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1.
Nat Commun ; 15(1): 5055, 2024 Jun 13.
Artigo em Inglês | MEDLINE | ID: mdl-38871742

RESUMO

The anterior-posterior axis of the mammalian embryo is laid down by the anterior visceral endoderm (AVE), an extraembryonic signaling center that is specified within the visceral endoderm. Current models posit that AVE differentiation is promoted globally by epiblast-derived Nodal signals, and spatially restricted by a BMP gradient established by the extraembryonic ectoderm. Here, we report spatially restricted AVE differentiation in bilayered embryo-like aggregates made from mouse embryonic stem cells that lack an extraembryonic ectoderm. Notably, clusters of AVE cells also form in pure visceral endoderm cultures upon activation of Nodal signaling, indicating that tissue-intrinsic factors can restrict AVE differentiation. We identify ß-catenin activity as a tissue-intrinsic factor that antagonizes AVE-inducing Nodal signals. Together, our results show how an AVE-like population can arise through interactions between epiblast and visceral endoderm alone. This mechanism may be a flexible solution for axis patterning in a wide range of embryo geometries, and provide robustness to axis patterning when coupled with signal gradients.


Assuntos
Padronização Corporal , Diferenciação Celular , Endoderma , Proteína Nodal , Transdução de Sinais , beta Catenina , Animais , Endoderma/citologia , Endoderma/metabolismo , Endoderma/embriologia , beta Catenina/metabolismo , Camundongos , Proteína Nodal/metabolismo , Proteína Nodal/genética , Camadas Germinativas/metabolismo , Camadas Germinativas/citologia , Células-Tronco Embrionárias Murinas/metabolismo , Células-Tronco Embrionárias Murinas/citologia , Regulação da Expressão Gênica no Desenvolvimento , Embrião de Mamíferos/citologia
2.
Proc Natl Acad Sci U S A ; 121(25): e2219137121, 2024 Jun 18.
Artigo em Inglês | MEDLINE | ID: mdl-38861593

RESUMO

Cortical arealization arises during neurodevelopment from the confluence of molecular gradients representing patterned expression of morphogens and transcription factors. However, whether similar gradients are maintained in the adult brain remains unknown. Here, we uncover three axes of topographic variation in gene expression in the adult human brain that specifically capture previously identified rostral-caudal, dorsal-ventral, and medial-lateral axes of early developmental patterning. The interaction of these spatiomolecular gradients i) accurately reconstructs the position of brain tissue samples, ii) delineates known functional territories, and iii) can model the topographical variation of diverse cortical features. The spatiomolecular gradients are distinct from canonical cortical axes differentiating the primary sensory cortex from the association cortex, but radiate in parallel with the axes traversed by local field potentials along the cortex. We replicate all three molecular gradients in three independent human datasets as well as two nonhuman primate datasets and find that each gradient shows a distinct developmental trajectory across the lifespan. The gradients are composed of several well-known transcription factors (e.g., PAX6 and SIX3), and a small set of genes shared across gradients are strongly enriched for multiple diseases. Together, these results provide insight into the developmental sculpting of functionally distinct brain regions, governed by three robust transcriptomic axes embedded within brain parenchyma.


Assuntos
Encéfalo , Humanos , Encéfalo/metabolismo , Animais , Adulto , Fatores de Transcrição/metabolismo , Fatores de Transcrição/genética , Fator de Transcrição PAX6/metabolismo , Fator de Transcrição PAX6/genética , Regulação da Expressão Gênica no Desenvolvimento , Masculino , Padronização Corporal/genética , Feminino , Proteínas do Tecido Nervoso/metabolismo , Proteínas do Tecido Nervoso/genética
3.
Proc Natl Acad Sci U S A ; 121(25): e2403809121, 2024 Jun 18.
Artigo em Inglês | MEDLINE | ID: mdl-38861596

