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1.
Curr Top Dev Biol ; 159: 232-271, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38729677

RESUMO

The anterior-to-posterior (head-to-tail) body axis is extraordinarily diverse among vertebrates but conserved within species. Body axis development requires a population of axial progenitors that resides at the posterior of the embryo to sustain elongation and is then eliminated once axis extension is complete. These progenitors occupy distinct domains in the posterior (tail-end) of the embryo and contribute to various lineages along the body axis. The subset of axial progenitors with neuromesodermal competency will generate both the neural tube (the precursor of the spinal cord), and the trunk and tail somites (producing the musculoskeleton) during embryo development. These axial progenitors are called Neuromesodermal Competent cells (NMCs) and Neuromesodermal Progenitors (NMPs). NMCs/NMPs have recently attracted interest beyond the field of developmental biology due to their clinical potential. In the mouse, the maintenance of neuromesodermal competency relies on a fine balance between a trio of known signals: Wnt/ß-catenin, FGF signalling activity and suppression of retinoic acid signalling. These signals regulate the relative expression levels of the mesodermal transcription factor Brachyury and the neural transcription factor Sox2, permitting the maintenance of progenitor identity when co-expressed, and either mesoderm or neural lineage commitment when the balance is tilted towards either Brachyury or Sox2, respectively. Despite important advances in understanding key genes and cellular behaviours involved in these fate decisions, how the balance between mesodermal and neural fates is achieved remains largely unknown. In this chapter, we provide an overview of signalling and gene regulatory networks in NMCs/NMPs. We discuss mutant phenotypes associated with axial defects, hinting at the potential significant role of lesser studied proteins in the maintenance and differentiation of the progenitors that fuel axial elongation.


Assuntos
Padronização Corporal , Mesoderma , Animais , Padronização Corporal/genética , Mesoderma/metabolismo , Mesoderma/citologia , Mesoderma/embriologia , Regulação da Expressão Gênica no Desenvolvimento , Humanos , Transdução de Sinais , Proteínas com Domínio T/metabolismo , Proteínas com Domínio T/genética , Diferenciação Celular , Cabeça/embriologia
2.
Curr Top Dev Biol ; 159: 372-405, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38729682

RESUMO

The Segmentation Clock is a tissue-level patterning system that enables the segmentation of the vertebral column precursors into transient multicellular blocks called somites. This patterning system comprises a set of elements that are essential for correct segmentation. Under the so-called "Clock and Wavefront" model, the system consists of two elements, a genetic oscillator that manifests itself as traveling waves of gene expression, and a regressing wavefront that transforms the temporally periodic signal encoded in the oscillations into a permanent spatially periodic pattern of somite boundaries. Over the last twenty years, every new discovery about the Segmentation Clock has been tightly linked to the nomenclature of the "Clock and Wavefront" model. This constrained allocation of discoveries into these two elements has generated long-standing debates in the field as what defines molecularly the wavefront and how and where the interaction between the two elements establishes the future somite boundaries. In this review, we propose an expansion of the "Clock and Wavefront" model into three elements, "Clock", "Wavefront" and signaling gradients. We first provide a detailed description of the components and regulatory mechanisms of each element, and we then examine how the spatiotemporal integration of the three elements leads to the establishment of the presumptive somite boundaries. To be as exhaustive as possible, we focus on the Segmentation Clock in zebrafish. Furthermore, we show how this three-element expansion of the model provides a better understanding of the somite formation process and we emphasize where our current understanding of this patterning system remains obscure.


