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1.
Development ; 148(3)2021 02 05.
Artigo em Inglês | MEDLINE | ID: mdl-33419874

RESUMO

The notochord is a defining feature of the chordates. The transcription factor Brachyury (Bra) is a key regulator of notochord fate but here we show that it is not a unitary master regulator in the model chordate Ciona Ectopic Bra expression only partially reprograms other cell types to a notochord-like transcriptional profile and a subset of notochord-enriched genes is unaffected by CRISPR Bra disruption. We identify Foxa.a and Mnx as potential co-regulators, and find that combinatorial cocktails are more effective at reprogramming other cell types than Bra alone. We reassess the network relationships between Bra, Foxa.a and other components of the notochord gene regulatory network, and find that Foxa.a expression in the notochord is regulated by vegetal FGF signaling. It is a direct activator of Bra expression and has a binding motif that is significantly enriched in the regulatory regions of notochord-enriched genes. These and other results indicate that Bra and Foxa.a act together in a regulatory network dominated by positive feed-forward interactions, with neither being a classically defined master regulator.


Assuntos
Ciona/genética , Ciona/metabolismo , Proteínas Fetais/genética , Proteínas Fetais/metabolismo , Notocorda/metabolismo , Proteínas com Domínio T/genética , Proteínas com Domínio T/metabolismo , Animais , Ciona intestinalis/genética , Ciona intestinalis/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Redes Reguladoras de Genes , Notocorda/crescimento & desenvolvimento , Transativadores , Fatores de Transcrição/metabolismo
2.
Development ; 148(24)2021 12 15.
Artigo em Inglês | MEDLINE | ID: mdl-34951463

RESUMO

Using the self-fertilizing mangrove killifish, we characterized two mutants, shorttail (stl) and balltail (btl). These mutants showed abnormalities in the posterior notochord and muscle development. Taking advantage of a highly inbred isogenic strain of the species, we rapidly identified the mutated genes, noto and msgn1 in the stl and btl mutants, respectively, using a single lane of RNA sequencing without the need of a reference genome or genetic mapping techniques. Next, we confirmed a conserved morphant phenotype in medaka and demonstrate a crucial role of noto and msgn1 in cell sorting between the axial and paraxial part of the tail mesoderm. This novel system could substantially accelerate future small-scale forward-genetic screening and identification of mutations. Therefore, the mangrove killifish could be used as a complementary system alongside existing models for future molecular genetic studies.


Assuntos
Desenvolvimento Embrionário/genética , Fundulidae/genética , Notocorda/crescimento & desenvolvimento , Cauda/crescimento & desenvolvimento , Animais , Mapeamento Cromossômico , Embrião não Mamífero , Fundulidae/crescimento & desenvolvimento , Testes Genéticos , Genoma/genética , Mutação/genética , Notocorda/metabolismo , Fenótipo , Filogenia , Autofertilização , Cauda/metabolismo
3.
Development ; 148(23)2021 12 01.
Artigo em Inglês | MEDLINE | ID: mdl-34822716

RESUMO

The node-streak border region comprising notochord progenitor cells (NPCs) at the posterior node and neuro-mesodermal progenitor cells (NMPs) in the adjacent epiblast is the prime organizing center for axial elongation in mouse embryos. The T-box transcription factor brachyury (T) is essential for both formation of the notochord and maintenance of NMPs, and thus is a key regulator of trunk and tail development. The T promoter controlling T expression in NMPs and nascent mesoderm has been characterized in detail; however, control elements for T expression in the notochord have not been identified yet. We have generated a series of deletion alleles by CRISPR/Cas9 genome editing in mESCs, and analyzed their effects in mutant mouse embryos. We identified a 37 kb region upstream of T that is essential for notochord function and tailbud outgrowth. Within that region, we discovered a T-binding enhancer required for notochord cell specification and differentiation. Our data reveal a complex regulatory landscape controlling cell type-specific expression and function of T in NMP/nascent mesoderm and node/notochord, allowing proper trunk and tail development.


