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1.
Artigo em Inglês | MEDLINE | ID: mdl-39222162

RESUMO

Despite significant research efforts in the continuum modeling of biological growth, certain aspects have been overlooked. For instance, numerous investigations have examined the influence of morphogenetic cell behaviors, like division and intercalation, on the mechanical response of passive (non-growing) tissues. Yet, their impact on active growth dynamics remains inadequately explored. A key reason for this inadequacy stems from challenges in the continuum treatment of cell-level processes. While some coarse-grained models have been proposed to address these shortcomings, a focus on cell division and cell expansion has been missing, rendering them unusable when it comes to modeling growth. Moreover, existing studies are limited to two-dimensional tissues and are yet to be formally extended to three-dimensional multicellular systems. To address these limitations, we here present a generalized multiscale model for three-dimensional aggregates that accounts for complex morphogenetic movements that include division, expansion, and intercalation. The proposed continuum theory thus allows for a comprehensive exploration into the growth and dissipation mechanics of proliferating aggregates, such as spheroids and organoids.

2.
Elife ; 132024 May 03.
Artigo em Inglês | MEDLINE | ID: mdl-38700510

RESUMO

Geometric criteria can be used to assess whether cell intercalation is active or passive during the convergent extension of tissue.


Assuntos
Peixe-Zebra , Animais , Morfogênese
3.
Development ; 151(1)2024 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-38205947

RESUMO

Cell junctions play key roles in epithelial integrity. During development, when epithelia undergo extensive morphogenesis, these junctions must be remodeled in order to maintain mechanochemical barriers and ensure the cohesion of the tissue. In this Review, we present a comprehensive and integrated description of junctional remodeling mechanisms in epithelial cells during development, from embryonic to adult epithelia. We largely focus on Drosophila, as quantitative analyses in this organism have provided a detailed characterization of the molecular mechanisms governing cell topologies, and discuss the conservation of these mechanisms across metazoans. We consider how changes at the molecular level translate to tissue-scale irreversible deformations, exploring the composition and assembly of cellular interfaces to unveil how junctions are remodeled to preserve tissue homeostasis during cell division, intercalation, invagination, ingression and extrusion.


Assuntos
Drosophila , Junções Intercelulares , Animais , Divisão Celular , Desenvolvimento Embrionário , Células Epiteliais
4.
bioRxiv ; 2023 Dec 11.
Artigo em Inglês | MEDLINE | ID: mdl-37398061

RESUMO

Shape changes of epithelia during animal development, such as convergent extension, are achieved through concerted mechanical activity of individual cells. While much is known about the corresponding large scale tissue flow and its genetic drivers, key open questions regard the cell-scale mechanics, e.g. internal vs external driving forces, and coordination, e.g. bottom-up self-organization vs top-down genetic instruction. To address these questions, we develop a quantitative, model-based analysis framework to relate cell geometry to local tension in recently obtained timelapse imaging data of gastrulating Drosophila embryos. This analysis provides a systematic decomposition of cell shape changes and T1-rearrangements into internally driven, active, and externally driven, passive, contributions. Specifically, we find evidence that germ band extension is driven by active T1 processes that self-organize through positive feedback acting on tensions. More generally, our findings suggest that epithelial convergent extension results from controlled transformation of internal force balance geometry which we quantify with a novel quantification tool for local tension configurations.

