococcygeal region usually forming a subcutaneous hump of various sizes. The wide variation of its morphology has been clarified by defining the essential and nonessential features as described in this chapter. Although it is not a common entity, TMC is attractive in that a highly plausible hypothesis on its pathoembryogenesis has been proposed based on observations on the secondary neurulation of the chick embryo. In this chapter, the embryology will be described, followed by the surgical strategy in accordance with the embryogenesis. The clinical features and prognosis will also be presented in detail.


Assuntos
Meningomielocele , Defeitos do Tubo Neural , Disrafismo Espinal , Embrião de Galinha , Animais , Humanos , Neurulação , Meningomielocele/cirurgia , Defeitos do Tubo Neural/cirurgia , Desenvolvimento Embrionário
7.
Adv Tech Stand Neurosurg ; 47: 215-223, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37640876

RESUMO

Retained medullary cord (RMC) is a defect resulting from impaired secondary neurulation. Intraoperatively, RMC is recognizable as an elongated cord-like structure caudal to the conus, that contains histologically confirmed neuroglial components and a lumen with an ependymal lining. It characteristically does not possess neurological function. This chapter aims to summarize (1) the mechanisms that lead to the occurrence of RMC; (2) the various forms of RMC, such as cystic RMC and 'possible RMC', and (3) the treatment strategies, especially untethering through limited exposure.


Assuntos
Distrofias de Cones e Bastonetes , Neurulação , Humanos , Linfonodos
8.
Trends Endocrinol Metab ; 34(9): 539-553, 2023 09.
Artigo em Inglês | MEDLINE | ID: mdl-37468429

RESUMO

Changes in maternal nutrient availability due to diet or disease significantly increase the risk of neural tube defects (NTDs). Because the incidence of metabolic disease continues to rise, it is urgent that we better understand how altered maternal nutrient levels can influence embryonic neural tube development. Furthermore, primary neurulation occurs before placental function during a period of histiotrophic nutrient exchange. In this review we detail how maternal metabolites are transported by the yolk sac to the developing embryo. We discuss recent advances in understanding how altered maternal levels of essential nutrients disrupt development of the neuroepithelium, and identify points of intersection between metabolic pathways that are crucial for NTD prevention.


Assuntos
Ácido Fólico , Defeitos do Tubo Neural , Humanos , Feminino , Gravidez , Ácido Fólico/metabolismo , Tubo Neural/metabolismo , Neurulação , Placenta/metabolismo , Defeitos do Tubo Neural/etiologia , Defeitos do Tubo Neural/metabolismo , Defeitos do Tubo Neural/prevenção & controle
9.
Development ; 150(14)2023 07 15.
Artigo em Inglês | MEDLINE | ID: mdl-37390294

RESUMO

Caudal developmental defects, including caudal regression, caudal dysgenesis and sirenomelia, are devastating conditions affecting the skeletal, nervous, digestive, reproductive and excretory systems. Defects in mesodermal migration and blood supply to the caudal region have been identified as possible causes of caudal developmental defects, but neither satisfactorily explains the structural malformations in all three germ layers. Here, we describe caudal developmental defects in transmembrane protein 132a (Tmem132a) mutant mice, including skeletal, posterior neural tube closure, genitourinary tract and hindgut defects. We show that, in Tmem132a mutant embryos, visceral endoderm fails to be excluded from the medial region of early hindgut, leading directly to the loss or malformation of cloaca-derived genitourinary and gastrointestinal structures, and indirectly to the neural tube and kidney/ureter defects. We find that TMEM132A mediates intercellular interaction, and physically interacts with planar cell polarity (PCP) regulators CELSR1 and FZD6. Genetically, Tmem132a regulates neural tube closure synergistically with another PCP regulator Vangl2. In summary, we have identified Tmem132a as a new regulator of PCP, and hindgut malformation as the underlying cause of developmental defects in multiple caudal structures.