Assuntos
Desenvolvimento Embrionário/genética , Elementos Facilitadores Genéticos/genética , Proteínas Fetais/genética , Proteínas com Domínio T/genética , Cauda/crescimento & desenvolvimento , Sequência de Aminoácidos/genética , Animais , Sistemas CRISPR-Cas/genética , Edição de Genes/métodos , Regulação da Expressão Gênica no Desenvolvimento/genética , Mesoderma/crescimento & desenvolvimento , Mesoderma/metabolismo , Camundongos , Células-Tronco Embrionárias Murinas/citologia , Células-Tronco Embrionárias Murinas/metabolismo , Notocorda/crescimento & desenvolvimento , Notocorda/metabolismo , Regiões Promotoras Genéticas/genética , Sequências Reguladoras de Ácido Nucleico/genética , Cauda/metabolismo
4.
PLoS Genet ; 17(1): e1009305, 2021 01.
Artigo em Inglês | MEDLINE | ID: mdl-33465083

RESUMO

Many genes are regulated by two or more enhancers that drive similar expression patterns. Evolutionary theory suggests that these seemingly redundant enhancers must have functionally important differences. In the simple ascidian chordate Ciona, the transcription factor Brachyury is induced exclusively in the presumptive notochord downstream of lineage specific regulators and FGF-responsive Ets family transcription factors. Here we exploit the ability to finely titrate FGF signaling activity via the MAPK pathway using the MEK inhibitor U0126 to quantify the dependence of transcription driven by different Brachyury reporter constructs on this direct upstream regulator. We find that the more powerful promoter-adjacent proximal enhancer and a weaker distal enhancer have fundamentally different dose-response relationships to MAPK inhibition. The Distal enhancer is more sensitive to MAPK inhibition but shows a less cooperative response, whereas the Proximal enhancer is less sensitive and more cooperative. A longer construct containing both enhancers has a complex dose-response curve that supports the idea that the proximal and distal enhancers are moderately super-additive. We show that the overall expression loss from intermediate doses of U0126 is not only a function of the fraction of cells expressing these reporters, but also involves graded decreases in expression at the single-cell level. Expression of the endogenous gene shows a comparable dose-response relationship to the full length reporter, and we find that different notochord founder cells are differentially sensitive to MAPK inhibition. Together, these results indicate that although the two Brachyury enhancers have qualitatively similar expression patterns, they respond to FGF in quantitatively different ways and act together to drive high levels of Brachyury expression with a characteristic input/output relationship. This indicates that they are fundamentally not equivalent genetic elements.


Assuntos
Ciona intestinalis/genética , Elementos Facilitadores Genéticos/genética , Proteínas Fetais/genética , Fatores de Crescimento de Fibroblastos/genética , Proteínas com Domínio T/genética , Sequência de Aminoácidos/genética , Animais , Ciona intestinalis/crescimento & desenvolvimento , Regulação da Expressão Gênica no Desenvolvimento/genética , Sistema de Sinalização das MAP Quinases/genética , Notocorda/crescimento & desenvolvimento , Notocorda/metabolismo , Regiões Promotoras Genéticas/genética , Fatores de Transcrição/genética
5.
Development ; 147(24)2020 12 23.
Artigo em Inglês | MEDLINE | ID: mdl-33361090

RESUMO

Ventral bending of the embryonic tail within the chorion is an evolutionarily conserved morphogenetic event in both invertebrates and vertebrates. However, the complexity of the anatomical structure of vertebrate embryos makes it difficult to experimentally identify the mechanisms underlying embryonic folding. This study investigated the mechanisms underlying embryonic tail bending in chordates. To further understand the mechanical role of each tissue, we also developed a physical model with experimentally measured parameters to simulate embryonic tail bending. Actomyosin asymmetrically accumulated at the ventral side of the notochord, and cell proliferation of the dorsal tail epidermis was faster than that in the ventral counterpart during embryonic tail bending. Genetic disruption of actomyosin activity and inhibition of cell proliferation dorsally caused abnormal tail bending, indicating that both asymmetrical actomyosin contractility in the notochord and the discrepancy of epidermis cell proliferation are required for tail bending. In addition, asymmetrical notochord contractility was sufficient to drive embryonic tail bending, whereas differential epidermis proliferation was a passive response to mechanical forces. These findings showed that asymmetrical notochord contractility coordinates with differential epidermis proliferation mechanisms to drive embryonic tail bending.This article has an associated 'The people behind the papers' interview.