5.
Symmetry (Basel) ; 15(8)2023 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38650964

RESUMO

Planar polarity is a commonly observed phenomenon in which proteins display a consistent asymmetry in their subcellular localization or activity across the plane of a tissue. During animal development, planar polarity is a fundamental mechanism for coordinating the behaviors of groups of cells to achieve anisotropic tissue remodeling, growth, and organization. Therefore, a primary focus of developmental biology research has been to understand the molecular mechanisms underlying planar polarity in a variety of systems to identify conserved principles of tissue organization. In the early Drosophila embryo, the germband neuroectoderm epithelium rapidly doubles in length along the anterior-posterior axis through a process known as convergent extension (CE); it also becomes subdivided into tandem tissue compartments through the formation of compartment boundaries (CBs). Both processes are dependent on the planar polarity of proteins involved in cellular tension and adhesion. The enrichment of actomyosin-based tension and adherens junction-based adhesion at specific cell-cell contacts is required for coordinated cell intercalation, which drives CE, and the creation of highly stable cell-cell contacts at CBs. Recent studies have revealed a system for rapid cellular polarization triggered by the expression of leucine-rich-repeat (LRR) cell-surface proteins in striped patterns. In particular, the non-uniform expression of Toll-2, Toll-6, Toll-8, and Tartan generates local cellular asymmetries that allow cells to distinguish between cell-cell contacts oriented parallel or perpendicular to the anterior-posterior axis. In this review, we discuss (1) the biomechanical underpinnings of CE and CB formation, (2) how the initial symmetry-breaking events of anterior-posterior patterning culminate in planar polarity, and (3) recent advances in understanding the molecular mechanisms downstream of LRR receptors that lead to planar polarized tension and junctional adhesion.

6.
Dev Genes Evol ; 232(5-6): 115-123, 2022 12.
Artigo em Inglês | MEDLINE | ID: mdl-36149507

RESUMO

During primitive streak formation in the chick embryo, cells undergo mesendoderm specification and convergent extension at the same time and in the same cells. Previous work has implicated cVG1 (GDF3) as a key factor for induction of primitive streak identity and positioning the primitive streak, whereas FGF signalling was implicated in regulating cell intercalation via regulation of components of the WNT-planar cell polarity (PCP) pathway. FGF has also been reported to be able to induce a primitive streak (but lacking the most axial derivatives such as notochord/prechordal mesendoderm). These signals emanate from different cell populations in the embryo, so how do they interact to ensure that the same cells undergo both cell intercalation and acquire primitive streak identity? Here we begin to address this question by examining in more detail the ability of the two classes of signals in regulating the two developmental events. Using misexpression of inducers and/or exposure to inhibitors and in situ hybridisation, we study how these two signals regulate expression of Brachyury (TBXT) and PRICKLE1 as markers for the primitive streak and the PCP, respectively. We find that both signals can induce both properties, but while FGF seems to be required for induction of the streak by cVG1, it is not necessary for induction of PRICKLE1. The results are consistent with cVG1 being a common regulator for both primitive streak identity and the initiation of convergent extension that leads to streak elongation.


Assuntos
Gastrulação , Linha Primitiva , Animais , Embrião de Galinha , Transdução de Sinais , Polaridade Celular , Gástrula
7.
Methods Mol Biol ; 2438: 345-376, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-35147953

RESUMO

The Caenorhabditis elegans embryo is well suited for analysis of directed cell rearrangement via modern microscopy, due to its simple organization, short generation time, transparency, invariant lineage, and the ability to generate engineered embryos expressing various fluorescent proteins. This chapter provides an overview of routine microscopy techniques for imaging dorsal intercalation, a convergent extension-like morphogenetic movement in the embryonic epidermis of C. elegans, including making agar mounts, low-cost four-dimensional (4D) Nomarski microscopy, laser microsurgery, and 4D fluorescence microscopy using actin and junctional fusion proteins, as well as tissue-specific promoters useful for studying dorsal intercalation.


Assuntos
Proteínas de Caenorhabditis elegans , Caenorhabditis elegans , Animais , Caenorhabditis elegans/metabolismo , Proteínas de Caenorhabditis elegans/metabolismo , Embrião não Mamífero/metabolismo , Células Epidérmicas/metabolismo , Epiderme/metabolismo , Microscopia de Fluorescência , Morfogênese
8.
Dev Cell ; 56(18): 2579-2591.e4, 2021 09 27.
Artigo em Inglês | MEDLINE | ID: mdl-34525342

RESUMO

Force generation in epithelial tissues is often pulsatile, with actomyosin networks generating contractile forces before cyclically disassembling. This pulsed nature of cytoskeletal forces implies that there must be ratcheting mechanisms that drive processive transformations in cell shape. Previous work has shown that force generation is coordinated with endocytic remodeling; however, how ratcheting becomes engaged at specific cell surfaces remains unclear. Here, we report that PtdIns(3,4,5)P3 is a critical lipid-based cue for ratcheting engagement. The Sbf RabGEF binds to PIP3, and disruption of PIP3 reveals a dramatic switching behavior in which medial ratcheting is activated and epithelial cells begin globally constricting apical surfaces. PIP3 enrichments are developmentally regulated, with mesodermal cells having high apical PIP3 while germband cells have higher interfacial PIP3. Finally, we show that JAK/STAT signaling constitutes a second pathway that combinatorially regulates Sbf/Rab35 recruitment. Our results elucidate a complex lipid-dependent regulatory machinery that directs ratcheting engagement in epithelial tissues.