Assuntos
Defeitos do Tubo Neural , Camundongos , Animais , Defeitos do Tubo Neural/metabolismo , Tubo Neural/metabolismo , Neurulação , Camadas Germinativas/metabolismo , Polaridade Celular/fisiologia , Proteínas de Membrana/genética , Proteínas de Membrana/metabolismo
10.
Cell ; 186(10): 2078-2091.e18, 2023 05 11.
Artigo em Inglês | MEDLINE | ID: mdl-37172562

RESUMO

Neural tube (NT) defects arise from abnormal neurulation and result in the most common birth defects worldwide. Yet, mechanisms of primate neurulation remain largely unknown due to prohibitions on human embryo research and limitations of available model systems. Here, we establish a three-dimensional (3D) prolonged in vitro culture (pIVC) system supporting cynomolgus monkey embryo development from 7 to 25 days post-fertilization. Through single-cell multi-omics analyses, we demonstrate that pIVC embryos form three germ layers, including primordial germ cells, and establish proper DNA methylation and chromatin accessibility through advanced gastrulation stages. In addition, pIVC embryo immunofluorescence confirms neural crest formation, NT closure, and neural progenitor regionalization. Finally, we demonstrate that the transcriptional profiles and morphogenetics of pIVC embryos resemble key features of similarly staged in vivo cynomolgus and human embryos. This work therefore describes a system to study non-human primate embryogenesis through advanced gastrulation and early neurulation.


Assuntos
Defeitos do Tubo Neural , Neurulação , Técnicas de Cultura de Tecidos , Animais , Humanos , Blastocisto , Embrião de Mamíferos , Desenvolvimento Embrionário , Macaca fascicularis , Defeitos do Tubo Neural/genética , Defeitos do Tubo Neural/patologia , Técnicas de Cultura de Tecidos/métodos
11.
Dis Model Mech ; 16(3)2023 03 01.
Artigo em Inglês | MEDLINE | ID: mdl-36916392

RESUMO

Understanding the molecular mechanisms that lead to birth defects is an important step towards improved primary prevention. Mouse embryos homozygous for the Kumba (Ku) mutant allele of Zic2 develop severe spina bifida with complete lack of dorsolateral hinge points (DLHPs) in the neuroepithelium. Bone morphogenetic protein (BMP) signalling is overactivated in Zic2Ku/Ku embryos, and the BMP inhibitor dorsomorphin partially rescues neural tube closure in cultured embryos. RhoA signalling is also overactivated, with accumulation of actomyosin in the Zic2Ku/Ku neuroepithelium, and the myosin inhibitor Blebbistatin partially normalises neural tube closure. However, dorsomorphin and Blebbistatin differ in their effects at tissue and cellular levels: DLHP formation is rescued by dorsomorphin but not Blebbistatin, whereas abnormal accumulation of actomyosin is rescued by Blebbistatin but not dorsomorphin. These findings suggest a dual mechanism of spina bifida origin in Zic2Ku/Ku embryos: faulty BMP-dependent formation of DLHPs and RhoA-dependent F-actin accumulation in the neuroepithelium. Hence, we identify a multi-pathway origin of spina bifida in a mammalian system that may provide a developmental basis for understanding the corresponding multifactorial human defects.


Assuntos
Defeitos do Tubo Neural , Disrafismo Espinal , Camundongos , Animais , Humanos , Tubo Neural/metabolismo , Actomiosina/metabolismo , Defeitos do Tubo Neural/genética , Neurulação , Mamíferos/metabolismo , Proteínas Nucleares/metabolismo , Fatores de Transcrição/metabolismo
12.
Int J Mol Sci ; 24(3)2023 Jan 21.
Artigo em Inglês | MEDLINE | ID: mdl-36768481

RESUMO

Neurulation is a crucial process in the formation of the central nervous system (CNS), which begins with the folding and fusion of the neural plate, leading to the generation of the neural tube and subsequent development of the brain and spinal cord. Environmental and genetic factors that interfere with the neurulation process promote neural tube defects (NTDs). Connexins (Cxs) are transmembrane proteins that form gap junctions (GJs) and hemichannels (HCs) in vertebrates, allowing cell-cell (GJ) or paracrine (HCs) communication through the release of ATP, glutamate, and NAD+; regulating processes such as cell migration and synaptic transmission. Changes in the state of phosphorylation and/or the intracellular redox potential activate the opening of HCs in different cell types. Cxs such as Cx43 and Cx32 have been associated with proliferation and migration at different stages of CNS development. Here, using molecular and cellular biology techniques (permeability), we demonstrate the expression and functionality of HCs-Cxs, including Cx46 and Cx32, which are associated with the release of ATP during the neurulation process in Xenopus laevis. Furthermore, applications of FGF2 and/or changes in intracellular redox potentials (DTT), well known HCs-Cxs modulators, transiently regulated the ATP release in our model. Importantly, the blockade of HCs-Cxs by carbenoxolone (CBX) and enoxolone (ENX) reduced ATP release with a concomitant formation of NTDs. We propose two possible and highly conserved binding sites (N and E) in Cx46 that may mediate the pharmacological effect of CBX and ENX on the formation of NTDs. In summary, our results highlight the importance of ATP release mediated by HCs-Cxs during neurulation.