Assuntos
Actomiosina/genética , Morfogênese/genética , Cauda/crescimento & desenvolvimento , Actomiosina/metabolismo , Animais , Proliferação de Células/genética , Ciona/embriologia , Ciona/genética , Ciona/crescimento & desenvolvimento , Células Epiteliais/metabolismo , Contração Muscular/fisiologia , Notocorda/embriologia , Notocorda/crescimento & desenvolvimento , Cauda/embriologia
6.
Proc Natl Acad Sci U S A ; 117(6): 3034-3044, 2020 02 11.
Artigo em Inglês | MEDLINE | ID: mdl-31988131

RESUMO

Developmental novelties often underlie the evolutionary origins of key metazoan features. The anuran urostyle, which evolved nearly 200 MYA, is one such structure. It forms as the tail regresses during metamorphosis, when locomotion changes from an axial-driven mode in larvae to a limb-driven one in adult frogs. The urostyle comprises of a coccyx and a hypochord. The coccyx forms by fusion of caudal vertebrae and has evolved repeatedly across vertebrates. However, the contribution of an ossifying hypochord to the coccyx in anurans is unique among vertebrates and remains a developmental enigma. Here, we focus on the developmental changes that lead to the anuran urostyle, with an emphasis on understanding the ossifying hypochord. We find that the coccyx and hypochord have two different developmental histories: First, the development of the coccyx initiates before metamorphic climax whereas the ossifying hypochord undergoes rapid ossification and hypertrophy; second, thyroid hormone directly affects hypochord formation and appears to have a secondary effect on the coccygeal portion of the urostyle. The embryonic hypochord is known to play a significant role in the positioning of the dorsal aorta (DA), but the reason for hypochordal ossification remains obscure. Our results suggest that the ossifying hypochord plays a role in remodeling the DA in the newly forming adult body by partially occluding the DA in the tail. We propose that the ossifying hypochord-induced loss of the tail during metamorphosis has enabled the evolution of the unique anuran bauplan.


Assuntos
Anuros , Evolução Biológica , Cóccix , Metamorfose Biológica/fisiologia , Animais , Anuros/anatomia & histologia , Anuros/embriologia , Anuros/crescimento & desenvolvimento , Cóccix/anatomia & histologia , Cóccix/embriologia , Cóccix/crescimento & desenvolvimento , Larva/anatomia & histologia , Larva/crescimento & desenvolvimento , Notocorda/anatomia & histologia , Notocorda/embriologia , Notocorda/crescimento & desenvolvimento
7.
J Cell Physiol ; 235(6): 5241-5255, 2020 06.
Artigo em Inglês | MEDLINE | ID: mdl-31840817

RESUMO

Intervertebral disc degeneration (IDD) is a public health dilemma as it is associated with low back and neck pain, a frequent reason for patients to visit the physician. During IDD, nucleus pulposus (NP), the central compartment of intervertebral disc (IVD) undergo degeneration. Stem cells have been adopted as a promising biological source to regenerate the IVD and restore its function. Here, we describe a simple, two-step differentiation strategy using a cocktail of four factors (LDN, AGN, FGF, and CHIR) for efficient derivation of notochordal cells from human embryonic stem cells (hESCs). We employed a CRISPR/Cas9 based genome-editing approach to knock-in the mCherry reporter vector upstream of the 3' untranslated region of the Noto gene in H9-hESCs and monitored notochordal cell differentiation. Our data show that treatment of H9-hESCs with the above-mentioned four factors for 6 days successfully resulted in notochordal cells. These cells were characterized by morphology, immunostaining, and gene and protein expression analyses for established notochordal cell markers including FoxA2, SHH, and Brachyury. Additionally, pan-genomic high-throughput single cell RNA-sequencing revealed an efficient and robust notochordal differentiation. We further identified a key regulatory network consisting of eight candidate genes encoding transcription factors including PAX6, GDF3, FOXD3, TDGF1, and SOX5, which are considered as potential drivers of notochordal differentiation. This is the first single cell transcriptomic analysis of notochordal cells derived from hESCs. The ability to efficiently obtain notochordal cells from pluripotent stem cells provides an additional tool to develop new cell-based therapies for the treatment of IDD.


Assuntos
Diferenciação Celular/genética , Células-Tronco Embrionárias Humanas/metabolismo , Degeneração do Disco Intervertebral/genética , Transcriptoma/genética , Biomarcadores/metabolismo , Proteínas Fetais/genética , Fatores de Transcrição Forkhead/genética , Proteínas Ligadas por GPI/genética , Redes Reguladoras de Genes/genética , Fator 3 de Diferenciação de Crescimento/genética , Células-Tronco Embrionárias Humanas/citologia , Humanos , Células-Tronco Pluripotentes Induzidas , Peptídeos e Proteínas de Sinalização Intercelular/genética , Disco Intervertebral/crescimento & desenvolvimento , Degeneração do Disco Intervertebral/patologia , Proteínas de Neoplasias/genética , Notocorda/crescimento & desenvolvimento , Notocorda/metabolismo , Núcleo Pulposo/crescimento & desenvolvimento , Núcleo Pulposo/metabolismo , Fator de Transcrição PAX6/genética , Regeneração/genética , Fatores de Transcrição SOXD/genética , Análise de Célula Única , Proteínas com Domínio T/genética
8.
Dev Growth Differ ; 62(6): 379-390, 2020 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-32275068