Assuntos
Padronização Corporal , Regulação da Expressão Gênica no Desenvolvimento , Mesoderma , Somitos , Animais , Padronização Corporal/genética , Somitos/embriologia , Somitos/metabolismo , Mesoderma/embriologia , Mesoderma/metabolismo , Mesoderma/citologia , Peixe-Zebra/embriologia , Peixe-Zebra/genética , Transdução de Sinais , Relógios Biológicos/genética
3.
FASEB J ; 38(9): e23632, 2024 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-38686936

RESUMO

The upper Müllerian duct (MD) is patterned and specified into two morphologically and functionally distinct organs, the oviduct and uterus. It is known that this regionalization process is instructed by inductive signals from the adjacent mesenchyme. However, the interaction landscape between epithelium and mesenchyme during upper MD development remains largely unknown. Here, we performed single-cell transcriptomic profiling of mouse neonatal oviducts and uteri at the initiation of MD epithelial differentiation (postnatal day 3). We identified major cell types including epithelium, mesenchyme, pericytes, mesothelium, endothelium, and immune cells in both organs with established markers. Moreover, we uncovered region-specific epithelial and mesenchymal subpopulations and then deduced region-specific ligand-receptor pairs mediating mesenchymal-epithelial interactions along the craniocaudal axis. Unexpectedly, we discovered a mesenchymal subpopulation marked by neurofilaments with specific localizations at the mesometrial pole of both the neonatal oviduct and uterus. Lastly, we analyzed and revealed organ-specific signature genes of pericytes and mesothelial cells. Taken together, our study enriches our knowledge of upper MD development, and provides a manageable list of potential genes, pathways, and region-specific cell subtypes for future functional studies.


Assuntos
Ductos Paramesonéfricos , Oviductos , Análise de Célula Única , Transcriptoma , Útero , Animais , Feminino , Camundongos , Útero/metabolismo , Útero/citologia , Ductos Paramesonéfricos/metabolismo , Oviductos/metabolismo , Oviductos/citologia , Perfilação da Expressão Gênica , Animais Recém-Nascidos , Diferenciação Celular , Mesoderma/metabolismo , Mesoderma/citologia , Células Epiteliais/metabolismo , Camundongos Endogâmicos C57BL , Regulação da Expressão Gênica no Desenvolvimento
4.
Int J Oral Sci ; 16(1): 33, 2024 Apr 23.
Artigo em Inglês | MEDLINE | ID: mdl-38654018

RESUMO

Precise orchestration of cell fate determination underlies the success of scaffold-based skeletal regeneration. Despite extensive studies on mineralized parenchymal tissue rebuilding, regenerating and maintaining undifferentiated mesenchyme within calvarial bone remain very challenging with limited advances yet. Current knowledge has evidenced the indispensability of rebuilding suture mesenchymal stem cell niches to avoid severe brain or even systematic damage. But to date, the absence of promising therapeutic biomaterials/scaffolds remains. The reason lies in the shortage of fundamental knowledge and methodological evidence to understand the cellular fate regulations of scaffolds. To address these issues, in this study, we systematically investigated the cellular fate determinations and transcriptomic mechanisms by distinct types of commonly used calvarial scaffolds. Our data elucidated the natural processes without scaffold transplantation and demonstrated how different scaffolds altered in vivo cellular responses. A feasible scaffold, polylactic acid electrospinning membrane (PLA), was next identified to precisely control mesenchymal ingrowth and self-renewal to rebuild non-osteogenic suture-like tissue at the defect center, meanwhile supporting proper osteointegration with defect bony edges. Especially, transcriptome analysis and cellular mechanisms underlying the well-orchestrated cell fate determination of PLA were deciphered. This study for the first time cellularly decoded the fate regulations of scaffolds in suture-bony composite defect healing, offering clinicians potential choices for regenerating such complicated injuries.