Assuntos
Conexinas , Defeitos do Tubo Neural , Animais , Conexinas/metabolismo , Neurulação , Junções Comunicantes/metabolismo , Tubo Neural/metabolismo , Defeitos do Tubo Neural/metabolismo , Trifosfato de Adenosina/metabolismo
13.
Sci Rep ; 13(1): 263, 2023 01 06.
Artigo em Inglês | MEDLINE | ID: mdl-36609620

RESUMO

Neural tube closure (NTC) is a complex process of embryonic development involving molecular, cellular, and biomechanical mechanisms. While the genetic factors and biochemical signaling have been extensively investigated, the role of tissue biomechanics remains mostly unexplored due to the lack of tools. Here, we developed an optical modality that can conduct time-lapse mechanical imaging of neural plate tissue as the embryo is experiencing neurulation. This technique is based on the combination of a confocal Brillouin microscope and a modified ex ovo culturing of chick embryo with an on-stage incubator. With this technique, for the first time, we captured the mechanical evolution of the neural plate tissue with live embryos. Specifically, we observed the continuous increase in tissue modulus of the neural plate during NTC for ex ovo cultured embryos, which is consistent with the data of in ovo culture as well as previous studies. Beyond that, we found that the increase in tissue modulus was highly correlated with the tissue thickening and bending. We foresee this non-contact and label-free technique opening new opportunities to understand the biomechanical mechanisms in embryonic development.


Assuntos
Microscopia , Neurulação , Animais , Feminino , Gravidez , Embrião de Galinha , Microscopia/métodos , Tubo Neural , Imagem com Lapso de Tempo , Desenvolvimento Embrionário
14.
Ann Anat ; 247: 152057, 2023 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-36702366

RESUMO

Human embryology is a complex topic that brings together core components of anatomy and physiology to describe the developmental process from fertilisation to birth. Embryonic development is a challenging topic of study that is core to the curricula for health science students. There are challenges ingrained in teaching and learning embryology, due to the three-dimensional dynamic processes that occur as the embryo develops. This study aimed to develop and assess two newly developed animations depicting key processes in embryology, namely gastrulation and neurulation, as supplemental learning aids for students. Indeed, animated teaching tools to enhance the learning of gastrulation and neurulation are not widely available. A multi-disciplinary team of physiologists, biochemists, anatomists, and a computer scientist developed the animation sets. A student cohort of 81 first-year health science students were enrolled in this study over a period of three academic years. Both animations are in line with the course content of the first-year health science students undertaking the Human Health and Disease BSc at Trinity College Dublin, who were the study participants. Participants were randomly assigned to a non-animation control group and an animation group. Each set of animated teaching aids was broken down into individual clips which were given identifiable headings to allow the user to interchange between clips to facilitate a more personal learning experience. The animation group had open access to the animations for a three-week period. Questionnaires were designed to assess participants' attitude to the animations and their knowledge of embryology, both at the start of the study and three weeks later following access to the animations. Data presented herein indicate that students incorporated the animated teaching aids into digital home study and that the use of the animations acted as a supplemental tool that increased student knowledge in key areas of human embryology. From a qualitative point of view, students described the animations as enjoyable and helpful in visualising complex processes. This study indicates that the development of gastrulation and neurulation animated learning tools allow for a more engaging learning experience, facilitating student's engagement with academically challenging concepts in human embryology.


