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1.
Cell ; 187(12): 3072-3089.e20, 2024 Jun 06.
Artículo en Inglés | MEDLINE | ID: mdl-38781967

RESUMEN

Tissue folds are structural motifs critical to organ function. In the intestine, bending of a flat epithelium into a periodic pattern of folds gives rise to villi, finger-like protrusions that enable nutrient absorption. However, the molecular and mechanical processes driving villus morphogenesis remain unclear. Here, we identify an active mechanical mechanism that simultaneously patterns and folds the intestinal epithelium to initiate villus formation. At the cellular level, we find that PDGFRA+ subepithelial mesenchymal cells generate myosin II-dependent forces sufficient to produce patterned curvature in neighboring tissue interfaces. This symmetry-breaking process requires altered cell and extracellular matrix interactions that are enabled by matrix metalloproteinase-mediated tissue fluidization. Computational models, together with in vitro and in vivo experiments, revealed that these cellular features manifest at the tissue level as differences in interfacial tensions that promote mesenchymal aggregation and interface bending through a process analogous to the active dewetting of a thin liquid film.


Asunto(s)
Matriz Extracelular , Mucosa Intestinal , Animales , Ratones , Mucosa Intestinal/metabolismo , Mucosa Intestinal/citología , Matriz Extracelular/metabolismo , Miosina Tipo II/metabolismo , Mesodermo/metabolismo , Mesodermo/citología , Células Madre Mesenquimatosas/metabolismo , Células Madre Mesenquimatosas/citología , Receptor alfa de Factor de Crecimiento Derivado de Plaquetas/metabolismo , Morfogénesis , Metaloproteinasas de la Matriz/metabolismo
2.
Cell ; 187(12): 3141-3160.e23, 2024 Jun 06.
Artículo en Inglés | MEDLINE | ID: mdl-38759650

RESUMEN

Systematic functional profiling of the gene set that directs embryonic development is an important challenge. To tackle this challenge, we used 4D imaging of C. elegans embryogenesis to capture the effects of 500 gene knockdowns and developed an automated approach to compare developmental phenotypes. The automated approach quantifies features-including germ layer cell numbers, tissue position, and tissue shape-to generate temporal curves whose parameterization yields numerical phenotypic signatures. In conjunction with a new similarity metric that operates across phenotypic space, these signatures enabled the generation of ranked lists of genes predicted to have similar functions, accessible in the PhenoBank web portal, for ∼25% of essential development genes. The approach identified new gene and pathway relationships in cell fate specification and morphogenesis and highlighted the utilization of specialized energy generation pathways during embryogenesis. Collectively, the effort establishes the foundation for comprehensive analysis of the gene set that builds a multicellular organism.


Asunto(s)
Caenorhabditis elegans , Desarrollo Embrionario , Regulación del Desarrollo de la Expresión Génica , Animales , Caenorhabditis elegans/embriología , Caenorhabditis elegans/genética , Caenorhabditis elegans/metabolismo , Proteínas de Caenorhabditis elegans/metabolismo , Proteínas de Caenorhabditis elegans/genética , Embrión no Mamífero/metabolismo , Perfilación de la Expresión Génica/métodos , Técnicas de Silenciamiento del Gen , Fenotipo
3.
Cell ; 186(3): 513-527.e19, 2023 02 02.
Artículo en Inglés | MEDLINE | ID: mdl-36657441

RESUMEN

Axial development of mammals involves coordinated morphogenetic events, including axial elongation, somitogenesis, and neural tube formation. To gain insight into the signals controlling the dynamics of human axial morphogenesis, we generated axially elongating organoids by inducing anteroposterior symmetry breaking of spatially coupled epithelial cysts derived from human pluripotent stem cells. Each organoid was composed of a neural tube flanked by presomitic mesoderm sequentially segmented into somites. Periodic activation of the somite differentiation gene MESP2 coincided in space and time with anteriorly traveling segmentation clock waves in the presomitic mesoderm of the organoids, recapitulating critical aspects of somitogenesis. Timed perturbations demonstrated that FGF and WNT signaling play distinct roles in axial elongation and somitogenesis, and that FGF signaling gradients drive segmentation clock waves. By generating and perturbing organoids that robustly recapitulate the architecture of multiple axial tissues in human embryos, this work offers a means to dissect mechanisms underlying human embryogenesis.