RESUMO

The dorsal and anal fins can vary widely in position and length along the anterior-posterior axis in teleost fishes. However, the molecular mechanisms underlying the diversification of these fins remain unknown. Here, we used genetic approaches in zebrafish and medaka, in which the relative positions of the dorsal and anal fins are opposite, to demonstrate the crucial role of hox genes in the patterning of the teleost posterior body, including the dorsal and anal fins. By the CRISPR-Cas9-induced frameshift mutations and positional cloning of spontaneous dorsalfinless medaka, we show that various hox mutants exhibit the absence of dorsal or anal fins, or a stepwise posterior extension of these fins, with vertebral abnormalities. Our results indicate that multiple hox genes, primarily from hoxc-related clusters, encompass the regions responsible for the dorsal and anal fin formation along the anterior-posterior axis. These results further suggest that shifts in the anterior boundaries of hox expression which vary among fish species, lead to diversification in the position and size of the dorsal and anal fins, similar to how modulations in Hox expression can alter the number of anatomically distinct vertebrae in tetrapods. Furthermore, we show that hox genes responsible for dorsal fin formation are different between zebrafish and medaka. Our results suggest that a novel mechanism has occurred during teleost evolution, in which the gene network responsible for fin formation might have switched to the regulation downstream of other hox genes, leading to the remarkable diversity in the dorsal fin position.


Assuntos
Nadadeiras de Animais , Genes Homeobox , Proteínas de Homeodomínio , Oryzias , Peixe-Zebra , Animais , Oryzias/genética , Peixe-Zebra/genética , Genes Homeobox/genética , Proteínas de Homeodomínio/genética , Proteínas de Homeodomínio/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Padronização Corporal/genética , Proteínas de Peixes/genética , Proteínas de Peixes/metabolismo
4.
Proc Natl Acad Sci U S A ; 121(25): e2318229121, 2024 Jun 18.
Artigo em Inglês | MEDLINE | ID: mdl-38865277

RESUMO

Animals from all major clades have evolved a segmented trunk, reflected in the human spine or the insect segments. These units emerge during embryogenesis from a posterior segment addition zone (SAZ), where repetitive gene activity is regulated by a mechanism described by the clock and wavefront/speed gradient model. In the red flour beetle Tribolium castaneum, RNA interference (RNAi) has been used to continuously knock down the function of primary pair-rule genes (pPRGs), caudal or Wnt pathway components, which has led to the complete breakdown of segmentation. However, it has remained untested, if this breakdown was reversible by bringing the missing gene function back to the system. To fill this gap, we established a transgenic system in T. castaneum, which allows blocking an ongoing RNAi effect with temporal control by expressing a viral inhibitor of RNAi via heat shock. We show that the T. castaneum segmentation machinery was able to reestablish after RNAi targeting the pPRGs Tc-eve, Tc-odd, and Tc-runt was blocked. However, we observed no rescue after blocking RNAi targeting Wnt pathway components. We conclude that the insect segmentation system contains both robust feedback loops that can reestablish and labile feedback loops that break down irreversibly. This combination may reconcile conflicting needs of the system: Labile systems controlling initiation and maintenance of the SAZ ensure that only one SAZ is formed. Robust feedback loops confer developmental robustness toward external disturbances.


Assuntos
Padronização Corporal , Interferência de RNA , Tribolium , Animais , Tribolium/genética , Padronização Corporal/genética , Regulação da Expressão Gênica no Desenvolvimento , Retroalimentação Fisiológica , Animais Geneticamente Modificados , Relógios Biológicos/genética
5.
Science ; 384(6700): 1105-1110, 2024 Jun 07.
Artigo em Inglês | MEDLINE | ID: mdl-38843334

RESUMO

Axis formation in fish and amphibians typically begins with a prepattern of maternal gene products. Annual killifish embryogenesis, however, challenges prepatterning models as blastomeres disperse and then aggregate to form the germ layers and body axes. We show that huluwa, a prepatterning factor thought to break symmetry by stabilizing ß-catenin, is truncated and inactive in Nothobranchius furzeri. Nuclear ß-catenin is not selectively stabilized on one side of the blastula but accumulates in cells forming the aggregate. Blocking ß-catenin activity or Nodal signaling disrupts aggregate formation and germ layer specification. Nodal signaling coordinates cell migration, establishing an early role for this signaling pathway. These results reveal a surprising departure from established mechanisms of axis formation: Huluwa-mediated prepatterning is dispensable, and ß-catenin and Nodal regulate morphogenesis.