Assuntos
Actomiosina/metabolismo , Forma Celular/fisiologia , Células Epiteliais/metabolismo , Morfogênese/fisiologia , Fosfatidilinositóis/metabolismo , Citoesqueleto de Actina/metabolismo , Animais , Membrana Celular/metabolismo , Polaridade Celular/fisiologia , Citoesqueleto/metabolismo , Drosophila , Proteínas de Drosophila/metabolismo , Epitélio/metabolismo
9.
Dev Biol ; 477: 1-10, 2021 09.
Artigo em Inglês | MEDLINE | ID: mdl-33984304

RESUMO

Cell extrusion is a morphogenetic process in which unfit or dying cells are eliminated from the tissue at the interface with healthy neighbours in homeostasis. This process is also highly associated with cell fate specification followed by differentiation in development. Spontaneous cell death occurs in development and inhibition of this process can result in abnormal development, suggesting that survival or death is part of cell fate specification during morphogenesis. Moreover, spontaneous somatic mutations in oncogenes or tumour suppressor genes can trigger new morphogenetic events at the interface with healthy cells. Cell competition is considered as the global quality control mechanism for causing unfit cells to be eliminated at the interface with healthy neighbours in proliferating tissues. In this review, I will discuss variations of cell extrusion that are coordinated by unfit cells and healthy neighbours in relation to the geometry and topology of the tissue in development and cell competition.


Assuntos
Diferenciação Celular/fisiologia , Linhagem da Célula , Forma Celular , Animais , Apoptose/fisiologia , Fenômenos Biomecânicos , Competição entre as Células , Homeostase , Humanos , Células-Tronco/fisiologia
10.
Development ; 148(10)2021 05 15.
Artigo em Inglês | MEDLINE | ID: mdl-33999996

RESUMO

Movement of epithelial cells in a tissue occurs through neighbor exchange and drives tissue shape changes. It requires intercellular junction remodeling, a process typically powered by the contractile actomyosin cytoskeleton. This has been investigated mainly in homogeneous epithelia, where intercalation takes minutes. However, in some tissues, intercalation involves different cell types and can take hours. Whether slow and fast intercalation share the same mechanisms remains to be examined. To address this issue, we used the fly eye, where the cone cells exchange neighbors over ∼10 h to shape the lens. We uncovered three pathways regulating this slow mode of cell intercalation. First, we found a limited requirement for MyosinII. In this case, mathematical modeling predicts an adhesion-dominant intercalation mechanism. Genetic experiments support this prediction, revealing a role for adhesion through the Nephrin proteins Roughest and Hibris. Second, we found that cone cell intercalation is regulated by the Notch pathway. Third, we show that endocytosis is required for membrane removal and Notch activation. Taken together, our work indicates that adhesion, endocytosis and Notch can direct slow cell intercalation during tissue morphogenesis.


Assuntos
Adesão Celular/fisiologia , Proteínas de Drosophila/metabolismo , Drosophila/embriologia , Endocitose/fisiologia , Receptores Notch/metabolismo , Retina/embriologia , Células Fotorreceptoras Retinianas Cones/metabolismo , Actomiosina/metabolismo , Junções Aderentes/fisiologia , Animais , Padronização Corporal/fisiologia , Moléculas de Adesão Celular Neuronais/metabolismo , Comunicação Celular , Proteínas de Drosophila/genética , Células Epiteliais/citologia , Proteínas do Olho/metabolismo , Adesões Focais/fisiologia , Proteínas de Membrana/metabolismo , Miosina Tipo II/metabolismo , Receptores Notch/genética , Transdução de Sinais/fisiologia
11.
Dev Biol ; 478: 59-75, 2021 10.
Artigo em Inglês | MEDLINE | ID: mdl-34029538