RESUMO

The notochord is a defining feature of chordates. During notochord formation in vertebrates and tunicates, notochord cells display dynamic morphogenetic movement, called convergent extension, in which cells intercalate and align at the dorsal midline. However, in cephalochordates, the most basal group of chordates, the notochord is formed without convergent extension. It is simply developed from mesodermal cells at the dorsal midline. This suggests that convergent extension movement of notochord cells is a secondarily acquired developmental attribute in the common ancestor of olfactores (vertebrates + tunicates), and that the chordate ancestor innovated the notochord upon a foundation of morphogenetic mechanisms independent of cell movement. Therefore, this review focuses on biological features specific to notochord cells, which have been well studied using clawed frogs, zebrafish, and tunicates. Attributes of notochord cells, such as vacuolation, membrane trafficking, extracellular matrix formation, and apoptosis, can be understood in terms of two properties: turgor pressure of vacuoles and strength of the notochord sheath. To maintain the straight rod-like structure of the notochord, these parameters must be counterbalanced. In the future, the turgor pressure-sheath strength model, proposed in this review, will be examined in light of quantitative molecular data and mathematical simulations, illuminating the evolutionary origin of the notochord.


Assuntos
Modelos Biológicos , Morfogênese , Notocorda/crescimento & desenvolvimento , Notocorda/metabolismo , Animais , Apoptose , Proliferação de Células , Notocorda/citologia
9.
Gen Comp Endocrinol ; 287: 113349, 2020 02 01.
Artigo em Inglês | MEDLINE | ID: mdl-31794731

RESUMO

Anuran metamorphosis is perhaps the most dramatic developmental process regulated by thyroid hormone (TH). One of the unique processes that occur during metamorphosis is the complete resorption of the tail, including the notochord. Interestingly, recent gene knockout studies have shown that of the two known vertebrate TH receptors, TRα and TRß, TRß appears to be critical for notochord regression during tail resorption in Xenopus tropicalis. To determine the mechanisms underlying notochord regression, we carried out a comprehensive gene expression analysis in the notochord during metamorphosis by using RNA-Seq analyses of whole tail at stage 60 before any noticeable tail length reduction, whole tail at stage 63 when the tail length is reduced by about one half, and the rest of the tail at stage 63 after removing the notochord. This allowed us to identify many notochord-enriched, metamorphosis-induced genes at stage 63. Future studies on these genes should help to determine if they are regulated by TRß and play any roles in notochord regression.


Assuntos
Regulação da Expressão Gênica no Desenvolvimento/genética , Notocorda/crescimento & desenvolvimento , RNA-Seq/métodos , Cauda/crescimento & desenvolvimento , Xenopus laevis/crescimento & desenvolvimento , Xenopus/genética , Animais
10.
PLoS Genet ; 12(11): e1006440, 2016 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-27855159

RESUMO

During embryogenesis the spinal cord shifts position along the anterior-posterior axis relative to adjacent tissues. How motor neurons whose cell bodies are located in the spinal cord while their axons reside in adjacent tissues compensate for such tissue shift is not well understood. Using live cell imaging in zebrafish, we show that as motor axons exit from the spinal cord and extend through extracellular matrix produced by adjacent notochord cells, these cells shift several cell diameters caudally. Despite this pronounced shift, individual motoneuron cell bodies stay aligned with their extending axons. We find that this alignment requires myosin phosphatase activity within motoneurons, and that mutations in the myosin phosphatase subunit mypt1 increase myosin phosphorylation causing a displacement between motoneuron cell bodies and their axons. Thus, we demonstrate that spinal motoneurons fine-tune their position during axonogenesis and we identify the myosin II regulatory network as a key regulator.