Assuntos
Regeneração Óssea , Alicerces Teciduais , Transcriptoma , Animais , Regeneração Óssea/fisiologia , Poliésteres , Crânio/cirurgia , Células-Tronco Mesenquimais , Mesoderma/citologia , Diferenciação Celular , Engenharia Tecidual/métodos , Suturas Cranianas , Materiais Biocompatíveis
5.
PLoS One ; 19(4): e0297853, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38635504

RESUMO

During vertebrate embryo development, the body is progressively segmented along the anterior-posterior (A-P) axis early in development. The rate of somite formation is controlled by the somitogenesis embryo clock (EC), which was first described as gene expression oscillations of hairy1 (hes4) in the presomitic mesoderm of chick embryos with 15-20 somites. Here, the EC displays the same periodicity as somite formation, 90 min, whereas the posterior-most somites (44-52) only arise every 150 minutes, matched by a corresponding slower pace of the EC. Evidence suggests that the rostral-most somites are formed faster, however, their periodicity and the EC expression dynamics in these early stages are unknown. In this study, we used time-lapse imaging of chicken embryos from primitive streak to somitogenesis stages with high temporal resolution (3-minute intervals). We measured the length between the anterior-most and the last formed somitic clefts in each captured frame and developed a simple algorithm to automatically infer both the length and time of formation of each somite. We found that the occipital somites (up to somite 5) form at an average rate of 75 minutes, while somites 6 onwards are formed approximately every 90 minutes. We also assessed the expression dynamics of hairy1 using half-embryo explants cultured for different periods of time. This showed that EC hairy1 expression is highly dynamic prior to somitogenesis and assumes a clear oscillatory behaviour as the first somites are formed. Importantly, using ex ovo culture and live-imaging techniques, we showed that the hairy1 expression pattern recapitulates with the formation of each new pair of somites, indicating that somite segmentation is coupled with EC oscillations since the onset of somitogenesis.


Assuntos
Proteínas Aviárias , Somitos , Animais , Embrião de Galinha , Galinhas , Fatores de Transcrição Hélice-Alça-Hélice Básicos/genética , Proteínas Aviárias/genética , Mesoderma/metabolismo
6.
Development ; 151(8)2024 Apr 15.
Artigo em Inglês | MEDLINE | ID: mdl-38602485

RESUMO

Alveologenesis, the final stage in lung development, substantially remodels the distal lung, expanding the alveolar surface area for efficient gas exchange. Secondary crest myofibroblasts (SCMF) exist transiently in the neonatal distal lung and are crucial for alveologenesis. However, the pathways that regulate SCMF function, proliferation and temporal identity remain poorly understood. To address this, we purified SCMFs from reporter mice, performed bulk RNA-seq and found dynamic changes in Hippo-signaling components during alveologenesis. We deleted the Hippo effectors Yap/Taz from Acta2-expressing cells at the onset of alveologenesis, causing a significant arrest in alveolar development. Using single cell RNA-seq, we identified a distinct cluster of cells in mutant lungs with altered expression of marker genes associated with proximal mesenchymal cell types, airway smooth muscle and alveolar duct myofibroblasts. In vitro studies confirmed that Yap/Taz regulates myofibroblast-associated gene signature and contractility. Together, our findings show that Yap/Taz is essential for maintaining functional myofibroblast identity during postnatal alveologenesis.


Assuntos
Diferenciação Celular , Via de Sinalização Hippo , Morfogênese , Miofibroblastos , Proteínas Serina-Treonina Quinases , Alvéolos Pulmonares , Transdução de Sinais , Proteínas de Sinalização YAP , Animais , Camundongos , Miofibroblastos/metabolismo , Miofibroblastos/citologia , Proteínas de Sinalização YAP/metabolismo , Proteínas de Sinalização YAP/genética , Alvéolos Pulmonares/metabolismo , Alvéolos Pulmonares/citologia , Proteínas Serina-Treonina Quinases/metabolismo , Proteínas Serina-Treonina Quinases/genética , Morfogênese/genética , Mesoderma/metabolismo , Proteínas Adaptadoras de Transdução de Sinal/metabolismo , Proteínas Adaptadoras de Transdução de Sinal/genética , Pulmão/metabolismo , Organogênese/genética , Regulação da Expressão Gênica no Desenvolvimento
7.
Artigo em Chinês | MEDLINE | ID: mdl-38563180