Assuntos
Fundulidae , Morfogênese , Proteína Nodal , beta Catenina , Animais , beta Catenina/metabolismo , Blástula/metabolismo , Padronização Corporal , Movimento Celular , Núcleo Celular/metabolismo , Fundulidae/embriologia , Fundulidae/metabolismo , Camadas Germinativas/metabolismo , Proteína Nodal/metabolismo , Transdução de Sinais
6.
Adv Exp Med Biol ; 1441: 167-183, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38884711

RESUMO

Formation of the vertebrate heart with its complex arterial and venous connections is critically dependent on patterning of the left-right axis during early embryonic development. Abnormalities in left-right patterning can lead to a variety of complex life-threatening congenital heart defects. A highly conserved pathway responsible for left-right axis specification has been uncovered. This pathway involves initial asymmetric activation of a nodal signaling cascade at the embryonic node, followed by its propagation to the left lateral plate mesoderm and activation of left-sided expression of the Pitx2 transcription factor specifying visceral organ asymmetry. Intriguingly, recent work suggests that cardiac laterality is encoded by intrinsic cell and tissue chirality independent of Nodal signaling. Thus, Nodal signaling may be superimposed on this intrinsic chirality, providing additional instructive cues to pattern cardiac situs. The impact of intrinsic chirality and the perturbation of left-right patterning on myofiber organization and cardiac function warrants further investigation. We summarize recent insights gained from studies in animal models and also some human clinical studies in a brief overview of the complex processes regulating cardiac asymmetry and their impact on cardiac function and the pathogenesis of congenital heart defects.


Assuntos
Padronização Corporal , Cardiopatias Congênitas , Coração , Humanos , Animais , Coração/embriologia , Coração/fisiologia , Padronização Corporal/genética , Cardiopatias Congênitas/genética , Cardiopatias Congênitas/fisiopatologia , Cardiopatias Congênitas/metabolismo , Cardiopatias Congênitas/patologia , Transdução de Sinais , Regulação da Expressão Gênica no Desenvolvimento , Proteína Nodal/metabolismo , Proteína Nodal/genética
7.
Adv Exp Med Biol ; 1441: 719-738, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38884745

RESUMO

Left-right patterning is among the least well understood of the three axes defining the body plan, and yet it is no less important, with left-right patterning defects causing structural birth defects with high morbidity and mortality, such as complex congenital heart disease, biliary atresia, or intestinal malrotation. The cell signaling pathways governing left-right asymmetry are highly conserved and involve multiple components of the TGF-ß superfamily of cell signaling molecules. Central to left-right patterning is the differential activation of Nodal on the left, and BMP signaling on the right. In addition, a plethora of other cell signaling pathways including Shh, FGF, and Notch also contribute to the regulation of left-right patterning. In vertebrate embryos such as the mouse, frog, or zebrafish, the specification of left-right identity requires the left-right organizer (LRO) containing cells with motile and primary cilia that mediate the left-sided propagation of Nodal signaling, followed by left-sided activation of Lefty and then Pitx2, a transcription factor that specifies visceral organ asymmetry. While this overall scheme is well conserved, there are striking species differences, including the finding that motile cilia do not play a role in left-right patterning in some vertebrates. Surprisingly, the direction of heart looping, one of the first signs of organ left-right asymmetry, was recently shown to be specified by intrinsic cell chirality, not Nodal signaling, possibly a reflection of the early origin of Nodal signaling in radially symmetric organisms. How this intrinsic chirality interacts with downstream molecular pathways regulating visceral organ asymmetry will need to be further investigated to elucidate how disturbance in left-right patterning may contribute to complex CHD.