Assuntos
Axônios , Desenvolvimento Embrionário/genética , Fosfatase de Miosina-de-Cadeia-Leve/genética , Neurogênese/genética , Animais , Regulação da Expressão Gênica no Desenvolvimento , Neurônios Motores/citologia , Neurônios Motores/metabolismo , Células Musculares/citologia , Células Musculares/metabolismo , Fosfatase de Miosina-de-Cadeia-Leve/biossíntese , Notocorda/crescimento & desenvolvimento , Medula Espinal/crescimento & desenvolvimento , Peixe-Zebra/genética , Peixe-Zebra/crescimento & desenvolvimento
11.
Dev Dyn ; 247(4): 660-671, 2018 04.
Artigo em Inglês | MEDLINE | ID: mdl-29266590

RESUMO

BACKGROUND: Mov10 is an RNA helicase that modulates access of Argonaute 2 to microRNA recognition elements in mRNAs. We examined the role of Mov10 in Xenopus laevis development and show a critical role for Mov10 in gastrulation and in the development of the central nervous system (CNS). RESULTS: Knockdown of maternal Mov10 in Xenopus embryos using a translation blocking morpholino led to defects in gastrulation and the development of notochord and paraxial mesoderm, and a failure to neurulate. RNA sequencing of the Mov10 knockdown embryos showed significant upregulation of many mRNAs when compared with controls at stage 10.5 (including those related to the cytoskeleton, adhesion, and extracellular matrix, which are involved in those morphogenetic processes). Additionally, the degradation of the miR-427 target mRNA, cyclin A1, was delayed in the Mov10 knockdowns. These defects suggest that Mov10's role in miRNA-mediated regulation of the maternal to zygotic transition could lead to pleiotropic effects that cause the gastrulation defects. Additionally, the knockdown of zygotic Mov10 showed that it was necessary for normal head, eye, and brain development in Xenopus consistent with a recent study in the mouse. CONCLUSIONS: Mov10 is essential for gastrulation and normal CNS development. Developmental Dynamics 247:660-671, 2018. © 2017 Wiley Periodicals, Inc.


Assuntos
Sistema Nervoso Central/crescimento & desenvolvimento , Gastrulação , RNA Helicases/fisiologia , Animais , Embrião não Mamífero , Mesoderma/crescimento & desenvolvimento , Notocorda/crescimento & desenvolvimento , Xenopus laevis/embriologia
12.
Adv Exp Med Biol ; 1029: 165-177, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29542089

RESUMO

This review covers recent advances in our understanding of the cell biology and morphogenesis of the ascidian notochord. In its development, the ascidian notochord undergoes a rapid series of cellular and morphogenic events that transform a group of 40 loosely packed cells in the neurula embryo into a tubular column with central lumen in the larva. The ascidian notochord has been a subject of intensive research in recent years, and particular focus in this review will be on events associated with the development and function of polarized cell properties, and the mechanism of lumen formation.


Assuntos
Ciona intestinalis/citologia , Notocorda/citologia , Animais , Linhagem da Célula , Polaridade Celular , Ciona intestinalis/embriologia , Ciona intestinalis/crescimento & desenvolvimento , Embrião não Mamífero/citologia , Técnicas de Silenciamento de Genes , Larva/citologia , Larva/ultraestrutura , Morfogênese/genética , Mosaicismo , Notocorda/embriologia , Notocorda/crescimento & desenvolvimento , Fenótipo , Cauda/embriologia , Cauda/crescimento & desenvolvimento
13.
PLoS Genet ; 11(12): e1005730, 2015 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-26684323

RESUMO

A main challenge of modern biology is to understand how specific constellations of genes are activated to differentiate cells and give rise to distinct tissues. This study focuses on elucidating how gene expression is initiated in the notochord, an axial structure that provides support and patterning signals to embryos of humans and all other chordates. Although numerous notochord genes have been identified, the regulatory DNAs that orchestrate development and propel evolution of this structure by eliciting notochord gene expression remain mostly uncharted, and the information on their configuration and recurrence is still quite fragmentary. Here we used the simple chordate Ciona for a systematic analysis of notochord cis-regulatory modules (CRMs), and investigated their composition, architectural constraints, predictive ability and evolutionary conservation. We found that most Ciona notochord CRMs relied upon variable combinations of binding sites for the transcription factors Brachyury and/or Foxa2, which can act either synergistically or independently from one another. Notably, one of these CRMs contains a Brachyury binding site juxtaposed to an (AC) microsatellite, an unusual arrangement also found in Brachyury-bound regulatory regions in mouse. In contrast, different subsets of CRMs relied upon binding sites for transcription factors of widely diverse families. Surprisingly, we found that neither intra-genomic nor interspecific conservation of binding sites were reliably predictive hallmarks of notochord CRMs. We propose that rather than obeying a rigid sequence-based cis-regulatory code, most notochord CRMs are rather unique. Yet, this study uncovered essential elements recurrently used by divergent chordates as basic building blocks for notochord CRMs.