RESUMO

Cartilage mesenchyme hamartoma originates from the mesoderm and contains a blend of interstitium and cartilage, which is mostly benign tumor and is a non-neoplastic cartilage lesion with self-limiting hyperplasia. This article reports a infant with cervical chondromesenchymal hamartoma in the neck, the main clinical manifestations of which are asphyxia and acute respiratory distress, and the imaging features are often similar to those of malignant tumors.Radical resection operation under general anesthesia is the main treatment method, and the postoperative pathological diagnosis was cartilage mesenchyme, and immunohistochemistry showed Catenin(-),MDM2(+),CDK4(-),H3K36M(+),Myogenin (-),SMA (-).The clinical characteristics and diagnosis and treatment process of this case are reported and related literature is reviewed.


Assuntos
Cartilagem , Hamartoma , Humanos , Recém-Nascido , Imuno-Histoquímica , Mesoderma/patologia
8.
PLoS Biol ; 22(4): e3002590, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38683849

RESUMO

Brain pericytes are one of the critical cell types that regulate endothelial barrier function and activity, thus ensuring adequate blood flow to the brain. The genetic pathways guiding undifferentiated cells into mature pericytes are not well understood. We show here that pericyte precursor populations from both neural crest and head mesoderm of zebrafish express the transcription factor nkx3.1 develop into brain pericytes. We identify the gene signature of these precursors and show that an nkx3.1-, foxf2a-, and cxcl12b-expressing pericyte precursor population is present around the basilar artery prior to artery formation and pericyte recruitment. The precursors later spread throughout the brain and differentiate to express canonical pericyte markers. Cxcl12b-Cxcr4 signaling is required for pericyte attachment and differentiation. Further, both nkx3.1 and cxcl12b are necessary and sufficient in regulating pericyte number as loss inhibits and gain increases pericyte number. Through genetic experiments, we have defined a precursor population for brain pericytes and identified genes critical for their differentiation.


Assuntos
Encéfalo , Diferenciação Celular , Pericitos , Fatores de Transcrição , Proteínas de Peixe-Zebra , Peixe-Zebra , Pericitos/metabolismo , Pericitos/citologia , Animais , Peixe-Zebra/metabolismo , Peixe-Zebra/embriologia , Peixe-Zebra/genética , Encéfalo/metabolismo , Encéfalo/embriologia , Proteínas de Peixe-Zebra/metabolismo , Proteínas de Peixe-Zebra/genética , Fatores de Transcrição/metabolismo , Fatores de Transcrição/genética , Diferenciação Celular/genética , Proteínas de Homeodomínio/metabolismo , Proteínas de Homeodomínio/genética , Regulação da Expressão Gênica no Desenvolvimento , Crista Neural/metabolismo , Crista Neural/citologia , Mesoderma/metabolismo , Mesoderma/citologia , Transdução de Sinais , Receptores CXCR4/metabolismo , Receptores CXCR4/genética , Quimiocina CXCL12/metabolismo , Quimiocina CXCL12/genética
9.
PLoS Biol ; 22(4): e3002611, 2024 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-38683880

RESUMO

As tissues grow and change shape during animal development, they physically pull and push on each other, and these mechanical interactions can be important for morphogenesis. During Drosophila gastrulation, mesoderm invagination temporally overlaps with the convergence and extension of the ectodermal germband; the latter is caused primarily by Myosin II-driven polarised cell intercalation. Here, we investigate the impact of mesoderm invagination on ectoderm extension, examining possible mechanical and mechanotransductive effects on Myosin II recruitment and polarised cell intercalation. We find that the germband ectoderm is deformed by the mesoderm pulling in the orthogonal direction to germband extension (GBE), showing mechanical coupling between these tissues. However, we do not find a significant change in Myosin II planar polarisation in response to mesoderm invagination, nor in the rate of junction shrinkage leading to neighbour exchange events. We conclude that the main cellular mechanism of axis extension, polarised cell intercalation, is robust to the mesoderm invagination pull. We find, however, that mesoderm invagination slows down the rate of anterior-posterior cell elongation that contributes to axis extension, counteracting the tension from the endoderm invagination, which pulls along the direction of GBE.