Asunto(s)
Desarrollo Embrionario , Mesodermo , Somitos , Animales , Humanos , Tipificación del Cuerpo , Regulación del Desarrollo de la Expresión Génica , Mamíferos/genética , Mesodermo/fisiología , Morfogénesis , Vía de Señalización Wnt , Organoides/metabolismo
4.
Cell ; 185(5): 777-793.e20, 2022 03 03.
Artículo en Inglés | MEDLINE | ID: mdl-35196500

RESUMEN

In development, lineage segregation is coordinated in time and space. An important example is the mammalian inner cell mass, in which the primitive endoderm (PrE, founder of the yolk sac) physically segregates from the epiblast (EPI, founder of the fetus). While the molecular requirements have been well studied, the physical mechanisms determining spatial segregation between EPI and PrE remain elusive. Here, we investigate the mechanical basis of EPI and PrE sorting. We find that rather than the differences in static cell surface mechanical parameters as in classical sorting models, it is the differences in surface fluctuations that robustly ensure physical lineage sorting. These differential surface fluctuations systematically correlate with differential cellular fluidity, which we propose together constitute a non-equilibrium sorting mechanism for EPI and PrE lineages. By combining experiments and modeling, we identify cell surface dynamics as a key factor orchestrating the correct spatial segregation of the founder embryonic lineages.


Asunto(s)
Blastocisto , Embrión de Mamíferos , Endodermo , Animales , Blastocisto/metabolismo , Diferenciación Celular/fisiología , Linaje de la Célula/fisiología , Membrana Celular/metabolismo , Embrión de Mamíferos/metabolismo , Desarrollo Embrionario , Endodermo/metabolismo , Mamíferos , Ratones , Transporte de Proteínas
5.
Cell ; 185(11): 1960-1973.e11, 2022 05 26.
Artículo en Inglés | MEDLINE | ID: mdl-35551765

RESUMEN

During vertebrate embryogenesis, cell collectives engage in coordinated behavior to form tissue structures of increasing complexity. In the avian skin, assembly into follicles depends on intrinsic mechanical forces of the dermis, but how cell mechanics initiate pattern formation is not known. Here, we reconstitute the initiation of follicle patterning ex vivo using only freshly dissociated avian dermal cells and collagen. We find that contractile cells physically rearrange the extracellular matrix (ECM) and that ECM rearrangement further aligns cells. This exchange transforms a mechanically unlinked collective of dermal cells into a continuum, with coherent, long-range order. Combining theory with experiment, we show that this ordered cell-ECM layer behaves as an active contractile fluid that spontaneously forms regular patterns. Our study illustrates a role for mesenchymal dynamics in generating cell-level ordering and tissue-level patterning through a fluid instability-processes that may be at play across morphological symmetry-breaking contexts.


Asunto(s)
Matriz Extracelular , Folículo Piloso , Animales , Colágeno , Piel , Vertebrados
6.
Annu Rev Cell Dev Biol ; 39: 175-196, 2023 Oct 16.
Artículo en Inglés | MEDLINE | ID: mdl-37418775

RESUMEN

The neural retina, at the back of the eye, is a fascinating system to use to discover how cells form tissues in the context of the developing nervous system. The retina is the tissue responsible for perception and transmission of visual information from the environment. It consists of five types of neurons and one type of glia cells that are arranged in a highly organized, layered structure to assure visual information flow. To reach this highly ordered arrangement, intricate morphogenic movements are occurring at the cell and tissue levels. I here discuss recent advances made to understand retinal development, from optic cup formation to neuronal layering. It becomes clear that these complex morphogenetic processes must be studied by taking the cellular as well as the tissue-wide aspects into account. The loop has to be closed between exploring how cell behavior influences tissue development and how the surrounding tissue itself influences single cells. Furthermore, it was recently revealed that the retina is a great system to study neuronal migration phenomena, and more is yet to be discovered in this aspect. Constantly developing imaging and image analysis toolboxes as well as the use of machine learning and synthetic biology make the retina the perfect system to explore more of its exciting neurodevelopmental biology.