RESUMO

Morphogenesis of the vertebrate neural tube occurs by elongation and bending of the neural plate, tissue shape changes that are driven at the cellular level by polarized cell intercalation and cell shape changes, notably apical constriction and cell wedging. Coordinated cell intercalation, apical constriction, and wedging undoubtedly require complex underlying cytoskeletal dynamics and remodeling of adhesions. Mutations of the gene encoding Scribble result in neural tube defects in mice, however the cellular and molecular mechanisms by which Scrib regulates neural cell behavior remain unknown. Analysis of Scribble mutants revealed defects in neural tissue shape changes, and live cell imaging of mouse embryos showed that the Scrib mutation results in defects in polarized cell intercalation, particularly in rosette resolution, and failure of both cell apical constriction and cell wedging. Scrib mutant embryos displayed aberrant expression of the junctional proteins ZO-1, Par3, Par6, E- and N-cadherins, and the cytoskeletal proteins actin and myosin. These findings show that Scribble has a central role in organizing the molecular complexes regulating the morphomechanical neural cell behaviors underlying vertebrate neurulation, and they advance our understanding of the molecular mechanisms involved in mammalian neural tube closure.


Assuntos
Peptídeos e Proteínas de Sinalização Intracelular/genética , Defeitos do Tubo Neural/embriologia , Tubo Neural/embriologia , Animais , Polaridade Celular , Forma Celular , Proteínas do Citoesqueleto , Expressão Gênica , Junções Intercelulares/metabolismo , Junções Intercelulares/ultraestrutura , Peptídeos e Proteínas de Sinalização Intracelular/metabolismo , Camundongos , Morfogênese , Mutação , Proteínas do Tecido Nervoso/genética , Placa Neural/citologia , Placa Neural/embriologia , Tubo Neural/citologia , Defeitos do Tubo Neural/genética , Células Neuroepiteliais/citologia , Células Neuroepiteliais/metabolismo , Células Neuroepiteliais/ultraestrutura , Proteínas de Junções Íntimas/genética , Proteínas de Junções Íntimas/metabolismo
12.
Dev Cell ; 56(10): 1469-1483.e5, 2021 05 17.
Artigo em Inglês | MEDLINE | ID: mdl-33891900

RESUMO

During embryo development, tissues often undergo multiple concomitant changes in shape. It is unclear which signaling pathways and cellular mechanisms are responsible for multiple simultaneous tissue shape transformations. We focus on the process of concomitant tissue folding and extension that is key during gastrulation and neurulation. We use the Drosophila embryo as model system and focus on the process of mesoderm invagination. Here, we show that the prospective mesoderm simultaneously folds and extends. We report that mesoderm cells, under the control of anterior-posterior and dorsal-ventral gene patterning synergy, establish two sets of adherens junctions at different apical-basal positions with specialized functions: while apical junctions drive apical constriction initiating tissue bending, lateral junctions concomitantly drive polarized cell intercalation, resulting in tissue convergence-extension. Thus, epithelial cells devise multiple specialized junctional sets that drive composite morphogenetic processes under the synergistic control of apparently orthogonal signaling sources.


Assuntos
Junções Aderentes/metabolismo , Drosophila melanogaster/embriologia , Mesoderma/embriologia , Morfogênese , Animais , Fenômenos Biomecânicos , Padronização Corporal , Proteínas de Ciclo Celular/metabolismo , Polaridade Celular , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/citologia , Embrião não Mamífero/metabolismo , Mesoderma/citologia , Miosina Tipo II/metabolismo , Fatores de Transcrição da Família Snail/metabolismo
13.
Development ; 148(4)2021 02 26.
Artigo em Inglês | MEDLINE | ID: mdl-33526583

RESUMO

Basement membranes (BM) are extracellular matrices assembled into complex and highly organized networks essential for organ morphogenesis and function. However, little is known about the tissue origin of BM components and their dynamics in vivo Here, we unravel the assembly and role of the BM main component, Collagen type IV (ColIV), in Drosophila ovarian stalk morphogenesis. Stalks are short strings of cells assembled through cell intercalation that link adjacent follicles and maintain ovarian integrity. We show that stalk ColIV has multiple origins and is assembled following a regulated pattern leading to a unique BM organisation. Absence of ColIV leads to follicle fusion, as observed upon ablation of stalk cells. ColIV and integrins are both required to trigger cell intercalation and maintain mechanically strong cell-cell attachment within the stalk. These results show how the dynamic assembly of a mosaic BM controls complex tissue morphogenesis and integrity.


