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1.
Biol Open ; 13(6)2024 Jun 15.
Artículo en Inglés | MEDLINE | ID: mdl-38874999

RESUMEN

The neural crest (NC) is an embryonic multipotent and transitory population of cells that appears during late gastrulation/early neurulation in the developing embryos of vertebrate organisms. Often called "the fourth germ layer", the NC is characterised by incredible mobility, which allows the NC cells to migrate throughout the whole embryo, giving rise to an astonishing number of different derivatives in the adult organism, such as craniofacial skeleton, adrenal gland, enteric nervous system and melanocytes. Because of these properties, neurocristopathies (NCPs), which is the term used to classify genetic diseases associated with NC developmental defects, are often syndromic and, taken all together, are the most common type of genetic disease. The NEUcrest consortium is an EU funded innovative training network (ITN) that aims to study the NC and NCPs. In March 2024, the early stage researchers (ESRs) in the NEUcrest consortium organised an in-person conference for well-established and early career researchers to discuss new advances in the NC and NCPs field, starting from the induction of the NC, and then moving on to migration and differentiation processes they undergo. The conference focused heavily on NCPs associated with each of these steps. The conference also included events, such as a round table to discuss the future of the NC research, plus a talk by a person living with an NCP. This 3-day conference aimed to bring together the past, present and future of this field to try and unravel the mysteries of this unique cell population.


Asunto(s)
Cresta Neural , Cresta Neural/citología , Cresta Neural/embriología , Humanos , Animales , Diferenciación Celular , Movimiento Celular
2.
Mol Cells ; 47(6): 100076, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38825188

RESUMEN

The actin-based cytoskeleton is considered a fundamental driving force for cell differentiation and development. Destrin (Dstn), a member of the actin-depolymerizing factor family, regulates actin dynamics by treadmilling actin filaments and increasing globular actin pools. However, the specific developmental roles of dstn have yet to be fully elucidated. Here, we investigated the physiological functions of dstn during early embryonic development using Xenopus laevis as an experimental model organism. dstn is expressed in anterior neural tissue and neural plate during Xenopus embryogenesis. Depleting dstn promoted morphants with short body axes and small heads. Moreover, dstn inhibition extended the neural plate region, impairing cell migration and distribution during neurulation. In addition to the neural plate, dstn knockdown perturbed neural crest cell migration. Our data suggest new insights for understanding the roles of actin dynamics in embryonic neural development, simultaneously presenting a new challenge for studying the complex networks governing cell migration involving actin dynamics.


Asunto(s)
Movimiento Celular , Destrina , Desarrollo Embrionario , Xenopus laevis , Animales , Xenopus laevis/embriología , Xenopus laevis/metabolismo , Destrina/metabolismo , Destrina/genética , Proteínas de Xenopus/metabolismo , Proteínas de Xenopus/genética , Cresta Neural/metabolismo , Cresta Neural/embriología , Cresta Neural/citología , Neurogénesis , Placa Neural/metabolismo , Placa Neural/embriología , Actinas/metabolismo , Regulación del Desarrollo de la Expresión Génica
3.
Adv Exp Med Biol ; 1441: 125-143, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38884708

RESUMEN

This chapter discusses the role of cardiac neural crest cells in the formation of the septum that divides the cardiac arterial pole into separate systemic and pulmonary arteries. Further, cardiac neural crest cells directly support the normal development and patterning of derivatives of the caudal pharyngeal arches, including the great arteries, thymus, thyroid, and parathyroids. Recently, cardiac neural crest cells have also been shown to indirectly influence the development of the secondary heart field, another derivative of the caudal pharynx, by modulating signaling in the pharynx. The contribution and function of the cardiac neural crest cells has been learned in avian models; most of the genes associated with cardiac neural crest function have been identified using mouse models. Together these studies show that the neural crest cells may not only critical for normal cardiovascular development but also may be involved secondarily because they represent a major component in the complex tissue interactions in the caudal pharynx and outflow tract. Cardiac neural crest cells span from the caudal pharynx into the outflow tract, and therefore may be susceptible to any perturbation in or by other cells in these regions. Thus, understanding congenital cardiac outflow malformations in human sequences of malformations resulting from genetic and/or environmental insults necessarily requires better understanding the role of cardiac neural crest cells in cardiac development.