Assuntos
Drosophila melanogaster , Ectoderma , Gastrulação , Mesoderma , Miosina Tipo II , Animais , Mesoderma/embriologia , Mesoderma/citologia , Gastrulação/fisiologia , Ectoderma/citologia , Ectoderma/embriologia , Ectoderma/metabolismo , Miosina Tipo II/metabolismo , Drosophila melanogaster/embriologia , Polaridade Celular , Proteínas de Drosophila/metabolismo , Proteínas de Drosophila/genética , Embrião não Mamífero , Morfogênese , Padronização Corporal/fisiologia , Drosophila/embriologia
10.
Stem Cell Reports ; 19(3): 399-413, 2024 Mar 12.
Artigo em Inglês | MEDLINE | ID: mdl-38428414

RESUMO

Degenerative bone disorders have a significant impact on global health, and regeneration of articular cartilage remains a challenge. Existing cell therapies using mesenchymal stromal cells (MSCs) have shown limited efficacy, highlighting the necessity for alternative stem cell sources. Here, we have identified and characterized MSX1+ mesenchymal progenitor cells in the developing limb bud with remarkable osteochondral-regenerative and microenvironment-adaptive capabilities. Single-cell sequencing further revealed the presence of two major cell compositions within the MSX1+ cells, where a distinct PDGFRAlow subset retained the strongest osteochondral competency and could efficiently regenerate articular cartilage in vivo. Furthermore, a strategy was developed to generate MSX1+PDGFRAlow limb mesenchyme-like (LML) cells from human pluripotent stem cells that closely resembled their mouse counterparts, which were bipotential in vitro and could directly regenerate damaged cartilage in a mouse injury model. Together, our results indicated that MSX1+PDGFRAlow LML cells might be a prominent stem cell source for human cartilage regeneration.


Assuntos
Cartilagem Articular , Transplante de Células-Tronco Mesenquimais , Células-Tronco Mesenquimais , Humanos , Camundongos , Animais , Células-Tronco , Terapia Baseada em Transplante de Células e Tecidos , Mesoderma , Transplante de Células-Tronco Mesenquimais/métodos , Diferenciação Celular , Fator de Transcrição MSX1/genética
11.
Results Probl Cell Differ ; 72: 27-60, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38509251

RESUMO

As epiblast cells initiate development into various somatic cells, they undergo a large-scale reorganization, called gastrulation. The gastrulation of the epiblast cells produces three groups of cells: the endoderm layer, the collection of miscellaneous mesodermal tissues, and the ectodermal layer, which includes the neural, epidermal, and associated tissues. Most studies of gastrulation have focused on the formation of the tissues that provide the primary route for cell reorganization, that is, the primitive streak, in the chicken and mouse. In contrast, how gastrulation alters epiblast-derived cells has remained underinvestigated. This chapter highlights the regulation of cell and tissue fate via the gastrulation process. The roles and regulatory functions of neuromesodermal progenitors (NMPs) in the gastrulation process, elucidated in the last decade, are discussed in depth to resolve points of confusion. Chicken and mouse embryos, which form a primitive streak as the site of mesoderm precursor ingression, have been investigated extensively. However, primitive streak formation is an exception, even among amniotes. The roles of gastrulation processes in generating various somatic tissues will be discussed broadly.


Assuntos
Gástrula , Gastrulação , Camundongos , Animais , Mesoderma , Endoderma , Desenvolvimento Embrionário
12.
Results Probl Cell Differ ; 72: 119-126, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38509255

RESUMO

Many organs are composed of epithelial and mesenchymal tissue components. These two tissue component types develop via reciprocal interactions. However, for historical and technical reasons, the effects of the mesenchymal components on the epithelium have been emphasized. Well-documented examples are the regionally specific differentiation of the endoderm-derived primitive gut tube under the influence of surrounding mesenchyme. In contrast to a pile of reports on mesenchyme-derived signaling mechanisms, few studies have depicted the epithelial action in depth. This chapter highlights an example of an opposite action from the epithelial side, which was found in esophagus development.