7.
Cell ; 184(14): 3702-3716.e30, 2021 07 08.
Artículo en Inglés | MEDLINE | ID: mdl-34133940

RESUMEN

Many embryonic organs undergo epithelial morphogenesis to form tree-like hierarchical structures. However, it remains unclear what drives the budding and branching of stratified epithelia, such as in the embryonic salivary gland and pancreas. Here, we performed live-organ imaging of mouse embryonic salivary glands at single-cell resolution to reveal that budding morphogenesis is driven by expansion and folding of a distinct epithelial surface cell sheet characterized by strong cell-matrix adhesions and weak cell-cell adhesions. Profiling of single-cell transcriptomes of this epithelium revealed spatial patterns of transcription underlying these cell adhesion differences. We then synthetically reconstituted budding morphogenesis by experimentally suppressing E-cadherin expression and inducing basement membrane formation in 3D spheroid cultures of engineered cells, which required ß1-integrin-mediated cell-matrix adhesion for successful budding. Thus, stratified epithelial budding, the key first step of branching morphogenesis, is driven by an overall combination of strong cell-matrix adhesion and weak cell-cell adhesion by peripheral epithelial cells.


Asunto(s)
Uniones Célula-Matriz/metabolismo , Morfogénesis , Animales , Membrana Basal/metabolismo , Adhesión Celular , División Celular , Movimiento Celular , Rastreo Celular , Embrión de Mamíferos/citología , Células Epiteliales/citología , Células Epiteliales/metabolismo , Epitelio , Regulación del Desarrollo de la Expresión Génica , Células HEK293 , Humanos , Integrinas/metabolismo , Ratones , Modelos Biológicos , Glándulas Salivales/citología , Glándulas Salivales/embriología , Glándulas Salivales/metabolismo , Transcriptoma/genética
8.
Cell ; 184(8): 1971-1989, 2021 04 15.
Artículo en Inglés | MEDLINE | ID: mdl-33826908

RESUMEN

How are individual cell behaviors coordinated toward invariant large-scale anatomical outcomes in development and regeneration despite unpredictable perturbations? Endogenous distributions of membrane potentials, produced by ion channels and gap junctions, are present across all tissues. These bioelectrical networks process morphogenetic information that controls gene expression, enabling cell collectives to make decisions about large-scale growth and form. Recent progress in the analysis and computational modeling of developmental bioelectric circuits and channelopathies reveals how cellular collectives cooperate toward organ-level structural order. These advances suggest a roadmap for exploiting bioelectric signaling for interventions addressing developmental disorders, regenerative medicine, cancer reprogramming, and synthetic bioengineering.


Asunto(s)
Desarrollo Embrionario/fisiología , Modelos Biológicos , Neoplasias/patología , Transducción de Señal , Animales , Fenómenos Electrofisiológicos , Humanos , Canales Iónicos/metabolismo , Neoplasias/metabolismo , Medicina Regenerativa
9.
Cell ; 184(26): 6313-6325.e18, 2021 12 22.
Artículo en Inglés | MEDLINE | ID: mdl-34942099

RESUMEN

How tissues acquire complex shapes is a fundamental question in biology and regenerative medicine. Zebrafish semicircular canals form from invaginations in the otic epithelium (buds) that extend and fuse to form the hubs of each canal. We find that conventional actomyosin-driven behaviors are not required. Instead, local secretion of hyaluronan, made by the enzymes uridine 5'-diphosphate dehydrogenase (ugdh) and hyaluronan synthase 3 (has3), drives canal morphogenesis. Charged hyaluronate polymers osmotically swell with water and generate isotropic extracellular pressure to deform the overlying epithelium into buds. The mechanical anisotropy needed to shape buds into tubes is conferred by a polarized distribution of actomyosin and E-cadherin-rich membrane tethers, which we term cytocinches. Most work on tissue morphogenesis ascribes actomyosin contractility as the driving force, while the extracellular matrix shapes tissues through differential stiffness. Our work inverts this expectation. Hyaluronate pressure shaped by anisotropic tissue stiffness may be a widespread mechanism for powering morphological change in organogenesis and tissue engineering.