Assuntos
Padronização Corporal , Transdução de Sinais , Animais , Humanos , Camundongos , Padronização Corporal/genética , Modelos Animais de Doenças , Regulação da Expressão Gênica no Desenvolvimento , Fatores de Determinação Direita-Esquerda/genética , Fatores de Determinação Direita-Esquerda/metabolismo
8.
Cell ; 187(13): 3165-3186, 2024 Jun 20.
Artigo em Inglês | MEDLINE | ID: mdl-38906093

RESUMO

Patterned morphologies, such as segments, spirals, stripes, and spots, frequently emerge during embryogenesis through self-organized coordination between cells. Yet, complex patterns also emerge in adults, suggesting that the capacity for spontaneous self-organization is a ubiquitous property of biological tissues. We review current knowledge on the principles and mechanisms of self-organized patterning in embryonic tissues and explore how these principles and mechanisms apply to adult tissues that exhibit features of patterning. We discuss how and why spontaneous pattern generation is integral to homeostasis and healing of tissues, illustrating it with examples from regenerative biology. We examine how aberrant self-organization underlies diverse pathological states, including inflammatory skin disorders and tumors. Lastly, we posit that based on such blueprints, targeted engineering of pattern-driving molecular circuits can be leveraged for synthetic biology and the generation of organoids with intricate patterns.


Assuntos
Padronização Corporal , Humanos , Animais , Homeostase , Desenvolvimento Embrionário , Organoides/metabolismo
9.
Development ; 151(11)2024 Jun 01.
Artigo em Inglês | MEDLINE | ID: mdl-38828908

RESUMO

During limb bud formation, axis polarities are established as evidenced by the spatially restricted expression of key regulator genes. In particular, the mutually antagonistic interaction between the GLI3 repressor and HAND2 results in distinct and non-overlapping anterior-distal Gli3 and posterior Hand2 expression domains. This is a hallmark of the establishment of antero-posterior limb axis polarity, together with spatially restricted expression of homeodomain and other transcriptional regulators. Here, we show that TBX3 is required for establishment of the posterior expression boundary of anterior genes in mouse limb buds. ChIP-seq and differential gene expression analysis of wild-type and mutant limb buds identifies TBX3-specific and shared TBX3-HAND2 target genes. High sensitivity fluorescent whole-mount in situ hybridisation shows that the posterior expression boundaries of anterior genes are positioned by TBX3-mediated repression, which excludes anterior genes such as Gli3, Alx4, Hand1 and Irx3/5 from the posterior limb bud mesenchyme. This exclusion delineates the posterior mesenchymal territory competent to establish the Shh-expressing limb bud organiser. In turn, HAND2 is required for Shh activation and cooperates with TBX3 to upregulate shared posterior identity target genes in early limb buds.


Assuntos
Fatores de Transcrição Hélice-Alça-Hélice Básicos , Regulação da Expressão Gênica no Desenvolvimento , Botões de Extremidades , Proteínas com Domínio T , Animais , Proteínas com Domínio T/metabolismo , Proteínas com Domínio T/genética , Botões de Extremidades/metabolismo , Botões de Extremidades/embriologia , Camundongos , Fatores de Transcrição Hélice-Alça-Hélice Básicos/metabolismo , Fatores de Transcrição Hélice-Alça-Hélice Básicos/genética , Proteína Gli3 com Dedos de Zinco/metabolismo , Proteína Gli3 com Dedos de Zinco/genética , Regulação para Cima/genética , Padronização Corporal/genética , Proteínas do Tecido Nervoso/metabolismo , Proteínas do Tecido Nervoso/genética , Proteínas de Homeodomínio/metabolismo , Proteínas de Homeodomínio/genética , Mesoderma/metabolismo , Mesoderma/embriologia
10.
Dev Cell ; 59(12): 1487-1488, 2024 Jun 17.
Artigo em Inglês | MEDLINE | ID: mdl-38889690

RESUMO

In this issue of Developmental Cell, Bolondi et al. systematically assesses neuro-mesodermal progenitor (NMP) dynamics by combining a mouse stem-cell-based embryo model with molecular recording of single cells, shedding light on the dynamics of neural tube and paraxial mesoderm formation during mammalian development.