Assuntos
Organogênese , Transdução de Sinais , Epitélio , Mesoderma , Diferenciação Celular
13.
Elife ; 132024 Mar 05.
Artigo em Inglês | MEDLINE | ID: mdl-38441552

RESUMO

The mammary gland is a unique organ that undergoes dynamic alterations throughout a female's reproductive life, making it an ideal model for developmental, stem cell and cancer biology research. Mammary gland development begins in utero and proceeds via a quiescent bud stage before the initial outgrowth and subsequent branching morphogenesis. How mammary epithelial cells transit from quiescence to an actively proliferating and branching tissue during embryogenesis and, importantly, how the branch pattern is determined remain largely unknown. Here, we provide evidence indicating that epithelial cell proliferation and onset of branching are independent processes, yet partially coordinated by the Eda signaling pathway. Through heterotypic and heterochronic epithelial-mesenchymal recombination experiments between mouse mammary and salivary gland tissues and ex vivo live imaging, we demonstrate that unlike previously concluded, the mode of branching is an intrinsic property of the mammary epithelium whereas the pace of growth and the density of ductal tree are determined by the mesenchyme. Transcriptomic profiling and ex vivo and in vivo functional studies in mice disclose that mesenchymal Wnt/ß-catenin signaling, and in particular IGF-1 downstream of it critically regulate mammary gland growth. These results underscore the general need to carefully deconstruct the different developmental processes producing branched organs.


Assuntos
Células Epiteliais , Via de Sinalização Wnt , Camundongos , Animais , Epitélio/metabolismo , Células Epiteliais/fisiologia , Proliferação de Células , Morfogênese , Mesoderma , Glândulas Mamárias Animais/metabolismo
14.
Biol Open ; 13(3)2024 Mar 01.
Artigo em Inglês | MEDLINE | ID: mdl-38451093

RESUMO

Loss of Cdx2 in vivo leads to stunted development of the allantois, an extraembryonic mesoderm-derived structure critical for nutrient delivery and waste removal in the early embryo. Here, we investigate how CDX2 dose-dependently influences the gene regulatory network underlying extraembryonic mesoderm development. By engineering human induced pluripotent stem cells (hiPSCs) consisting of wild-type (WT), heterozygous (CDX2-Het), and homozygous null CDX2 (CDX2-KO) genotypes, differentiating these cells in a 2D gastruloid model, and subjecting these cells to single-nucleus RNA and ATAC sequencing, we identify several pathways that are dose-dependently regulated by CDX2 including VEGF and non-canonical WNT. snATAC-seq reveals that CDX2-Het cells retain a WT-like chromatin accessibility profile, suggesting accessibility alone is not sufficient to drive this variability in gene expression. Because the loss of CDX2 or TBXT phenocopy one another in vivo, we compared differentially expressed genes in our CDX2-KO to those from TBXT-KO hiPSCs differentiated in an analogous experiment. This comparison identifies several communally misregulated genes that are critical for cytoskeletal integrity and tissue permeability. Together, these results clarify how CDX2 dose-dependently regulates gene expression in the extraembryonic mesoderm and reveal pathways that may underlie the defects in vascular development and allantoic elongation seen in vivo.


Assuntos
Fator de Transcrição CDX2 , Dosagem de Genes , Redes Reguladoras de Genes , Células-Tronco Pluripotentes Induzidas , Humanos , Fator de Transcrição CDX2/genética , Diferenciação Celular/genética , Embrião de Mamíferos , Mesoderma
15.
Cells ; 13(6)2024 Mar 18.
Artigo em Inglês | MEDLINE | ID: mdl-38534378