Asunto(s)
Espacio Extracelular/química , Ácido Hialurónico/farmacología , Morfogénesis , Especificidad de Órganos , Presión , Canales Semicirculares/citología , Canales Semicirculares/embriología , Actomiosina/metabolismo , Animales , Anisotropía , Conducta Animal , Matriz Extracelular/metabolismo , Ácido Hialurónico/biosíntesis , Modelos Biológicos , Morfogénesis/efectos de los fármacos , Especificidad de Órganos/efectos de los fármacos , Presión Osmótica , Canales Semicirculares/diagnóstico por imagen , Conducta Estereotipada , Pez Cebra/embriología , Proteínas de Pez Cebra/metabolismo
10.
Cell ; 184(7): 1914-1928.e19, 2021 04 01.
Artículo en Inglés | MEDLINE | ID: mdl-33730596

RESUMEN

Embryo morphogenesis is impacted by dynamic changes in tissue material properties, which have been proposed to occur via processes akin to phase transitions (PTs). Here, we show that rigidity percolation provides a simple and robust theoretical framework to predict material/structural PTs of embryonic tissues from local cell connectivity. By using percolation theory, combined with directly monitoring dynamic changes in tissue rheology and cell contact mechanics, we demonstrate that the zebrafish blastoderm undergoes a genuine rigidity PT, brought about by a small reduction in adhesion-dependent cell connectivity below a critical value. We quantitatively predict and experimentally verify hallmarks of PTs, including power-law exponents and associated discontinuities of macroscopic observables. Finally, we show that this uniform PT depends on blastoderm cells undergoing meta-synchronous divisions causing random and, consequently, uniform changes in cell connectivity. Collectively, our theoretical and experimental findings reveal the structural basis of material PTs in an organismal context.


Asunto(s)
Embrión no Mamífero/fisiología , Desarrollo Embrionario , Animales , Blastodermo/citología , Blastodermo/fisiología , Cadherinas/antagonistas & inhibidores , Cadherinas/genética , Cadherinas/metabolismo , Adhesión Celular , Embrión no Mamífero/citología , Morfolinos/metabolismo , Reología , Viscosidad , Pez Cebra/crecimiento & desarrollo
11.
Annu Rev Cell Dev Biol ; 38: 321-347, 2022 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-35562852

RESUMEN

Patterns are ubiquitous in living systems and underlie the dynamic organization of cells, tissues, and embryos. Mathematical frameworks have been devised to account for the self-organization of biological patterns, most famously the Turing framework. Patterns can be defined in space, for example, to form stripes; in time, such as during oscillations; or both, to form traveling waves. The formation of these patterns can have different origins: purely chemical, purely mechanical, or a combination of the two. Beyond the variety of molecular implementations of such patterns, we emphasize the unitary principles associated with them, across scales in space and time, within a general mechanochemical framework. We illustrate where such mechanisms of pattern formation arise in biological systems from cellular to tissue scales, with an emphasis on morphogenesis. Our goal is to convey a picture of pattern formation that draws attention to the principles rather than solely to specific molecular mechanisms.


Asunto(s)
Modelos Biológicos , Morfogénesis
12.
Annu Rev Cell Dev Biol ; 38: 375-394, 2022 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-35804476

RESUMEN

During organismal development, organs and systems are built following a genetic blueprint that produces structures capable of performing specific physiological functions. Interestingly, we have learned that the physiological activities of developing tissues also contribute to their own morphogenesis. Specifically, physiological activities such as fluid secretion and cell contractility generate hydrostatic pressure that can act as a morphogenetic force. Here, we first review the role of hydrostatic pressure in tube formation during animal development and discuss mathematical models of lumen formation. We then illustrate specific roles of the notochord as a hydrostatic scaffold in anterior-posterior axis development in chordates. Finally, we cover some examples of how fluid flows influence morphogenetic processes in other developmental contexts. Understanding how fluid forces act during development will be key for uncovering the self-organizing principles that control morphogenesis.