Asunto(s)
Cresta Neural , Cresta Neural/embriología , Cresta Neural/citología , Cresta Neural/metabolismo , Animales , Humanos , Corazón/embriología , Ratones
4.
Adv Exp Med Biol ; 1441: 645-659, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38884739

RESUMEN

Tetralogy of Fallot and double-outlet right ventricle are outflow tract (OFT) alignment defects situated on a continuous disease spectrum. A myriad of upstream causes can impact on ventriculoarterial alignment that can be summarized as defects in either i) OFT elongation during looping morphogenesis or ii) OFT remodeling during cardiac septation. Embryological processes underlying these two developmental steps include deployment of second heart field cardiac progenitor cells, establishment and transmission of embryonic left/right information driving OFT rotation and OFT cushion and valve morphogenesis. The formation and remodeling of pulmonary trunk infundibular myocardium is a critical component of both steps. Defects in myocardial, endocardial, or neural crest cell lineages can result in alignment defects, reflecting the complex intercellular signaling events that coordinate arterial pole development. Importantly, however, OFT alignment is mechanistically distinct from neural crest-driven OFT septation, although neural crest cells impact indirectly on alignment through their role in modulating signaling during SHF development. As yet poorly understood nongenetic causes of alignment defects that impact the above processes include hemodynamic changes, maternal exposure to environmental teratogens, and stochastic events. The heterogeneity of causes converging on alignment defects characterizes the OFT as a hotspot of congenital heart defects.


Asunto(s)
Modelos Animales de Enfermedad , Ventrículo Derecho con Doble Salida , Transducción de Señal , Tetralogía de Fallot , Tetralogía de Fallot/genética , Tetralogía de Fallot/patología , Tetralogía de Fallot/fisiopatología , Tetralogía de Fallot/embriología , Animales , Ventrículo Derecho con Doble Salida/genética , Ventrículo Derecho con Doble Salida/patología , Ventrículo Derecho con Doble Salida/fisiopatología , Humanos , Cresta Neural/metabolismo , Cresta Neural/patología , Cresta Neural/embriología , Morfogénesis/genética
5.
Curr Top Dev Biol ; 159: 132-167, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38729675

RESUMEN

The primary senses-touch, taste, sight, smell, and hearing-connect animals with their environments and with one another. Aside from the eyes, the primary sense organs of vertebrates and the peripheral sensory pathways that relay their inputs arise from two transient stem cell populations: the neural crest and the cranial placodes. In this chapter we consider the senses from historical and cultural perspectives, and discuss the senses as biological faculties. We begin with the embryonic origin of the neural crest and cranial placodes from within the neural plate border of the ectodermal germ layer. Then, we describe the major chemical (i.e. olfactory and gustatory) and mechanical (i.e. vestibulo-auditory and somatosensory) senses, with an emphasis on the developmental interactions between neural crest and cranial placodes that shape their structures and functions.


Asunto(s)
Cresta Neural , Animales , Cresta Neural/citología , Cresta Neural/embriología , Cresta Neural/fisiología , Humanos , Sensación/fisiología , Órganos de los Sentidos/embriología , Órganos de los Sentidos/fisiología , Órganos de los Sentidos/citología , Vertebrados/embriología , Vertebrados/fisiología
6.
Zhonghua Yi Xue Yi Chuan Xue Za Zhi ; 41(6): 758-760, 2024 Jun 10.
Artículo en Chino | MEDLINE | ID: mdl-38818565

RESUMEN

Char syndrome is a rare autosomal dominant genetic disorder characterized by patent ductus arteriosus, facial dysmorphism, and dysplasia of fingers/toes. It may also be associated with multiple papillae, dental dysplasia, and sleep disorders. TFAP2B has proven to be a pathogenic gene for neural crest derivation and development, and several variants of this gene have been identified. Bone morphogenetic protein signaling plays an important role in embryonic development by participating in limb growth and patterning, and regulation of neural crest cell development. TFAP2B is an upstream regulatory gene for bone morphogenetic proteins 2 and 4. Variants of the TFAP2B gene may lead to abnormal proliferation of neural crest cells by affecting the expression of bone morphogenetic proteins, resulting in multiple organ dysplasia syndrome. In addition, TFAP2B variants may only lead to patent ductus arteriosus instead of typical Char syndrome.