RESUMO

Pluripotent stem cells can be differentiated into all three germ-layers including ecto-, endo-, and mesoderm in vitro. However, the early identification and rapid characterization of each germ-layer in response to chemical and physical induction of differentiation is limited. This is a long-standing issue for rapid and high-throughput screening to determine lineage specification efficiency. Here, we present deep learning (DL) methodologies for predicting and classifying early mesoderm cells differentiated from embryoid bodies (EBs) based on cellular and nuclear morphologies. Using a transgenic murine embryonic stem cell (mESC) line, namely OGTR1, we validated the upregulation of mesodermal genes (Brachyury (T): DsRed) in cells derived from EBs for the deep learning model training. Cells were classified into mesodermal and non-mesodermal (representing endo- and ectoderm) classes using a convolutional neural network (CNN) model called InceptionV3 which achieved a very high classification accuracy of 97% for phase images and 90% for nuclei images. In addition, we also performed image segmentation using an Attention U-Net CNN and obtained a mean intersection over union of 61% and 69% for phase-contrast and nuclear images, respectively. This work highlights the potential of integrating cell culture, imaging technologies, and deep learning methodologies in identifying lineage specification, thus contributing to the advancements in regenerative medicine. Collectively, our trained deep learning models can predict the mesoderm cells with high accuracy based on cellular and nuclear morphologies.


Assuntos
Aprendizado Profundo , Células-Tronco Pluripotentes , Animais , Camundongos , Diferenciação Celular/fisiologia , Camadas Germinativas/metabolismo , Mesoderma/metabolismo
16.
Cells ; 13(6)2024 Mar 21.
Artigo em Inglês | MEDLINE | ID: mdl-38534393

RESUMO

Neuromesodermal progenitors (NMPs), serving as the common origin of neural and paraxial mesodermal development in a large part of the trunk, have recently gained significant attention because of their critical importance in the understanding of embryonic organogenesis and the design of in vitro models of organogenesis. However, the nature of NMPs at many essential points remains only vaguely understood or even incorrectly assumed. Here, we discuss the nature of NMPs, focusing on their dynamic migratory behavior during embryogenesis and the mechanisms underlying their neural vs. mesodermal fate choice. The discussion points include the following: (1) How the sinus rhomboidals is organized; the tissue where the neural or mesodermal fate choice of NMPs occurs. (2) NMPs originating from the broad posterior epiblast are associated with Sox2 N1 enhancer activity. (3) Tbx6-dependent Sox2 repression occurs during NMP-derived paraxial mesoderm development. (4) The nephric mesenchyme, a component of the intermediate mesoderm, was newly identified as an NMP derivative. (5) The transition of embryonic tissue development from tissue-specific progenitors in the anterior part to that from NMPs occurs at the forelimb bud axial level. (6) The coexpression of Sox2 and Bra in NMPs is conditional and is not a hallmark of NMPs. (7) The ability of the NMP pool to sustain axial embryo growth depends on Wnt3a signaling in the NMP population. Current in vitro models of NMPs are also critically reviewed.


Assuntos
Células-Tronco Neurais , Animais , Células-Tronco Neurais/fisiologia , Mesoderma , Camadas Germinativas , Transdução de Sinais , Sistema Nervoso
17.
Development ; 151(6)2024 Mar 15.
Artigo em Inglês | MEDLINE | ID: mdl-38546044

RESUMO

The transcription factor brachyury (TBXT in humans) promotes epithelial-mesenchymal transition (EMT) both during gastrulation and in cancer contexts and is widely used as a marker of nascent mesoderm. In their study, Benoit Bruneau and colleagues reveal the role of TBXT dosage in early human gastrulation. To know more about their work, we spoke to the first author, Emily Bulgar, and the corresponding author, Benoit Bruneau, Professor at the Department of Pediatrics, University of California San Francisco (UCSF) and Director of the Gladstone Institute of Cardiovascular Disease.