Asunto(s)
Notocorda , Animales , Presión Hidrostática , Morfogénesis
13.
Annu Rev Cell Dev Biol ; 37: 469-493, 2021 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-34242058

RESUMEN

Morphogenesis is one of the most remarkable examples of biological pattern formation. Despite substantial progress in the field, we still do not understand the organizational principles responsible for the robust convergence of the morphogenesis process across scales to form viable organisms under variable conditions. Achieving large-scale coordination requires feedback between mechanical and biochemical processes, spanning all levels of organization and relating the emerging patterns with the mechanisms driving their formation. In this review, we highlight the role of mechanics in the patterning process, emphasizing the active and synergistic manner in which mechanical processes participate in developmental patterning rather than merely following a program set by biochemical signals. We discuss the value of applying a coarse-grained approach that considers the large-scale dynamics and feedback and complements the reductionist approach focused on molecular detail. A central challenge in this approach is identifying relevant coarse-grained variables and developing effective theories that can serve as a basis for an integrated framework toward understanding this remarkable pattern-formation process.


Asunto(s)
Morfogénesis , Animales
14.
Cell ; 179(6): 1409-1423.e17, 2019 11 27.
Artículo en Inglés | MEDLINE | ID: mdl-31778655

RESUMEN

The evolution of flight in feathered dinosaurs and early birds over millions of years required flight feathers whose architecture features hierarchical branches. While barb-based feather forms were investigated, feather shafts and vanes are understudied. Here, we take a multi-disciplinary approach to study their molecular control and bio-architectural organizations. In rachidial ridges, epidermal progenitors generate cortex and medullary keratinocytes, guided by Bmp and transforming growth factor ß (TGF-ß) signaling that convert rachides into adaptable bilayer composite beams. In barb ridges, epidermal progenitors generate cylindrical, plate-, or hooklet-shaped barbule cells that form fluffy branches or pennaceous vanes, mediated by asymmetric cell junction and keratin expression. Transcriptome analyses and functional studies show anterior-posterior Wnt2b signaling within the dermal papilla controls barbule cell fates with spatiotemporal collinearity. Quantitative bio-physical analyses of feathers from birds with different flight characteristics and feathers in Burmese amber reveal how multi-dimensional functionality can be achieved and may inspire future composite material designs. VIDEO ABSTRACT.


Asunto(s)
Adaptación Fisiológica , Plumas/anatomía & histología , Plumas/fisiología , Vuelo Animal/fisiología , Animales , Evolución Biológica , Aves/anatomía & histología , Moléculas de Adhesión Celular/metabolismo , Citoesqueleto/metabolismo , Dermis/anatomía & histología , Células Madre/citología , Factores de Tiempo , Transcriptoma/genética , Vía de Señalización Wnt/genética
15.
Cell ; 176(6): 1379-1392.e14, 2019 03 07.
Artículo en Inglés | MEDLINE | ID: mdl-30773315

RESUMEN

Cell fate specification by lateral inhibition typically involves contact signaling through the Delta-Notch signaling pathway. However, whether this is the only signaling mode mediating lateral inhibition remains unclear. Here we show that in zebrafish oogenesis, a group of cells within the granulosa cell layer at the oocyte animal pole acquire elevated levels of the transcriptional coactivator TAZ in their nuclei. One of these cells, the future micropyle precursor cell (MPC), accumulates increasingly high levels of nuclear TAZ and grows faster than its surrounding cells, mechanically compressing those cells, which ultimately lose TAZ from their nuclei. Strikingly, relieving neighbor-cell compression by MPC ablation or aspiration restores nuclear TAZ accumulation in neighboring cells, eventually leading to MPC re-specification from these cells. Conversely, MPC specification is defective in taz-/- follicles. These findings uncover a novel mode of lateral inhibition in cell fate specification based on mechanical signals controlling TAZ activity.