Assuntos
Membrana Basal/metabolismo , Comunicação Celular , Drosophila/embriologia , Drosophila/metabolismo , Ovário/embriologia , Ovário/metabolismo , Animais , Colágeno Tipo IV/metabolismo , Matriz Extracelular/metabolismo , Feminino , Imunofluorescência , Morfogênese , Organogênese , Hipófise/embriologia , Hipófise/metabolismo
14.
Development ; 148(1)2021 01 06.
Artigo em Inglês | MEDLINE | ID: mdl-33408064

RESUMO

Understanding the cellular organization of tissues is key to developmental biology. In order to deal with this complex problem, researchers have taken advantage of reductionist approaches to reveal fundamental morphogenetic mechanisms and quantitative laws. For epithelia, their two-dimensional representation as polygonal tessellations has proved successful for understanding tissue organization. Yet, epithelial tissues bend and fold to shape organs in three dimensions. In this context, epithelial cells are too often simplified as prismatic blocks with a limited plasticity. However, there is increasing evidence that a realistic approach, even from a reductionist perspective, must include apico-basal intercalations (i.e. scutoidal cell shapes) for explaining epithelial organization convincingly. Here, we present an historical perspective about the tissue organization problem. Specifically, we analyze past and recent breakthroughs, and discuss how and why simplified, but realistic, in silico models require scutoidal features to address key morphogenetic events.


Assuntos
Epitélio/anatomia & histologia , Morfogênese , Animais , Fenômenos Biomecânicos , Fenômenos Biofísicos , Forma Celular , Humanos , Modelos Biológicos
15.
Open Biol ; 10(11): 200329, 2020 11.
Artigo em Inglês | MEDLINE | ID: mdl-33234070

RESUMO

Intercalation allows cells to exchange positions in a spatially oriented manner in an array of diverse processes, spanning convergent extension in embryonic gastrulation to the formation of tubular organs. However, given the co-occurrence of cell intercalation and changes in cell shape, it is sometimes difficult to ascertain their respective contribution to morphogenesis. A well-established model to analyse intercalation, particularly in tubular organs, is the Drosophila tracheal system. There, fibroblast growth factor (FGF) signalling at the tip of the dorsal branches generates a 'pulling' force believed to promote cell elongation and cell intercalation, which account for the final branch extension. Here, we used a variety of experimental conditions to study the contribution of cell elongation and cell intercalation to morphogenesis and analysed their mutual requirements. We provide evidence that cell intercalation does not require cell elongation and vice versa. We also show that the two cell behaviours are controlled by independent but simultaneous mechanisms, and that cell elongation is sufficient to account for full extension of the dorsal branch, while cell intercalation has a specific role in setting the diameter of this structure. Thus, rather than viewing changes in cell shape and cell intercalation as just redundant events that add robustness to a given morphogenetic process, we find that they can also act by contributing to different features of tissue architecture.


Assuntos
Diferenciação Celular , Forma Celular , Drosophila/embriologia , Drosophila/fisiologia , Morfogênese , Traqueia/embriologia , Animais , Biomarcadores , Diferenciação Celular/genética , Drosophila/citologia , Imunofluorescência , Expressão Gênica , Morfogênese/genética , Traqueia/citologia
16.
Dev Dyn ; 249(8): 912-923, 2020 08.
Artigo em Inglês | MEDLINE | ID: mdl-32315468