Asunto(s)
Conducto Arterioso Permeable , Humanos , Conducto Arterioso Permeable/genética , Factor de Transcripción AP-2/genética , Anomalías Múltiples/genética , Proteínas Morfogenéticas Óseas/genética , Proteínas Morfogenéticas Óseas/metabolismo , Cresta Neural/metabolismo , Cresta Neural/embriología , Cara/anomalías , Dedos/anomalías
7.
Elife ; 122024 Apr 18.
Artículo en Inglés | MEDLINE | ID: mdl-38634469

RESUMEN

We previously showed that SerpinE2 and the serine protease HtrA1 modulate fibroblast growth factor (FGF) signaling in germ layer specification and head-to-tail development of Xenopus embryos. Here, we present an extracellular proteolytic mechanism involving this serpin-protease system in the developing neural crest (NC). Knockdown of SerpinE2 by injected antisense morpholino oligonucleotides did not affect the specification of NC progenitors but instead inhibited the migration of NC cells, causing defects in dorsal fin, melanocyte, and craniofacial cartilage formation. Similarly, overexpression of the HtrA1 protease impaired NC cell migration and the formation of NC-derived structures. The phenotype of SerpinE2 knockdown was overcome by concomitant downregulation of HtrA1, indicating that SerpinE2 stimulates NC migration by inhibiting endogenous HtrA1 activity. SerpinE2 binds to HtrA1, and the HtrA1 protease triggers degradation of the cell surface proteoglycan Syndecan-4 (Sdc4). Microinjection of Sdc4 mRNA partially rescued NC migration defects induced by both HtrA1 upregulation and SerpinE2 downregulation. These epistatic experiments suggest a proteolytic pathway by a double inhibition mechanism.SerpinE2 ┤HtrA1 protease ┤Syndecan-4 → NC cell migration.


Asunto(s)
Serina Peptidasa A1 que Requiere Temperaturas Altas , Cresta Neural , Serpina E2 , Animales , Movimiento Celular/genética , Factores de Crecimiento de Fibroblastos/metabolismo , Serina Peptidasa A1 que Requiere Temperaturas Altas/metabolismo , Cresta Neural/embriología , Cresta Neural/metabolismo , Serpina E2/metabolismo , Transducción de Señal , Xenopus laevis/metabolismo , Proteínas de Xenopus/genética , Proteínas de Xenopus/metabolismo
8.
Nat Ecol Evol ; 8(6): 1154-1164, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38565680

RESUMEN

Neural-crest cells and neuromesodermal progenitors (NMPs) are multipotent cells that are important for development of vertebrate embryos. In embryos of ascidians, which are the closest invertebrate relatives of vertebrates, several cells located at the border between the neural plate and the epidermal region have neural-crest-like properties; hence, the last common ancestor of ascidians and vertebrates may have had ancestral cells similar to neural-crest cells. However, these ascidian neural-crest-like cells do not produce cells that are commonly of mesodermal origin. Here we showed that a cell population located in the lateral region of the neural plate has properties resembling those of vertebrate neural-crest cells and NMPs. Among them, cells with Tbx6-related expression contribute to muscle near the tip of the tail region and cells with Sox1/2/3 expression give rise to the nerve cord. These observations and cross-species transcriptome comparisons indicate that these cells have properties similar to those of NMPs. Meanwhile, transcription factor genes Dlx.b, Zic-r.b and Snai, which are reminiscent of a gene circuit in vertebrate neural-crest cells, are involved in activation of Tbx6-related.b. Thus, the last common ancestor of ascidians and vertebrates may have had cells with properties of neural-crest cells and NMPs and such ancestral cells may have produced cells commonly of ectodermal and mesodermal origins.


Asunto(s)
Cresta Neural , Vertebrados , Animales , Vertebrados/embriología , Cresta Neural/citología , Cresta Neural/embriología , Urocordados/embriología , Urocordados/citología , Embrión no Mamífero/citología , Ciona intestinalis/embriología , Ciona intestinalis/genética , Ciona intestinalis/citología
9.
Dev Biol ; 511: 63-75, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38621649

RESUMEN

Loss of function variations in the dual specificity tyrosine-phosphorylation-regulated kinase 1 A (DYRK1A) gene are associated with craniofacial malformations in humans. Here we characterized the effects of deficient DYRK1A in craniofacial development using a developmental model, Xenopus laevis. Dyrk1a mRNA and protein were expressed throughout the developing head and both were enriched in the branchial arches which contribute to the face and jaw. Consistently, reduced Dyrk1a function, using dyrk1a morpholinos and pharmacological inhibitors, resulted in orofacial malformations including hypotelorism, altered mouth shape, slanted eyes, and narrower face accompanied by smaller jaw cartilage and muscle. Inhibition of Dyrk1a function resulted in misexpression of key craniofacial regulators including transcription factors and members of the retinoic acid signaling pathway. Two such regulators, sox9 and pax3 are required for neural crest development and their decreased expression corresponds with smaller neural crest domains within the branchial arches. Finally, we determined that the smaller size of the faces, jaw elements and neural crest domains in embryos deficient in Dyrk1a could be explained by increased cell death and decreased proliferation. This study is the first to provide insight into why craniofacial birth defects might arise in humans with variants of DYRK1A.