Asunto(s)
Péptidos y Proteínas de Señalización Intracelular/metabolismo , Oogénesis/fisiología , Proteínas de Pez Cebra/metabolismo , Proteínas Adaptadoras Transductoras de Señales/metabolismo , Animales , Comunicación Celular/fisiología , Diferenciación Celular/fisiología , Linaje de la Célula , Núcleo Celular/metabolismo , Femenino , Células de la Granulosa/metabolismo , Péptidos y Proteínas de Señalización Intracelular/antagonistas & inhibidores , Oocitos/metabolismo , Oocitos/fisiología , Proteínas Serina-Treonina Quinasas/metabolismo , Transducción de Señal , Factores de Transcripción/metabolismo , Activación Transcripcional/fisiología , Proteínas Coactivadoras Transcripcionales con Motivo de Unión a PDZ , Pez Cebra/metabolismo , Proteínas de Pez Cebra/antagonistas & inhibidores
16.
Cell ; 179(1): 90-105.e21, 2019 09 19.
Artículo en Inglés | MEDLINE | ID: mdl-31539501

RESUMEN

The gastrointestinal tract is enveloped by concentric and orthogonally aligned layers of smooth muscle; however, an understanding of the mechanisms by which these muscles become patterned and aligned in the embryo has been lacking. We find that Hedgehog acts through Bmp to delineate the position of the circumferentially oriented inner muscle layer, whereas localized Bmp inhibition is critical for allowing formation of the later-forming, longitudinally oriented outer layer. Because the layers form at different developmental stages, the muscle cells are exposed to unique mechanical stimuli that direct their alignments. Differential growth within the early gut tube generates residual strains that orient the first layer circumferentially, and when formed, the spontaneous contractions of this layer align the second layer longitudinally. Our data link morphogen-based patterning to mechanically controlled smooth muscle cell alignment and provide a mechanistic context for potentially understanding smooth muscle organization in a wide variety of tubular organs.


Asunto(s)
Regulación del Desarrollo de la Expresión Génica/fisiología , Mucosa Intestinal/crecimiento & desarrollo , Desarrollo de Músculos/genética , Músculo Liso/crecimiento & desarrollo , Miocitos del Músculo Liso/metabolismo , Animales , Tipificación del Cuerpo/fisiología , Proteínas Morfogenéticas Óseas/metabolismo , Diferenciación Celular , Embrión de Pollo , Embrión de Mamíferos , Femenino , Proteínas Hedgehog/metabolismo , Masculino , Ratones/embriología , Ratones Endogámicos C57BL , Ratones Transgénicos , Embarazo , Transducción de Señal/fisiología
17.
Cell ; 176(4): 790-804.e13, 2019 02 07.
Artículo en Inglés | MEDLINE | ID: mdl-30661759

RESUMEN

The pancreatic islets of Langerhans regulate glucose homeostasis. The loss of insulin-producing ß cells within islets results in diabetes, and islet transplantation from cadaveric donors can cure the disease. In vitro production of whole islets, not just ß cells, will benefit from a better understanding of endocrine differentiation and islet morphogenesis. We used single-cell mRNA sequencing to obtain a detailed description of pancreatic islet development. Contrary to the prevailing dogma, we find islet morphology and endocrine differentiation to be directly related. As endocrine progenitors differentiate, they migrate in cohesion and form bud-like islet precursors, or "peninsulas" (literally "almost islands"). α cells, the first to develop, constitute the peninsular outer layer, and ß cells form later, beneath them. This spatiotemporal collinearity leads to the typical core-mantle architecture of the mature, spherical islet. Finally, we induce peninsula-like structures in differentiating human embryonic stem cells, laying the ground for the generation of entire islets in vitro.