RESUMO

A common theme in organogenesis is how the final structure of organs emerge from epithelial tube structures, with the formation of the neural tube being one of the best examples. Two types of cell movements co-occur during neural tube closure involving the migration of cells toward the midline of the embryo (mediolateral intercalation or convergent extension) as well as the deep movement of cells from inside the embryo to the outside of the lateral side of the neural plate (radial intercalation). Failure of either type of cell movement will prevent neural tube closure, which can produce a range of neural tube defects (NTDs), a common congenital disease in humans. Numerous studies have identified signaling pathways that regulate mediolateral intercalation during neural tube closure. Less understood are the pathways that govern radial intercalation. Using the Xenopus laevis system, our group reported the identification of transient receptor potential (TRP) channels, TRPM6 and TRPM7, and the Mg2+ ion they conduct, as novel and key factors regulating both mediolateral and radial intercalation during neural tube closure. Here we broadly discuss tubulogenesis and cell intercalation from the perspective of neural tube closure and the respective roles of TRPM7 and TRPM6 in this critical embryonic process.


Assuntos
Regulação da Expressão Gênica no Desenvolvimento , Magnésio/química , Proteínas Serina-Treonina Quinases/fisiologia , Canais de Cátion TRPM/fisiologia , Proteínas de Xenopus/fisiologia , Xenopus laevis/metabolismo , Células 3T3 , Animais , Movimento Celular , Desenvolvimento Embrionário , Humanos , Íons , Magnésio/metabolismo , Camundongos , Placa Neural/metabolismo , Tubo Neural/metabolismo , Defeitos do Tubo Neural/genética , Defeitos do Tubo Neural/metabolismo , Neurulação , Domínios Proteicos , Proteínas Serina-Treonina Quinases/genética , Transdução de Sinais , Canais de Cátion TRPM/genética , Canais de Cátion TRPM/metabolismo , Proteínas de Xenopus/genética , Peixe-Zebra
17.
Curr Top Dev Biol ; 136: 167-193, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-31959287

RESUMO

Convergent extension is a conserved mechanism for elongating tissues. In the Drosophila embryo, convergent extension is driven by planar polarized cell intercalation and is a paradigm for understanding the cellular, molecular, and biophysical mechanisms that establish tissue structure. Studies of convergent extension in Drosophila have provided key insights into the force-generating molecules that promote convergent extension in epithelial tissues, as well as the global systems of spatial information that systematically organize these cell behaviors. A general framework has emerged in which asymmetrically localized proteins involved in cytoskeletal tension and cell adhesion direct oriented cell movements, and spatial signals provided by the Toll, Tartan, and Teneurin receptor families break planar symmetry to establish and coordinate planar cell polarity throughout the tissue. In this chapter, we describe the cellular, molecular, and biophysical mechanisms that regulate cell intercalation in the Drosophila embryo, and discuss how research in this system has revealed conserved biological principles that control the organization of multicellular tissues and animal body plans.


Assuntos
Comunicação Celular , Citoesqueleto/fisiologia , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/fisiologia , Embrião não Mamífero/fisiologia , Células Epiteliais/fisiologia , Morfogênese , Animais , Adesão Celular , Movimento Celular , Polaridade Celular , Proteínas de Drosophila/genética , Drosophila melanogaster/embriologia , Embrião não Mamífero/citologia , Células Epiteliais/citologia , Regulação da Expressão Gênica no Desenvolvimento , Transdução de Sinais
18.
Curr Top Dev Biol ; 136: 377-407, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-31959296

RESUMO

Gastrulation is the period of development when the three germ layers, mesoderm, endoderm and ectoderm, are not only formed, but also shaped into a rudimentary body plan. An elongated anteroposterior (AP) axis is a key feature of all vertebrate body plans, and it forms during gastrulation through the highly conserved morphogenetic mechanism of convergence & extension (C&E). As the name suggests, this process requires that cells within each germ layer converge toward the dorsal midline to narrow the tissue in the mediolateral (ML) dimension and concomitantly extend it in the AP dimension. In a number of vertebrate species, C&E is driven primarily by mediolateral intercalation behavior (MIB), during which cells elongate, align, and extend protrusions in the ML direction and interdigitate between their neighbors. MIB is only one of many complex cellular mechanisms that contributes to C&E in zebrafish embryos, however, where a combination of individual cell migration, collective migration, random walk, radial intercalation, epiboly movements, and MIB all act together to shape the nascent germ layers. Each of these diverse cell movements is driven by a distinct suite of dynamic cellular properties/activities, such as actin-rich protrusions, myosin contractility, and blebbing. Here, we discuss the spatiotemporal patterns of cellular behaviors underlying C&E gastrulation movements within each germ layer of zebrafish embryos. These behaviors must be coordinated with the embryonic axes, and we highlight the roles of Planar Cell Polarity (PCP) in orienting and BMP signaling in patterning C&E cell behaviors with respect to the AP and dorsoventral axes. Finally, we address the role of GPCR signaling, extracellular matrix, and mechanical signals in coordination of C&E movements between adjacent germ layers.