Asunto(s)
Quinasas DyrK , Proteínas de Xenopus , Xenopus laevis , Animales , Región Branquial/embriología , Región Branquial/metabolismo , Anomalías Craneofaciales/genética , Anomalías Craneofaciales/embriología , Anomalías Craneofaciales/metabolismo , Embrión no Mamífero/metabolismo , Embrión no Mamífero/embriología , Regulación del Desarrollo de la Expresión Génica , Cresta Neural/embriología , Cresta Neural/metabolismo , Proteínas Serina-Treonina Quinasas/metabolismo , Proteínas Serina-Treonina Quinasas/genética , Proteínas Tirosina Quinasas/metabolismo , Proteínas Tirosina Quinasas/genética , Transducción de Señal , Xenopus laevis/embriología , Xenopus laevis/metabolismo , Proteínas de Xenopus/metabolismo , Proteínas de Xenopus/genética
10.
Dev Biol ; 511: 26-38, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38580174

RESUMEN

In a developing embryo, formation of tissues and organs is remarkably precise in both time and space. Through cell-cell interactions, neighboring progenitors coordinate their activities, sequentially generating distinct types of cells. At present, we only have limited knowledge, rather than a systematic understanding, of the underlying logic and mechanisms responsible for cell fate transitions. The formation of the dorsal aspect of the spinal cord is an outstanding model to tackle these dynamics, as it first generates the peripheral nervous system and is later responsible for transmitting sensory information from the periphery to the brain and for coordinating local reflexes. This is reflected first by the ontogeny of neural crest cells, progenitors of the peripheral nervous system, followed by formation of the definitive roof plate of the central nervous system and specification of adjacent interneurons, then a transformation of roof plate into dorsal radial glia and ependyma lining the forming central canal. How do these peripheral and central neural branches segregate from common progenitors? How are dorsal radial glia established concomitant with transformation of the neural tube lumen into a central canal? How do the dorsal radial glia influence neighboring cells? This is only a partial list of questions whose clarification requires the implementation of experimental paradigms in which precise control of timing is crucial. Here, we outline some available answers and still open issues, while highlighting the contributions of avian models and their potential to address mechanisms of neural patterning and function.


Asunto(s)
Tubo Neural , Médula Espinal , Animales , Médula Espinal/embriología , Tubo Neural/embriología , Cresta Neural/embriología , Cresta Neural/citología , Cresta Neural/fisiología , Diferenciación Celular/fisiología , Neuroglía/fisiología , Células Neuroepiteliales/citología , Células Neuroepiteliales/fisiología , Humanos
11.
Gastroenterology ; 166(6): 1085-1099, 2024 06.
Artículo en Inglés | MEDLINE | ID: mdl-38452824

RESUMEN

BACKGROUND & AIMS: The enteric nervous system (ENS), the gut's intrinsic nervous system critical for gastrointestinal function and gut-brain communication, is believed to mainly originate from vagal neural crest cells (vNCCs) and partially from sacral NCCs (sNCCs). Resolving the exact origins of the ENS is critical for understanding congenital ENS diseases but has been confounded by the inability to distinguish between both NCC populations in situ. Here, we aimed to resolve the exact origins of the mammalian ENS. METHODS: We genetically engineered mouse embryos facilitating comparative lineage-tracing of either all (pan-) NCCs including vNCCs or caudal trunk and sNCCs (s/tNCCs) excluding vNCCs. This was combined with dual-lineage tracing and 3-dimensional reconstruction of pelvic plexus and hindgut to precisely pinpoint sNCC and vNCC contributions. We further used coculture assays to determine the specificity of cell migration from different neural tissues into the hindgut. RESULTS: Both pan-NCCs and s/tNCCs contributed to established NCC derivatives but only pan-NCCs contributed to the ENS. Dual-lineage tracing combined with 3-dimensional reconstruction revealed that s/tNCCs settle in complex patterns in pelvic plexus and hindgut-surrounding tissues, explaining previous confusion regarding their contributions. Coculture experiments revealed unspecific cell migration from autonomic, sensory, and neural tube explants into the hindgut. Lineage tracing of ENS precursors lastly provided complimentary evidence for an exclusive vNCC origin of the murine ENS. CONCLUSIONS: sNCCs do not contribute to the murine ENS, suggesting that the mammalian ENS exclusively originates from vNCCs. These results have immediate implications for comprehending (and devising treatments for) congenital ENS disorders, including Hirschsprung's disease.