Assuntos
Mesoderma , Animais , Camundongos , Mesoderma/citologia , Embrião de Mamíferos/citologia , Embrião de Mamíferos/metabolismo , Tubo Neural/citologia , Tubo Neural/embriologia , Diferenciação Celular/fisiologia , Células-Tronco/citologia , Células-Tronco/metabolismo , Padronização Corporal
11.
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
12.
Stem Cell Reports ; 19(6): 830-838, 2024 Jun 11.
Artigo em Inglês | MEDLINE | ID: mdl-38759646

RESUMO

The differentiation of human pluripotent stem cells into ventral mesencephalic dopaminergic (DA) fate is relevant for the treatment of Parkinson's disease. Shortcuts to obtaining DA cells through direct reprogramming often include forced expression of the transcription factor LMX1A. Although reprogramming with LMX1A can generate tyrosine hydroxylase (TH)-positive cells, their regional identity remains elusive. Using an in vitro model of early human neural tube patterning, we report that forced LMX1A expression induced a ventral-to-dorsal fate shift along the entire neuroaxis with the emergence of roof plate fates despite the presence of ventralizing molecules. The LMX1A-expressing progenitors gave rise to grafts containing roof plate-derived choroid plexus cysts as well as ectopically induced TH-positive neurons of a forebrain identity. Early activation of LMX1A prior to floor plate specification was necessary for the dorsalizing effect. Our work suggests using caution in employing LMX1A for the induction of DA fate, as this factor may generate roof plate rather than midbrain fates.


Assuntos
Diferenciação Celular , Neurônios Dopaminérgicos , Células-Tronco Embrionárias Humanas , Proteínas com Homeodomínio LIM , Mesencéfalo , Fatores de Transcrição , Humanos , Neurônios Dopaminérgicos/metabolismo , Neurônios Dopaminérgicos/citologia , Proteínas com Homeodomínio LIM/metabolismo , Proteínas com Homeodomínio LIM/genética , Mesencéfalo/citologia , Mesencéfalo/metabolismo , Fatores de Transcrição/metabolismo , Fatores de Transcrição/genética , Células-Tronco Embrionárias Humanas/metabolismo , Células-Tronco Embrionárias Humanas/citologia , Padronização Corporal/genética , Tirosina 3-Mono-Oxigenase/metabolismo , Tirosina 3-Mono-Oxigenase/genética , Animais , Regulação da Expressão Gênica no Desenvolvimento
13.
Proc Natl Acad Sci U S A ; 121(20): e2321919121, 2024 May 14.
Artigo em Inglês | MEDLINE | ID: mdl-38713625

RESUMO

Successful regeneration of missing tissues requires seamless integration of positional information along the body axes. Planarians, which regenerate from almost any injury, use conserved, developmentally important signaling pathways to pattern the body axes. However, the molecular mechanisms which facilitate cross talk between these signaling pathways to integrate positional information remain poorly understood. Here, we report a p21-activated kinase (smed-pak1) which functionally integrates the anterior-posterior (AP) and the medio-lateral (ML) axes. pak1 inhibits WNT/ß-catenin signaling along the AP axis and, functions synergistically with the ß-catenin-independent WNT signaling of the ML axis. Furthermore, this functional integration is dependent on warts and merlin-the components of the Hippo/Yorkie (YKI) pathway. Hippo/YKI pathway is a critical regulator of body size in flies and mice, but our data suggest the pathway regulates body axes patterning in planarians. Our study provides a signaling network integrating positional information which can mediate coordinated growth and patterning during planarian regeneration.


Assuntos
Planárias , Via de Sinalização Wnt , Quinases Ativadas por p21 , Animais , Padronização Corporal/genética , Padronização Corporal/fisiologia , Proteínas Nucleares/metabolismo , Proteínas Nucleares/genética , Quinases Ativadas por p21/metabolismo , Quinases Ativadas por p21/genética , Planárias/fisiologia , Planárias/genética , Planárias/metabolismo , Proteínas Serina-Treonina Quinases/metabolismo , Proteínas Serina-Treonina Quinases/genética , Regeneração , Transativadores/metabolismo , Transativadores/genética
14.
Curr Top Dev Biol ; 159: 168-231, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38729676

RESUMO

The development of the vertebrate spinal cord involves the formation of the neural tube and the generation of multiple distinct cell types. The process starts during gastrulation, combining axial elongation with specification of neural cells and the formation of the neuroepithelium. Tissue movements produce the neural tube which is then exposed to signals that provide patterning information to neural progenitors. The intracellular response to these signals, via a gene regulatory network, governs the spatial and temporal differentiation of progenitors into specific cell types, facilitating the assembly of functional neuronal circuits. The interplay between the gene regulatory network, cell movement, and tissue mechanics generates the conserved neural tube pattern observed across species. In this review we offer an overview of the molecular and cellular processes governing the formation and patterning of the neural tube, highlighting how the remarkable complexity and precision of vertebrate nervous system arises. We argue that a multidisciplinary and multiscale understanding of the neural tube development, paired with the study of species-specific strategies, will be crucial to tackle the open questions.