Assuntos
Instrução por Computador , Humanos , Neurulação , Gastrulação , Estudantes , Aprendizagem , Ensino
15.
Methods Mol Biol ; 2608: 147-162, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-36653707

RESUMO

Zippering is a phenomenon of tissue morphogenesis whereby fusion between opposing epithelia progresses unidirectionally over significant distances, similar to the travel of a zip fastener, to ultimately ensure closure of an opening. A comparable process can be observed during Drosophila dorsal closure and mammalian wound healing, while zippering is employed by numerous organs such as the optic fissure, palatal shelves, tracheoesophageal foregut, and presumptive genitalia to mediate tissue sealing during normal embryonic development. Particularly striking is zippering propagation during neural tube morphogenesis, where the fusion point travels extensively along the embryonic axis to ensure closure of the neural tube. Advances in time-lapse microscopy and culture conditions have opened the opportunity for successful imaging of whole-mouse embryo development over time, providing insights into the precise cellular behavior underlying zippering propagation. Studies in mouse and the ascidian Ciona have revealed the fine-tuned cell shape changes and junction remodeling which occur at the site of zippering during neural tube morphogenesis. Here, we describe a step-by-step method for imaging at single-cell resolution the process of zippering and tissue remodeling which occurs during closure of the spinal neural tube in mouse. We also provide instructions and suggestions for quantitative morphometric analysis of cell behavior during zippering progression. This procedure can be further combined with genetic mutant models (e.g., knockouts), offering the possibility of studying the dynamics of tissue fusion and zippering propagation, which underlie a wide range of open neural tube defects.


Assuntos
Tubo Neural , Neurulação , Animais , Camundongos , Morfogênese , Desenvolvimento Embrionário , Epitélio , Drosophila , Mamíferos
16.
Cell Mol Life Sci ; 79(12): 586, 2022 Nov 12.
Artigo em Inglês | MEDLINE | ID: mdl-36369349

RESUMO

Gastrulation and neurulation are successive morphogenetic processes that play key roles in shaping the basic embryonic body plan. Importantly, they operate through common cellular and molecular mechanisms to set up the three spatially organized germ layers and to close the neural tube. During gastrulation and neurulation, convergent extension movements driven by cell intercalation and oriented cell division generate major forces to narrow the germ layers along the mediolateral axis and elongate the embryo in the anteroposterior direction. Apical constriction also makes an important contribution to promote the formation of the blastopore and the bending of the neural plate. Planar cell polarity proteins are major regulators of asymmetric cell behaviors and critically involved in a wide variety of developmental processes, from gastrulation and neurulation to organogenesis. Mutations of planar cell polarity genes can lead to general defects in the morphogenesis of different organs and the co-existence of distinct congenital diseases, such as spina bifida, hearing deficits, kidney diseases, and limb elongation defects. This review outlines our current understanding of non-canonical Wnt signaling, commonly known as Wnt/planar cell polarity signaling, in regulating morphogenetic movements of gastrulation and neural tube closure during development and disease. It also attempts to identify unanswered questions that deserve further investigations.


Assuntos
Defeitos do Tubo Neural , Neurulação , Humanos , Neurulação/genética , Gastrulação/genética , Polaridade Celular/genética , Via de Sinalização Wnt/genética , Tubo Neural/metabolismo , Morfogênese/genética , Defeitos do Tubo Neural/genética , Defeitos do Tubo Neural/metabolismo
17.
Biochem Biophys Res Commun ; 635: 244-251, 2022 12 20.
Artigo em Inglês | MEDLINE | ID: mdl-36283337

RESUMO

Neural tube closure is a dynamic morphogenic event in early embryonic development. Perturbations of this process through either environmental or genetic factors induce the severe congenital malformations known collectively as neural tube defects (NTDs). Deficiencies in maternal folate intake have long been associated with NTDs, as have mutations in critical neurulation genes that include the Grainyhead-like 3 (Grhl3) gene. Mice lacking this gene exhibit fully penetrant thoraco-lumbo-sacral spina bifida and a low incidence of exencephaly. Previous studies have shown that exposure of pregnant mice carrying hypomorphic Grhl3 alleles to exogenous retinoic acid (RA) increases the incidence and severity of NTDs in their offspring. Here, we demonstrate that inhibition of RA signaling using a high affinity pan-RA receptor antagonist administered to pregnant mice at E7.5 induces fully penetrant exencephaly and more severe spina bifida in Grhl3-null mice. Later administration, although prior to neural tube closure has no effect. Similarly, blockade of RA in the context of reduced expression of Grhl2, a related gene known to induce NTDs, has no effect. Taken together, these findings provide new insights into the complexities of the interplay between RA signaling and Grhl3-induced neurulation.