Asunto(s)
Linaje de la Célula , Movimiento Celular , Sistema Nervioso Entérico , Cresta Neural , Animales , Cresta Neural/citología , Cresta Neural/embriología , Sistema Nervioso Entérico/embriología , Ratones , Técnicas de Cocultivo , Ratones Transgénicos , Nervio Vago/embriología , Sacro/inervación
12.
Nature ; 628(8007): 391-399, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38408487

RESUMEN

The human nervous system is a highly complex but organized organ. The foundation of its complexity and organization is laid down during regional patterning of the neural tube, the embryonic precursor to the human nervous system. Historically, studies of neural tube patterning have relied on animal models to uncover underlying principles. Recently, models of neurodevelopment based on human pluripotent stem cells, including neural organoids1-5 and bioengineered neural tube development models6-10, have emerged. However, such models fail to recapitulate neural patterning along both rostral-caudal and dorsal-ventral axes in a three-dimensional tubular geometry, a hallmark of neural tube development. Here we report a human pluripotent stem cell-based, microfluidic neural tube-like structure, the development of which recapitulates several crucial aspects of neural patterning in brain and spinal cord regions and along rostral-caudal and dorsal-ventral axes. This structure was utilized for studying neuronal lineage development, which revealed pre-patterning of axial identities of neural crest progenitors and functional roles of neuromesodermal progenitors and the caudal gene CDX2 in spinal cord and trunk neural crest development. We further developed dorsal-ventral patterned microfluidic forebrain-like structures with spatially segregated dorsal and ventral regions and layered apicobasal cellular organizations that mimic development of the human forebrain pallium and subpallium, respectively. Together, these microfluidics-based neurodevelopment models provide three-dimensional lumenal tissue architectures with in vivo-like spatiotemporal cell differentiation and organization, which will facilitate the study of human neurodevelopment and disease.


Asunto(s)
Tipificación del Cuerpo , Microfluídica , Tubo Neural , Humanos , Técnicas de Cultivo Tridimensional de Células , Diferenciación Celular , Cresta Neural/citología , Cresta Neural/embriología , Tubo Neural/citología , Tubo Neural/embriología , Células Madre Pluripotentes/citología , Prosencéfalo/citología , Prosencéfalo/embriología , Médula Espinal/citología , Médula Espinal/embriología
13.
Nature ; 612(7941): 732-738, 2022 12.
Artículo en Inglés | MEDLINE | ID: mdl-36517595

RESUMEN

Our understanding of human early development is severely hampered by limited access to embryonic tissues. Due to their close evolutionary relationship with humans, nonhuman primates are often used as surrogates to understand human development but currently suffer from a lack of in vivo datasets, especially from gastrulation to early organogenesis during which the major embryonic cell types are dynamically specified. To fill this gap, we collected six Carnegie stage 8-11 cynomolgus monkey (Macaca fascicularis) embryos and performed in-depth transcriptomic analyses of 56,636 single cells. Our analyses show transcriptomic features of major perigastrulation cell types, which help shed light on morphogenetic events including primitive streak development, somitogenesis, gut tube formation, neural tube patterning and neural crest differentiation in primates. In addition, comparative analyses with mouse embryos and human embryoids uncovered conserved and divergent features of perigastrulation development across species-for example, species-specific dependency on Hippo signalling during presomitic mesoderm differentiation-and provide an initial assessment of relevant stem cell models of human early organogenesis. This comprehensive single-cell transcriptome atlas not only fills the knowledge gap in the nonhuman primate research field but also serves as an invaluable resource for understanding human embryogenesis and developmental disorders.


Asunto(s)
Gastrulación , Macaca fascicularis , Organogénesis , Análisis de la Célula Individual , Animales , Humanos , Ratones , Gastrulación/genética , Macaca fascicularis/embriología , Macaca fascicularis/genética , Organogénesis/genética , Cuerpos Embrioides , Perfilación de la Expresión Génica , Línea Primitiva/citología , Línea Primitiva/embriología , Tubo Neural/citología , Tubo Neural/embriología , Cresta Neural/citología , Cresta Neural/embriología , Vía de Señalización Hippo , Mesodermo/citología , Mesodermo/embriología , Células Madre
14.
Nature ; 610(7930): 190-198, 2022 10.
Artículo en Inglés | MEDLINE | ID: mdl-36131018