Assuntos
Doenças Cardiovasculares , Neoplasias , Humanos , Transição Epitelial-Mesenquimal , Gastrulação , Mesoderma , Fatores de Transcrição
18.
Mol Biol Cell ; 35(5): ar69, 2024 May 01.
Artigo em Inglês | MEDLINE | ID: mdl-38536475

RESUMO

The regulation of the cytoskeleton by multiple signaling pathways, sometimes in parallel, is a common principle of morphogenesis. A classic example of regulation by parallel pathways is Drosophila gastrulation, where the inputs from the Folded gastrulation (Fog)/Concertina (Cta) and the T48 pathways induce apical constriction and mesoderm invagination. Whether there are distinct roles for these separate pathways in regulating the complex spatial and temporal patterns of cytoskeletal activity that accompany early embryo development is still poorly understood. We investigated the roles of the Fog/Cta and T48 pathways and found that, by themselves, the Cta and T48 pathways both promote timely mesoderm invagination and apical myosin II accumulation, with Cta being required for timely cell shape change ahead of mitotic cell division. We also identified distinct functions of T48 and Cta in regulating cellularization and the uniformity of the apical myosin II network, respectively. Our results demonstrate that both redundant and distinct functions for the Fog/Cta and T48 pathways exist.


Assuntos
Proteínas de Drosophila , Drosophila , Animais , Drosophila/metabolismo , Gastrulação , Proteínas de Drosophila/metabolismo , Morfogênese , Mesoderma , Miosina Tipo II/metabolismo , Drosophila melanogaster/metabolismo
19.
Curr Top Dev Biol ; 157: 1-42, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38556456

RESUMO

This article is about how the famous organizer experiment has been perceived since it was first published in 1924. The experiment involves the production of a secondary embryo under the influence of a graft of a dorsal lip from an amphibian gastrula to a host embryo. The early experiments of Spemann and his school gave rise to a view that the whole early amphibian embryo was "indifferent" in terms of determination, except for a special region called "the organizer". This was viewed mainly as an agent of neural induction, also having the ability to generate an anteroposterior body pattern. Early biochemical efforts to isolate a factor emitted by the organizer were not successful but culminated in the definition of "neuralizing (N)" and "mesodermalizing (M)" factors present in a wide variety of animal tissues. By the 1950s this view became crystallized as a "two gradient" model involving the N and M factors, which explained the anteroposterior patterning effect. In the 1970s, the phenomenon of mesoderm induction was characterized as a process occurring before the commencement of gastrulation. Reinvestigation of the organizer effect using lineage labels gave rise to a more precise definition of the sequence of events. Since the 1980s, modern research using the tools of molecular biology, combined with microsurgery, has explained most of the processes involved. The organizer graft should now be seen as an experiment which involves multiple interactions: dorsoventral polarization following fertilization, mesoderm induction, the dorsalizing signal responsible for neuralization and dorsoventral patterning of the mesoderm, and additional factors responsible for anteroposterior patterning.


Assuntos
Desenvolvimento Embrionário , Mesoderma , Animais , Anfíbios , Biologia do Desenvolvimento , Padronização Corporal , Indução Embrionária , Organizadores Embrionários , Regulação da Expressão Gênica no Desenvolvimento
20.
Curr Top Dev Biol ; 157: 83-123, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38556460

RESUMO

For almost a century, developmental biologists have appreciated that the ability of the embryonic organizer to induce and pattern the body plan is intertwined with its differentiation into axial mesoderm. Despite this, we still have a relatively poor understanding of the contribution of axial mesoderm to induction and patterning of different body regions, and the manner in which axial mesoderm-derived information is interpreted in tissues of changing competence. Here, with a particular focus on the nervous system, we review the evidence that axial mesoderm notochord and prechordal mesoderm/mesendoderm act as organizers, discuss how their influence extends through the different axes of the developing organism, and describe how the ability of axial mesoderm to direct morphogenesis impacts on its role as a local organizer.


Assuntos
Encéfalo/embriologia , Face/embriologia , Camadas Germinativas , Mesoderma , Sistema Nervoso , Mesoderma/fisiologia , Morfogênese , Padronização Corporal
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