Assuntos
Defeitos do Tubo Neural , Disrafismo Espinal , Gravidez , Feminino , Camundongos , Animais , Fatores de Transcrição/metabolismo , Neurulação/genética , Tubo Neural/metabolismo , Tretinoína/farmacologia , Tretinoína/metabolismo , Defeitos do Tubo Neural/metabolismo , Camundongos Knockout , Coluna Vertebral/metabolismo , Proteínas de Ligação a DNA/metabolismo
18.
Childs Nerv Syst ; 38(11): 2101-2111, 2022 11.
Artigo em Inglês | MEDLINE | ID: mdl-36181521

RESUMO

INTRODUCTION: The caudal cell mass (CCM) is an aggregate of undifferentiated pluripotent cells and the main player in secondary neurulation. Previous studies have elucidated the dynamic fate of the multipotent cell lineages, with a recent interest in the neuromesodermal progenitors. However, a transcriptomic analysis of the CCM during secondary neurulation has not been performed yet. METHODS: We analyzed RNA sequencing data of CCM samples at three different developmental stages of chicken embryos; HH16 (largest CCM phase), HH20 (secondary neural tube formation phase), and HH28 (degeneration phase). RESULTS: The transcriptomic profiles were clearly distinguishable according to developmental stage, and HH20 was shown to have not only intermediate, but also unique properties in secondary neurulation. A total of 10,666 differentially expressed genes, including FGF18 and GDF11, were identified and enriched in several gene ontologies related to embryogenesis or organogenesis. We also found that genes encoding transcription factors, such as TWIST2, IRX4, HOXB4, HOXD13, LIN28A, CDX4, and Brachyury, were among the top-ranked differentially expressed genes. CONCLUSION: Through transcriptomic profiling, we provided a picture of the developmental process of the CCM. We identified several key molecules or pathways involved in secondary neurulation and the pathogenesis of related diseases.


Assuntos
Neurulação , Transcriptoma , Animais , Embrião de Galinha , Perfilação da Expressão Gênica , Fatores de Transcrição/genética
19.
Cell Stem Cell ; 29(10): 1445-1458.e8, 2022 10 06.
Artigo em Inglês | MEDLINE | ID: mdl-36084657

RESUMO

Several in vitro models have been developed to recapitulate mouse embryogenesis solely from embryonic stem cells (ESCs). Despite mimicking many aspects of early development, they fail to capture the interactions between embryonic and extraembryonic tissues. To overcome this difficulty, we have developed a mouse ESC-based in vitro model that reconstitutes the pluripotent ESC lineage and the two extraembryonic lineages of the post-implantation embryo by transcription-factor-mediated induction. This unified model recapitulates developmental events from embryonic day 5.5 to 8.5, including gastrulation; formation of the anterior-posterior axis, brain, and a beating heart structure; and the development of extraembryonic tissues, including yolk sac and chorion. Comparing single-cell RNA sequencing from individual structures with time-matched natural embryos identified remarkably similar transcriptional programs across lineages but also showed when and where the model diverges from the natural program. Our findings demonstrate an extraordinary plasticity of ESCs to self-organize and generate a whole-embryo-like structure.


Assuntos
Embrião de Mamíferos , Neurulação , Animais , Desenvolvimento Embrionário , Células-Tronco Embrionárias , Camundongos , Células-Tronco Embrionárias Murinas
20.
Dev Biol ; 491: 105-112, 2022 11.
Artigo em Inglês | MEDLINE | ID: mdl-36113571

RESUMO

During neural tube closure, neural ectoderm cells constrict their apical surfaces to bend and fold the tissue into a tube that will become the central nervous system. Recent data from mice and humans with neural tube defects suggest that key genes required for neural tube closure can exert non-cell autonomous effects on cell behavior, but the nature of these effects remains obscure. Here, we coupled tissue-scale, high-resolution time-lapse imaging of the closing neural tube of Xenopus to multivariate regression modeling, and we show that medial actin accumulation drives apical constriction non-autonomously in neighborhoods of cells, rather than solely in individual cells. To further explore this effect, we examined mosaic crispant embryos and identified both autonomous and non-autonomous effects of the apical constriction protein Shroom3.


Assuntos
Actinas , Tubo Neural , Actinas/metabolismo , Animais , Humanos , Camundongos , Proteínas dos Microfilamentos/metabolismo , Morfogênese , Tubo Neural/metabolismo , Neurulação/fisiologia , Análise de Regressão
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