Assuntos
Padronização Corporal , Regulação da Expressão Gênica no Desenvolvimento , Tubo Neural , Transdução de Sinais , Tubo Neural/embriologia , Tubo Neural/metabolismo , Tubo Neural/citologia , Animais , Padronização Corporal/genética , Humanos , Redes Reguladoras de Genes , Medula Espinal/embriologia , Medula Espinal/citologia , Medula Espinal/metabolismo , Diferenciação Celular , Movimento Celular
15.
Curr Top Dev Biol ; 159: 272-308, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38729678

RESUMO

Although vertebrates display a large variety of forms and sizes, the mechanisms controlling the layout of the basic body plan are substantially conserved throughout the clade. Following gastrulation, head, trunk, and tail are sequentially generated through the continuous addition of tissue at the caudal embryonic end. Development of each of these major embryonic regions is regulated by a distinct genetic network. The transitions from head-to-trunk and from trunk-to-tail development thus involve major changes in regulatory mechanisms, requiring proper coordination to guarantee smooth progression of embryonic development. In this review, we will discuss the key cellular and embryological events associated with those transitions giving particular attention to their regulation, aiming to provide a cohesive outlook of this important component of vertebrate development.


Assuntos
Padronização Corporal , Regulação da Expressão Gênica no Desenvolvimento , Animais , Humanos , Desenvolvimento Embrionário , Gastrulação , Vertebrados/embriologia
16.
Curr Top Dev Biol ; 159: 1-27, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38729674

RESUMO

The diversity of vertebrate body plans is dizzying, yet stunning for the many things they have in common. Vertebrates have inhabited virtually every part of the earth from its coldest to warmest climates. They locomote by swimming, flying, walking, slithering, or climbing, or combinations of these behaviors. And they exist in many different sizes, from the smallest of frogs, fish and lizards to giraffes, elephants, and blue whales. Despite these differences, vertebrates follow a remarkably similar blueprint for the establishment of their body plan. Within the relatively small amount of time required to complete gastrulation, the process through which the three germ layers, ectoderm, mesoderm, and endoderm are created, the embryo also generates its body axis and is simultaneously patterned. For the length of this axis, the genes that distinguish the neck from the rib cage or the trunk from the sacrum are the Hox genes. In vertebrates, there was evolutionary pressure to maintain this set of genes in the organism. Over the past decades, much has been learned regarding the regulatory mechanisms that ensure the appropriate expression of these genes along the main body axes. Genetic functions continue to be explored though much has been learned. Much less has been discerned on the identity of co-factors used by Hox proteins for the specificity of transcriptional regulation or what downstream targets and pathways are critical for patterning events, though there are notable exceptions. Current work in the field is demonstrating that Hox genes continue to function in many organs long after directing early patterning events. It is hopeful continued research will shed light on remaining questions regarding mechanisms used by this important and conserved set of transcriptional regulators.


Assuntos
Padronização Corporal , Regulação da Expressão Gênica no Desenvolvimento , Genes Homeobox , Vertebrados , Animais , Padronização Corporal/genética , Vertebrados/genética , Vertebrados/embriologia , Genes Homeobox/genética
17.
Curr Top Dev Biol ; 159: 310-342, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38729680

RESUMO

External bilateral symmetry is a prevalent feature in vertebrates, which emerges during early embryonic development. To begin with, vertebrate embryos are largely radially symmetric before transitioning to bilaterally symmetry, after which, morphogenesis of various bilateral tissues (e.g somites, otic vesicle, limb bud), and structures (e.g palate, jaw) ensue. While a significant amount of work has probed the mechanisms behind symmetry breaking in the left-right axis leading to asymmetric positioning of internal organs, little is known about how bilateral tissues emerge at the same time with the same shape and size and at the same position on the two sides of the embryo. By discussing emergence of symmetry in many bilateral tissues and structures across vertebrate model systems, we highlight that understanding symmetry establishment is largely an open field, which will provide deep insights into fundamental problems in developmental biology for decades to come.