RESUMEN

Although melanoma is notorious for its high degree of heterogeneity and plasticity1,2, the origin and magnitude of cell-state diversity remains poorly understood. Equally, it is unclear whether growth and metastatic dissemination are supported by overlapping or distinct melanoma subpopulations. Here, by combining mouse genetics, single-cell and spatial transcriptomics, lineage tracing and quantitative modelling, we provide evidence of a hierarchical model of tumour growth that mirrors the cellular and molecular logic underlying the cell-fate specification and differentiation of the embryonic neural crest. We show that tumorigenic competence is associated with a spatially localized perivascular niche, a phenotype acquired through an intercellular communication pathway established by endothelial cells. Consistent with a model in which only a fraction of cells are fated to fuel growth, temporal single-cell tracing of a population of melanoma cells with a mesenchymal-like state revealed that these cells do not contribute to primary tumour growth but, instead, constitute a pool of metastatic initiating cells that switch cell identity while disseminating to secondary organs. Our data provide a spatially and temporally resolved map of the diversity and trajectories of melanoma cell states and suggest that the ability to support growth and metastasis are limited to distinct pools of cells. The observation that these phenotypic competencies can be dynamically acquired after exposure to specific niche signals warrant the development of therapeutic strategies that interfere with the cancer cell reprogramming activity of such microenvironmental cues.


Asunto(s)
Proliferación Celular , Melanoma , Metástasis de la Neoplasia , Animales , Comunicación Celular , Diferenciación Celular , Linaje de la Célula , Rastreo Celular , Reprogramación Celular , Células Endoteliales , Melanoma/genética , Melanoma/patología , Mesodermo/patología , Ratones , Metástasis de la Neoplasia/patología , Cresta Neural/embriología , Fenotipo , Análisis de la Célula Individual , Transcriptoma , Microambiente Tumoral
15.
Proc Natl Acad Sci U S A ; 119(31): e2116974119, 2022 08 02.
Artículo en Inglés | MEDLINE | ID: mdl-35881792

RESUMEN

Ribosomal RNA (rRNA) transcription by RNA polymerase I (Pol I) is a critical rate-limiting step in ribosome biogenesis, which is essential for cell survival. Despite its global function, disruptions in ribosome biogenesis cause tissue-specific birth defects called ribosomopathies, which frequently affect craniofacial development. Here, we describe a cellular and molecular mechanism underlying the susceptibility of craniofacial development to disruptions in Pol I transcription. We show that Pol I subunits are highly expressed in the neuroepithelium and neural crest cells (NCCs), which generate most of the craniofacial skeleton. High expression of Pol I subunits sustains elevated rRNA transcription in NCC progenitors, which supports their high tissue-specific levels of protein translation, but also makes NCCs particularly sensitive to rRNA synthesis defects. Consistent with this model, NCC-specific deletion of Pol I subunits Polr1a, Polr1c, and associated factor Tcof1 in mice cell-autonomously diminishes rRNA synthesis, which leads to p53 protein accumulation, resulting in NCC apoptosis and craniofacial anomalies. Furthermore, compound mutations in Pol I subunits and associated factors specifically exacerbate the craniofacial anomalies characteristic of the ribosomopathies Treacher Collins syndrome and Acrofacial Dysostosis-Cincinnati type. Mechanistically, we demonstrate that diminished rRNA synthesis causes an imbalance between rRNA and ribosomal proteins. This leads to increased binding of ribosomal proteins Rpl5 and Rpl11 to Mdm2 and concomitantly diminished binding between Mdm2 and p53. Altogether, our results demonstrate a dynamic spatiotemporal requirement for rRNA transcription during mammalian cranial NCC development and corresponding tissue-specific threshold sensitivities to disruptions in rRNA transcription in the pathogenesis of congenital craniofacial disorders.


Asunto(s)
Anomalías Craneofaciales , ARN Polimerasa I , ARN Ribosómico , Proteínas Ribosómicas , Cráneo , Transcripción Genética , Animales , Anomalías Craneofaciales/genética , Disostosis Mandibulofacial/genética , Ratones , Cresta Neural/embriología , Proteínas Proto-Oncogénicas c-mdm2/metabolismo , ARN Polimerasa I/metabolismo , ARN Ribosómico/genética , Proteínas Ribosómicas/metabolismo , Cráneo/embriología , Proteína p53 Supresora de Tumor/genética , Proteína p53 Supresora de Tumor/metabolismo
16.
Elife ; 112022 01 19.
Artículo en Inglés | MEDLINE | ID: mdl-35044299

RESUMEN

Serum response factor (SRF) is an essential transcription factor that influences many cellular processes including cell proliferation, migration, and differentiation. SRF directly regulates and is required for immediate early gene (IEG) and actin cytoskeleton-related gene expression. SRF coordinates these competing transcription programs through discrete sets of cofactors, the ternary complex factors (TCFs) and myocardin-related transcription factors (MRTFs). The relative contribution of these two programs to in vivo SRF activity and mutant phenotypes is not fully understood. To study how SRF utilizes its cofactors during development, we generated a knock-in SrfaI allele in mice harboring point mutations that disrupt SRF-MRTF-DNA complex formation but leave SRF-TCF activity unaffected. Homozygous SrfaI/aI mutants die at E10.5 with notable cardiovascular phenotypes, and neural crest conditional mutants succumb at birth to defects of the cardiac outflow tract but display none of the craniofacial phenotypes associated with complete loss of SRF in that lineage. Our studies further support an important role for MRTF mediating SRF function in cardiac neural crest and suggest new mechanisms by which SRF regulates transcription during development.