Assuntos
Proteínas Fetais/genética , Fator 3-beta Nuclear de Hepatócito/genética , Notocorda/crescimento & desenvolvimento , Sequências Reguladoras de Ácido Nucleico/genética , Proteínas com Domínio T/genética , Animais , Sítios de Ligação , Padronização Corporal/genética , Ciona intestinalis/genética , Ciona intestinalis/crescimento & desenvolvimento , Regulação da Expressão Gênica no Desenvolvimento , Genoma , Camundongos
14.
PLoS Biol ; 12(9): e1001955, 2014 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-25247423

RESUMO

Ephrins and Eph receptors are involved in the establishment of vertebrate tissue boundaries. The complexity of the system is puzzling, however in many instances, tissues express multiple ephrins and Ephs on both sides of the boundary, a situation that should in principle cause repulsion between cells within each tissue. Although co-expression of ephrins and Eph receptors is widespread in embryonic tissues, neurons, and cancer cells, it is still unresolved how the respective signals are integrated into a coherent output. We present a simple explanation for the confinement of repulsion to the tissue interface: Using the dorsal ectoderm-mesoderm boundary of the Xenopus embryo as a model, we identify selective functional interactions between ephrin-Eph pairs that are expressed in partial complementary patterns. The combined repulsive signals add up to be strongest across the boundary, where they reach sufficient intensity to trigger cell detachments. The process can be largely explained using a simple model based exclusively on relative ephrin and Eph concentrations and binding affinities. We generalize these findings for the ventral ectoderm-mesoderm boundary and the notochord boundary, both of which appear to function on the same principles. These results provide a paradigm for how developmental systems may integrate multiple cues to generate discrete local outcomes.


Assuntos
Ectoderma/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Mesoderma/metabolismo , Morfogênese/genética , Notocorda/metabolismo , Xenopus laevis/genética , Animais , Ectoderma/crescimento & desenvolvimento , Embrião não Mamífero , Efrina-B1/genética , Efrina-B1/metabolismo , Efrina-B2/genética , Efrina-B2/metabolismo , Efrina-B3/genética , Efrina-B3/metabolismo , Mesoderma/crescimento & desenvolvimento , Camundongos , Notocorda/crescimento & desenvolvimento , Receptor EphA4/genética , Receptor EphA4/metabolismo , Receptor EphB2/genética , Receptor EphB2/metabolismo , Receptor EphB4/genética , Receptor EphB4/metabolismo , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Transdução de Sinais , Xenopus laevis/crescimento & desenvolvimento , Xenopus laevis/metabolismo
15.
PLoS Biol ; 11(10): e1001698, 2013 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-24204213

RESUMO

How does a fertilized egg decode its own genome to eventually develop into a mature animal? Each developing cell must activate a battery of genes in a timely manner and according to the function it will ultimately perform, but how? During development of the notochord--a structure akin to the vertebrate spine--in a simple marine invertebrate, an essential protein called Brachyury binds to specific sites in its target genes. A study just published in PLOS Biology reports that if the target gene contains multiple Brachyury-binding sites it will be activated early in development but if it contains only one site it will be activated later. Genes that contain no binding site can still be activated by Brachyury, but only indirectly by an earlier Brachyury-dependent gene product, so later than the directly activated genes. Thus, this study shows how several genes can interpret the presence of a single factor differently to become active at distinct times in development.


Assuntos
Ciona intestinalis/crescimento & desenvolvimento , Ciona intestinalis/genética , Regulação da Expressão Gênica no Desenvolvimento , Sequências Reguladoras de Ácido Nucleico/genética , Animais , Morfogênese/genética , Notocorda/crescimento & desenvolvimento , Notocorda/metabolismo , Fatores de Tempo
16.
PLoS Biol ; 11(10): e1001697, 2013 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-24204212

RESUMO

The appearance of the notochord represented a milestone in Deuterostome evolution. The notochord is necessary for the development of the chordate body plan and for the formation of the vertebral column and numerous organs. It is known that the transcription factor Brachyury is required for notochord formation in all chordates, and that it controls transcription of a large number of target genes. However, studies of the structure of the cis-regulatory modules (CRMs) through which this control is exerted are complicated in vertebrates by the genomic complexity and the pan-mesodermal expression territory of Brachyury. We used the ascidian Ciona, in which the single-copy Brachyury is notochord-specific and CRMs are easily identifiable, to carry out a systematic characterization of Brachyury-downstream notochord CRMs. We found that Ciona Brachyury (Ci-Bra) controls most of its targets directly, through non-palindromic binding sites that function either synergistically or individually to activate early- and middle-onset genes, respectively, while late-onset target CRMs are controlled indirectly, via transcriptional intermediaries. These results illustrate how a transcriptional regulator can efficiently shape a shallow gene regulatory network into a multi-tiered transcriptional output, and provide insights into the mechanisms that establish temporal read-outs of gene expression in a fast-developing chordate embryo.