Asunto(s)
Islotes Pancreáticos/citología , Islotes Pancreáticos/embriología , Animales , Diferenciación Celular , Células Cultivadas , Células Madre Embrionarias Humanas/citología , Humanos , Insulina/metabolismo , Células Secretoras de Insulina/citología , Islotes Pancreáticos/metabolismo , Trasplante de Islotes Pancreáticos/métodos , Ratones , Ratones Endogámicos C57BL , Ratones SCID , Morfogénesis , Páncreas/citología
18.
Cell ; 177(6): 1405-1418.e17, 2019 05 30.
Artículo en Inglés | MEDLINE | ID: mdl-31130379

RESUMEN

How do genes modify cellular growth to create morphological diversity? We study this problem in two related plants with differently shaped leaves: Arabidopsis thaliana (simple leaf shape) and Cardamine hirsuta (complex shape with leaflets). We use live imaging, modeling, and genetics to deconstruct these organ-level differences into their cell-level constituents: growth amount, direction, and differentiation. We show that leaf shape depends on the interplay of two growth modes: a conserved organ-wide growth mode that reflects differentiation; and a local, directional mode that involves the patterning of growth foci along the leaf edge. Shape diversity results from the distinct effects of two homeobox genes on these growth modes: SHOOTMERISTEMLESS broadens organ-wide growth relative to edge-patterning, enabling leaflet emergence, while REDUCED COMPLEXITY inhibits growth locally around emerging leaflets, accentuating shape differences created by patterning. We demonstrate the predictivity of our findings by reconstructing key features of C. hirsuta leaf morphology in A. thaliana. VIDEO ABSTRACT.


Asunto(s)
Arabidopsis/crecimiento & desarrollo , Cardamine/crecimiento & desarrollo , Hojas de la Planta/crecimiento & desarrollo , Arabidopsis/genética , Cardamine/genética , Linaje de la Célula/genética , Biología Computacional/métodos , Regulación de la Expresión Génica de las Plantas/genética , Hojas de la Planta/genética , Proteínas de Plantas/metabolismo
19.
Annu Rev Cell Dev Biol ; 36: 385-410, 2020 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-32628862

RESUMEN

Development encapsulates the morphogenesis of an organism from a single fertilized cell to a functional adult. A critical part of development is the specification of organ forms. Beyond the molecular control of morphogenesis, shape in essence entails structural constraints and thus mechanics. Revisiting recent results in biophysics and development, and comparing animal and plant model systems, we derive key overarching principles behind the formation of organs across kingdoms. In particular, we highlight how growing organs are active rather than passive systems and how such behavior plays a role in shaping the organ. We discuss the importance of considering different scales in understanding how organs form. Such an integrative view of organ development generates new questions while calling for more cross-fertilization between scientific fields and model system communities.


Asunto(s)
Morfogénesis , Especificidad de Órganos , Animales , Anisotropía , Fenómenos Biomecánicos , Humanos , Mecanotransducción Celular , Modelos Biológicos
20.
Annu Rev Biochem ; 87: 991-1014, 2018 06 20.
Artículo en Inglés | MEDLINE | ID: mdl-29596002

RESUMEN

Peptidoglycan is an essential component of the cell wall that protects bacteria from environmental stress. A carefully coordinated biosynthesis of peptidoglycan during cell elongation and division is required for cell viability. This biosynthesis involves sophisticated enzyme machineries that dynamically synthesize, remodel, and degrade peptidoglycan. However, when and where bacteria build peptidoglycan, and how this is coordinated with cell growth, have been long-standing questions in the field. The improvement of microscopy techniques has provided powerful approaches to study peptidoglycan biosynthesis with high spatiotemporal resolution. Recent development of molecular probes further accelerated the growth of the field, which has advanced our knowledge of peptidoglycan biosynthesis dynamics and mechanisms. Here, we review the technologies for imaging the bacterial cell wall and its biosynthesis activity. We focus on the applications of fluorescent d-amino acids, a newly developed type of probe, to visualize and study peptidoglycan synthesis and dynamics, and we provide direction for prospective research.


Asunto(s)
Bacterias/metabolismo , Pared Celular/metabolismo , Peptidoglicano/biosíntesis , Aminoácidos/química , Bacterias/ultraestructura , Pared Celular/ultraestructura , Colorantes Fluorescentes/química , Microscopía de Fuerza Atómica , Microscopía Electrónica , Microscopía Fluorescente
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