Assuntos
Padronização Corporal , Embrião não Mamífero/fisiologia , Gastrulação , Regulação da Expressão Gênica no Desenvolvimento , Camadas Germinativas/fisiologia , Proteínas de Peixe-Zebra/metabolismo , Peixe-Zebra/fisiologia , Animais , Embrião não Mamífero/citologia , Camadas Germinativas/citologia , Morfogênese , Transdução de Sinais , Peixe-Zebra/embriologia , Proteínas de Peixe-Zebra/genética
19.
Semin Cell Dev Biol ; 100: 212-222, 2020 04.
Artigo em Inglês | MEDLINE | ID: mdl-31784092

RESUMO

Developmental processes are driven by a combination of cytoplasmic, cortical, and surface-associated forces. However, teasing apart the contributions of these forces and how a viscoelastic cell responds has long been a key question in developmental biology. Recent advances in applying biophysical approaches to these questions is leading to a fundamentally new understanding of morphogenesis. In this review, we discuss how computational analysis of experimental findings and in silico modeling of Drosophila gastrulation processes has led to a deeper comprehension of the physical principles at work in the early embryo. We also summarize many of the emerging methodologies that permit biophysical analysis as well as those that provide direct and indirect measurements of force directions and magnitudes. Finally, we examine the multiple frameworks that have been used to model tissue and cellular behaviors.


Assuntos
Drosophila melanogaster/citologia , Drosophila melanogaster/embriologia , Embrião de Mamíferos/citologia , Embrião de Mamíferos/embriologia , Gastrulação , Modelos Biológicos , Animais , Drosophila melanogaster/metabolismo , Embrião de Mamíferos/metabolismo , Substâncias Viscoelásticas
20.
Dev Biol ; 446(2): 159-167, 2019 02 15.
Artigo em Inglês | MEDLINE | ID: mdl-30579764

RESUMO

Oscillatory flows of actomyosin play a key role in the migration of single cells in culture and in collective cell movements in Drosophila embryos. In vertebrate embryos undergoing convergent extension (CE), the Planar Cell Polarity (PCP) pathway drives the elongation of the body axis and shapes the central nervous system, and mutations of the PCP genes predispose humans to various malformations including neural tube defects. However, the spatiotemporal patterns of oscillatory actomyosin contractions during vertebrate CE and how they are controlled by the PCP signaling remain unknown. Here, we address these outstanding issues using a combination of in vivo imaging and mathematical modeling. We find that effective execution of CE requires alternative oscillations of cortical actomyosin across cell membranes of neighboring cells within an optimal frequency range. Intriguingly, temporal and spatial clustering of the core PCP protein Prickle 2 (Pk2) is correlated to submembranous accumulations of F-actin, and depletion of Pk2 perturbs the oscillation of actomyosin contractions. These findings shed light on the significance of temporal regulation of actomyosin contraction by the PCP pathway during CE, in addition to its well-studied spatial aspects.


Assuntos
Actomiosina/fisiologia , Movimento Celular/fisiologia , Polaridade Celular/fisiologia , Embrião não Mamífero/citologia , Actomiosina/genética , Algoritmos , Animais , Membrana Celular/metabolismo , Movimento Celular/genética , Polaridade Celular/genética , Embrião não Mamífero/embriologia , Embrião não Mamífero/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Proteínas Luminescentes/genética , Proteínas Luminescentes/metabolismo , Microscopia Confocal , Modelos Biológicos , Imagem com Lapso de Tempo/métodos , Proteínas de Xenopus/genética , Proteínas de Xenopus/metabolismo , Xenopus laevis
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