Assuntos
Ciona intestinalis/genética , Proteínas Fetais/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Notocorda/metabolismo , Proteínas com Domínio T/metabolismo , Animais , Sítios de Ligação , Ciona intestinalis/crescimento & desenvolvimento , Sequência Consenso/genética , Notocorda/crescimento & desenvolvimento , Ligação Proteica/genética , Sequências Reguladoras de Ácido Nucleico/genética , Reprodutibilidade dos Testes , Especificidade da Espécie , Fatores de Tempo
17.
Fish Physiol Biochem ; 41(4): 961-9, 2015 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-25952972

RESUMO

The epidermal growth factor (EGF) repeat motif defines a superfamily of diverse protein involved in regulating a variety of cellular and physiological processes, such as cell cycle, cell adhesion, proliferation, migration, and neural development. Egfl6, an EGF protein, also named MAGE was first cloned in human tissue. Up to date, the study of zebrafish Egfl6 expression pattern and functional analysis of Egfl6 involved in embryonic development of vertebrate in vivo is thus far lacking. Here we reported that Egfl6 was involved in zebrafish notochord development. It was shown that Egfl6 mRNA was expressed in zebrafish, developing somites, fin epidermis, pharyngeal arches, and hindbrain region. Particularly the secreted Egfl6 protein was significantly accumulated in notochord. Loss of Egfl6 function in zebrafish embryos resulted in curved body with distorted notochord in the posterior trunk. It was observed that expression of all Notch ligand and receptors in notochord of 28 hpf Egfl6 morphants was not affected, except notch2, which was up-regulated. We found that inhibition of Notch signaling by DAPT efficiently rescued notochord developmental defect of Egfl6 deficiency embryos.


Assuntos
Glicoproteínas de Membrana/metabolismo , Notocorda/crescimento & desenvolvimento , Proteínas de Peixe-Zebra/metabolismo , Peixe-Zebra/crescimento & desenvolvimento , Animais , Dipeptídeos/farmacologia , Glicoproteínas de Membrana/genética , RNA Mensageiro/metabolismo , Receptores Notch/antagonistas & inibidores , Peixe-Zebra/genética , Peixe-Zebra/metabolismo , Proteínas de Peixe-Zebra/genética
18.
Genesis ; 52(12): 925-34, 2014 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-25303744

RESUMO

As a group closely related to chordates, hemichordate acorn worms are in a key phylogenic position for addressing hypotheses of chordate origins. The stomochord of acorn worms is an anterior outgrowth of the pharynx endoderm into the proboscis. In 1886 Bateson proposed homology of this organ to the chordate notochord, crowning this animal group "hemichordates." Although this proposal has been debated for over a century, the question still remains unresolved. Here we review recent progress related to this question. First, the developmental mode of the stomochord completely differs from that of the notochord. Second, comparison of expression profiles of genes including Brachyury, a key regulator of notochord formation in chordates, does not support the stomochord/notochord homology. Third, FoxE that is expressed in the stomochord-forming region in acorn worm juveniles is expressed in the club-shaped gland and in the endostyle of amphioxus, in the endostyle of ascidians, and in the thyroid gland of vertebrates. Based on these findings, together with the anterior endodermal location of the stomochord, we propose that the stomochord has evolutionary relatedness to chordate organs deriving from the anterior pharynx rather than to the notochord.


Assuntos
Evolução Biológica , Cordados/anatomia & histologia , Cordados/genética , Notocorda/crescimento & desenvolvimento , Faringe/crescimento & desenvolvimento , Animais , Cordados/classificação , Endoderma/metabolismo , Proteínas Fetais/metabolismo , Fatores de Transcrição Forkhead/metabolismo , Mucosa Gástrica/metabolismo , Notocorda/metabolismo , Faringe/metabolismo , Proteínas com Domínio T/metabolismo
19.
BMC Genomics ; 15: 141, 2014 Feb 19.
Artigo em Inglês | MEDLINE | ID: mdl-24548379