Asunto(s)
Cresta Neural/embriología , Factor de Respuesta Sérica/genética , Factores Complejos Ternarios/genética , Factores de Transcripción/genética , Animales , Ratones , Factor de Respuesta Sérica/metabolismo , Factores Complejos Ternarios/metabolismo , Factores de Transcripción/metabolismo
17.
Dev Biol ; 483: 39-57, 2022 03.
Artículo en Inglés | MEDLINE | ID: mdl-34990731

RESUMEN

Neural crest (NC) cells are a dynamic population of embryonic stem cells that create various adult tissues in vertebrate species including craniofacial bone and cartilage and the peripheral and enteric nervous systems. NC development is thought to be a conserved and complex process that is controlled by a tightly-regulated gene regulatory network (GRN) of morphogens, transcription factors, and cell adhesion proteins. While multiple studies have characterized the expression of several GRN factors in single species, a comprehensive protein analysis that directly compares expression across development is lacking. To address this lack in information, we used three closely related avian models, Gallus gallus (chicken), Coturnix japonica (Japanese quail), and Pavo cristatus (Indian peafowl), to compare the localization and timing of four GRN transcription factors, PAX7, SNAI2, SOX9, and SOX10, from the onset of neurulation to migration. While the spatial expression of these factors is largely conserved, we find that quail NC cells express SNAI2, SOX9, and SOX10 proteins at the equivalent of earlier developmental stages than chick and peafowl. In addition, quail NC cells migrate farther and more rapidly than the larger organisms. These data suggest that despite a conservation of NC GRN players, differences in the timing of NC development between species remain a significant frontier to be explored with functional studies.


Asunto(s)
Proteínas Aviares/genética , Proteínas Aviares/metabolismo , Movimiento Celular/genética , Pollos/genética , Coturnix/embriología , Coturnix/genética , Regulación del Desarrollo de la Expresión Génica , Cresta Neural/metabolismo , Neurulación/genética , Animales , Embrión de Pollo , Pollos/metabolismo , Coturnix/metabolismo , Femenino , Redes Reguladoras de Genes , Cresta Neural/embriología , Tubo Neural/embriología , Tubo Neural/metabolismo , Oviparidad/genética , Factor de Transcripción PAX7/genética , Factor de Transcripción PAX7/metabolismo , Factor de Transcripción SOX9/genética , Factor de Transcripción SOX9/metabolismo , Factores de Transcripción de la Familia Snail/genética , Factores de Transcripción de la Familia Snail/metabolismo
18.
Elife ; 112022 01 28.
Artículo en Inglés | MEDLINE | ID: mdl-35088714

RESUMEN

The epiblast of vertebrate embryos is comprised of neural and non-neural ectoderm, with the border territory at their intersection harboring neural crest and cranial placode progenitors. Here, we a generate single-cell atlas of the developing chick epiblast from late gastrulation through early neurulation stages to define transcriptional changes in the emerging 'neural plate border' as well as other regions of the epiblast. Focusing on the border territory, the results reveal gradual establishment of heterogeneous neural plate border signatures, including novel genes that we validate by fluorescent in situ hybridization. Developmental trajectory analysis infers that segregation of neural plate border lineages only commences at early neurulation, rather than at gastrulation as previously predicted. We find that cells expressing the prospective neural crest marker Pax7 contribute to multiple lineages, and a subset of premigratory neural crest cells shares a transcriptional signature with their border precursors. Together, our results suggest that cells at the neural plate border remain heterogeneous until early neurulation, at which time progenitors become progressively allocated toward defined neural crest and placode lineages. The data also can be mined to reveal changes throughout the developing epiblast.