Assuntos
Padronização Corporal , Vertebrados , Animais , Vertebrados/embriologia , Desenvolvimento Embrionário , Regulação da Expressão Gênica no Desenvolvimento , Morfogênese , Somitos/embriologia
18.
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
19.
Curr Top Dev Biol ; 159: 30-58, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38729679

RESUMO

Morphogenesis from cells to tissue gives rise to the complex architectures that make our organs. How cells and their dynamic behavior are translated into functional spatial patterns is only starting to be understood. Recent advances in quantitative imaging revealed that, although highly heterogeneous, cellular behaviors make reproducible tissue patterns. Emerging evidence suggests that mechanisms of cellular coordination, intrinsic variability and plasticity are critical for robust pattern formation. While pattern development shows a high level of fidelity, tissue organization has undergone drastic changes throughout the course of evolution. In addition, alterations in cell behavior, if unregulated, can cause developmental malformations that disrupt function. Therefore, comparative studies of different species and of disease models offer a powerful approach for understanding how novel spatial configurations arise from variations in cell behavior and the fundamentals of successful pattern formation. In this chapter, I dive into the development of the vertebrate nervous system to explore efforts to dissect pattern formation beyond molecules, the emerging core principles and open questions.


Assuntos
Sistema Nervoso , Vertebrados , Animais , Vertebrados/fisiologia , Vertebrados/embriologia , Sistema Nervoso/crescimento & desenvolvimento , Sistema Nervoso/embriologia , Padronização Corporal , Humanos , Morfogênese
20.
PLoS Biol ; 22(5): e3002636, 2024 May.
Artigo em Inglês | MEDLINE | ID: mdl-38743770

RESUMO

Periodic patterning requires coordinated cell-cell interactions at the tissue level. Turing showed, using mathematical modeling, how spatial patterns could arise from the reactions of a diffusive activator-inhibitor pair in an initially homogeneous 2D field. Most activators and inhibitors studied in biological systems are proteins, and the roles of cell-cell interaction, ions, bioelectricity, etc. are only now being identified. Gap junctions (GJs) mediate direct exchanges of ions or small molecules between cells, enabling rapid long-distance communications in a cell collective. They are therefore good candidates for propagating nonprotein-based patterning signals that may act according to the Turing principles. Here, we explore the possible roles of GJs in Turing-type patterning using feather pattern formation as a model. We found 7 of the 12 investigated GJ isoforms are highly dynamically expressed in the developing chicken skin. In ovo functional perturbations of the GJ isoform, connexin 30, by siRNA and the dominant-negative mutant applied before placode development led to disrupted primary feather bud formation. Interestingly, inhibition of gap junctional intercellular communication (GJIC) in the ex vivo skin explant culture allowed the sequential emergence of new feather buds at specific spatial locations relative to the existing primary buds. The results suggest that GJIC may facilitate the propagation of long-distance inhibitory signals. Thus, inhibition of GJs may stimulate Turing-type periodic feather pattern formation during chick skin development, and the removal of GJ activity would enable the emergence of new feather buds if the local environment were competent and the threshold to form buds was reached. We further propose Turing-based computational simulations that can predict the sequential appearance of these ectopic buds. Our models demonstrate how a Turing activator-inhibitor system can continue to generate patterns in the competent morphogenetic field when the level of intercellular communication at the tissue scale is modulated.


Assuntos
Comunicação Celular , Plumas , Junções Comunicantes , Animais , Junções Comunicantes/metabolismo , Plumas/crescimento & desenvolvimento , Plumas/metabolismo , Embrião de Galinha , Conexinas/metabolismo , Conexinas/genética , Padronização Corporal/fisiologia , Galinhas , Pele/metabolismo , Isoformas de Proteínas/metabolismo , Isoformas de Proteínas/genética
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