RESUMO

BACKGROUND: In teleosts such as Atlantic salmon (Salmo salar L.), segmentation and subsequent mineralisation of the notochord during embryonic stages are essential for normal vertebrae formation. However, the molecular mechanisms leading to segmentation and mineralisation of the notochord are poorly understood. The aim of this study was to identify genes/pathways acting in gradients over time and along the anterior-posterior axis during notochord segmentation and immediately prior to mineralisation of the vertebral bodies in Atlantic salmon. RESULTS: Notochord samples were collected from unsegmented, pre-segmented and segmented developmental stages. In each stage, the cellular core of the notochord was cut into three pieces along the longitudinal axis (anterior, mid, posterior). RNA was sequenced (22 million pair-end 100 bp/ library) and mapped to the salmon genome. 66569 transcripts were predicted and 55775 were annotated. In order to identify possible gradients leading to segmentation of the notochord, all 71 notochord-expressed hox genes were investigated, most of them displaying a typical anterior-posterior expression pattern along the notochord axis. The clustering of hox genes revealed a pattern that could be related to notochord segmentation. We further investigated how mineralisation is initiated in the notochord, and several factors related to chondrogenic lineage were identified (sox9, sox5, sox6, tgfb3, ihhb and col2a1), suggesting a cartilage-like character of the notochord. KEGG analysis of differentially expressed genes between stages revealed down-regulation of pathways associated with ECM, cell division, metabolism and development at onset of notochord segmentation. This implies that inhibitory signals produce segmentation of the notochord. One such potential inhibitory signal was identified, col11a2, which was detected in segments of non-mineralising notochord. CONCLUSIONS: An incomplete salmon genome was successfully used to analyse RNA-seq data from the cellular core of the Atlantic salmon notochord. In transcriptome we found; hox gene patterns possibly linked to segmentation; down-regulation of pathways in the notochord at onset of segmentation; segmented expression of col11a2 in non-mineralised segments of the notochord; and a chondroblast-like footprint in the notochord.


Assuntos
Notocorda/metabolismo , Salmo salar/genética , Transcriptoma , Animais , Cartilagem/metabolismo , Cartilagem/patologia , Linhagem da Célula , Análise por Conglomerados , Colágeno Tipo XI/genética , Colágeno Tipo XI/metabolismo , Biologia Computacional , Regulação para Baixo , Matriz Extracelular/metabolismo , Expressão Gênica , Sequenciamento de Nucleotídeos em Larga Escala , Proteínas de Homeodomínio/genética , Proteínas de Homeodomínio/metabolismo , Notocorda/citologia , Notocorda/crescimento & desenvolvimento , RNA/química , RNA/isolamento & purificação , Fatores de Transcrição SOXD/genética , Fatores de Transcrição SOXD/metabolismo , Salmo salar/embriologia , Análise de Sequência de RNA
20.
Genesis ; 51(6): 383-409, 2013 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-23436627

RESUMO

A central challenge of developmental and evolutionary biology is to explain how anatomy is encoded in the genome. Anatomy emerges progressively during embryonic development, as a consequence of morphogenetic processes. The specialized properties of embryonic cells and tissues that drive morphogenesis, like other specialized properties of cells, arise as a consequence of differential gene expression. Recently, gene regulatory networks (GRNs) have proven to be powerful conceptual and experimental tools for analyzing the genetic control and evolution of developmental processes. A major current goal is to link these transcriptional networks directly to morphogenetic processes. This review highlights three experimental models (sea urchin skeletogenesis, ascidian notochord morphogenesis, and the formation of somatic muscles in Drosophila) that are currently being used to analyze the genetic control of anatomy by integrating information of several important kinds: (1) morphogenetic mechanisms at the molecular, cellular and tissue levels that are responsible for shaping a specific anatomical feature, (2) the underlying GRN circuitry deployed in the relevant cells, and (3) modifications to gene regulatory circuitry that have accompanied evolutionary changes in the anatomical feature.


Assuntos
Drosophila/embriologia , Regulação da Expressão Gênica no Desenvolvimento , Redes Reguladoras de Genes , Morfogênese/genética , Desenvolvimento Muscular/genética , Ouriços-do-Mar/genética , Urocordados/genética , Animais , Evolução Biológica , Drosophila/crescimento & desenvolvimento , Evolução Molecular , Perfilação da Expressão Gênica , Regulação da Expressão Gênica , Notocorda/embriologia , Notocorda/crescimento & desenvolvimento , Notocorda/fisiologia , Osteogênese/genética , Osteogênese/fisiologia , Filogenia , Ouriços-do-Mar/anatomia & histologia , Ouriços-do-Mar/embriologia , Ouriços-do-Mar/crescimento & desenvolvimento , Urocordados/embriologia
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