Asunto(s)
Regulación del Desarrollo de la Expresión Génica , Cresta Neural/embriología , Placa Neural/embriología , Neurulación/fisiología , Animales , Embrión de Pollo/citología , Pollos/fisiología , Estratos Germinativos/fisiología , Hibridación Fluorescente in Situ , Factor de Transcripción PAX7/análisis
19.
Dev Biol ; 483: 66-75, 2022 03.
Artículo en Inglés | MEDLINE | ID: mdl-34968443

RESUMEN

In recent years CRISPR-Cas9 knockouts (KO) have become increasingly ultilised to study gene function. MicroRNAs (miRNAs) are short non-coding RNAs, 20-22 nucleotides long, which affect gene expression through post-transcriptional repression. We previously identified miRNAs-196a and -219 as implicated in the development of Xenopus neural crest (NC). The NC is a multipotent stem-cell population, specified during early neurulation. Following EMT, NC cells migrate to various points in the developing embryo where they give rise to a number of tissues including parts of the peripheral nervous system, pigment cells and craniofacial skeleton. Dysregulation of NC development results in many diseases grouped under the term neurocristopathies. As miRNAs are so small, it is difficult to design CRISPR sgRNAs that reproducibly lead to a KO. We have therefore designed a novel approach using two guide RNAs to effectively 'drop out' a miRNA. We have knocked out miR-196a and miR-219 and compared the results to morpholino knockdowns (KD) of the same miRNAs. Validation of efficient CRISPR miRNA KO and phenotype analysis included use of whole-mount in situ hybridization of key NC and neural plate border markers such as Pax3, Xhe2, Sox10 and Snail2, q-RT-PCR and Sanger sequencing. To show specificity we have also rescued the knockout phenotype using miRNA mimics. MiRNA-219 and miR-196a KO's both show loss of NC, altered neural plate and hatching gland phenotypes. Tadpoles show gross craniofacial and pigment phenotypes.


Asunto(s)
Sistemas CRISPR-Cas , Técnicas de Inactivación de Genes/métodos , MicroARNs/genética , Xenopus laevis/embriología , Xenopus laevis/genética , Animales , Regulación del Desarrollo de la Expresión Génica , Técnicas de Silenciamiento del Gen/métodos , Hibridación in Situ/métodos , Morfolinos/genética , Cresta Neural/embriología , Cresta Neural/metabolismo , Placa Neural/embriología , Placa Neural/metabolismo , Neurulación/genética , Fenotipo , ARN Guía de Kinetoplastida/genética , Factores de Transcripción/genética , Factores de Transcripción/metabolismo , Transcriptoma/genética , Proteínas de Xenopus/genética , Proteínas de Xenopus/metabolismo
20.
J Med Genet ; 59(2): 105-114, 2022 02.
Artículo en Inglés | MEDLINE | ID: mdl-34667088

RESUMEN

SOX10 belongs to a family of 20 SRY (sex-determining region Y)-related high mobility group box-containing (SOX) proteins, most of which contribute to cell type specification and differentiation of various lineages. The first clue that SOX10 is essential for development, especially in the neural crest, came with the discovery that heterozygous mutations occurring within and around SOX10 cause Waardenburg syndrome type 4. Since then, heterozygous mutations have been reported in Waardenburg syndrome type 2 (Waardenburg syndrome type without Hirschsprung disease), PCWH or PCW (peripheral demyelinating neuropathy, central dysmyelination, Waardenburg syndrome, with or without Hirschsprung disease), intestinal manifestations beyond Hirschsprung (ie, chronic intestinal pseudo-obstruction), Kallmann syndrome and cancer. All of these diseases are consistent with the regulatory role of SOX10 in various neural crest derivatives (melanocytes, the enteric nervous system, Schwann cells and olfactory ensheathing cells) and extraneural crest tissues (inner ear, oligodendrocytes). The recent evolution of medical practice in constitutional genetics has led to the identification of SOX10 variants in atypical contexts, such as isolated hearing loss or neurodevelopmental disorders, making them more difficult to classify in the absence of both a typical phenotype and specific expertise. Here, we report novel mutations and review those that have already been published and their functional consequences, along with current understanding of SOX10 function in the affected cell types identified through in vivo and in vitro models. We also discuss research options to increase our understanding of the origin of the observed phenotypic variability and improve the diagnosis and medical care of affected patients.


Asunto(s)
Desarrollo Embrionario/genética , Desarrollo Embrionario/fisiología , Factores de Transcripción SOXE/genética , Factores de Transcripción SOXE/fisiología , Animales , Sistema Nervioso Entérico/fisiología , Regulación del Desarrollo de la Expresión Génica , Pérdida Auditiva/genética , Enfermedad de Hirschsprung/genética , Humanos , Síndrome de Kallmann/genética , Melanocitos/fisiología , Mutación , Neoplasias/genética , Cresta Neural/embriología , Cresta Neural/fisiología , Fenotipo , Síndrome de Waardenburg/genética
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