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1.
Nat Commun ; 14(1): 5904, 2023 09 22.
Artigo em Inglês | MEDLINE | ID: mdl-37737269

RESUMO

Glial cells have been proposed as a source of neural progenitors, but the mechanisms underpinning the neurogenic potential of adult glia are not known. Using single cell transcriptomic profiling, we show that enteric glial cells represent a cell state attained by autonomic neural crest cells as they transition along a linear differentiation trajectory that allows them to retain neurogenic potential while acquiring mature glial functions. Key neurogenic loci in early enteric nervous system progenitors remain in open chromatin configuration in mature enteric glia, thus facilitating neuronal differentiation under appropriate conditions. Molecular profiling and gene targeting of enteric glial cells in a cell culture model of enteric neurogenesis and a gut injury model demonstrate that neuronal differentiation of glia is driven by transcriptional programs employed in vivo by early progenitors. Our work provides mechanistic insight into the regulatory landscape underpinning the development of intestinal neural circuits and generates a platform for advancing glial cells as therapeutic agents for the treatment of neural deficits.


Assuntos
Neurogênese , Neuroglia , Adulto , Humanos , Neurogênese/genética , Diferenciação Celular , Sistema Nervoso Autônomo , Técnicas de Cultura de Células
2.
Cell Stem Cell ; 30(5): 501-502, 2023 05 04.
Artigo em Inglês | MEDLINE | ID: mdl-37146574

RESUMO

In this issue, Majd et al.1 derive Schwann cells from human pluripotent stem cells (hPSCs), which can be used to study Schwann cell development and physiology and model diabetic neuropathy. hPSC-derived Schwann cells possess the molecular features of primary Schwann cells and are capable of myelination in vitro and in vivo.


Assuntos
Células-Tronco Pluripotentes , Células de Schwann , Humanos , Diferenciação Celular , Descoberta de Drogas
3.
Nat Commun ; 14(1): 3060, 2023 05 27.
Artigo em Inglês | MEDLINE | ID: mdl-37244931

RESUMO

Formation of oriented myofibrils is a key event in musculoskeletal development. However, the mechanisms that drive myocyte orientation and fusion to control muscle directionality in adults remain enigmatic. Here, we demonstrate that the developing skeleton instructs the directional outgrowth of skeletal muscle and other soft tissues during limb and facial morphogenesis in zebrafish and mouse. Time-lapse live imaging reveals that during early craniofacial development, myoblasts condense into round clusters corresponding to future muscle groups. These clusters undergo oriented stretch and alignment during embryonic growth. Genetic perturbation of cartilage patterning or size disrupts the directionality and number of myofibrils in vivo. Laser ablation of musculoskeletal attachment points reveals tension imposed by cartilage expansion on the forming myofibers. Application of continuous tension using artificial attachment points, or stretchable membrane substrates, is sufficient to drive polarization of myocyte populations in vitro. Overall, this work outlines a biomechanical guidance mechanism that is potentially useful for engineering functional skeletal muscle.


Assuntos
Músculo Esquelético , Peixe-Zebra , Animais , Camundongos , Peixe-Zebra/genética , Músculo Esquelético/fisiologia , Miofibrilas/fisiologia , Morfogênese , Mioblastos/fisiologia
4.
Semin Cell Dev Biol ; 138: 68-80, 2023 03 30.
Artigo em Inglês | MEDLINE | ID: mdl-35260294

RESUMO

Since the discovery of this cell population by His in 1850, the neural crest has been under intense study for its important role during vertebrate development. Much has been learned about the function and regulation of neural crest cell differentiation, and as a result, the neural crest has become a key model system for stem cell biology in general. The experiments performed in embryology, genetics, and cell biology in the last 150 years in the neural crest field has given rise to several big questions that have been debated intensely for many years: "How does positional information impact developmental potential? Are neural crest cells individually multipotent or a mixed population of committed progenitors? What are the key factors that regulate the acquisition of stem cell identity, and how does a stem cell decide to differentiate towards one cell fate versus another?" Recently, a marriage between single cell multi-omics, statistical modeling, and developmental biology has shed a substantial amount of light on these questions, and has paved a clear path for future researchers in the field.


Assuntos
Crista Neural , Células-Tronco , Animais , Diferenciação Celular/genética , Vertebrados
5.
EMBO J ; 41(17): e108780, 2022 09 01.
Artigo em Inglês | MEDLINE | ID: mdl-35815410

RESUMO

Schwann cell precursors (SCPs) are nerve-associated progenitors that can generate myelinating and non-myelinating Schwann cells but also are multipotent like the neural crest cells from which they originate. SCPs are omnipresent along outgrowing peripheral nerves throughout the body of vertebrate embryos. By using single-cell transcriptomics to generate a gene expression atlas of the entire neural crest lineage, we show that early SCPs and late migratory crest cells have similar transcriptional profiles characterised by a multipotent "hub" state containing cells biased towards traditional neural crest fates. SCPs keep diverging from the neural crest after being primed towards terminal Schwann cells and other fates, with different subtypes residing in distinct anatomical locations. Functional experiments using CRISPR-Cas9 loss-of-function further show that knockout of the common "hub" gene Sox8 causes defects in neural crest-derived cells along peripheral nerves by facilitating differentiation of SCPs towards sympathoadrenal fates. Finally, specific tumour populations found in melanoma, neurofibroma and neuroblastoma map to different stages of SCP/Schwann cell development. Overall, SCPs resemble migrating neural crest cells that maintain multipotency and become transcriptionally primed towards distinct lineages.


Assuntos
Crista Neural , Células de Schwann , Diferenciação Celular/fisiologia , Neurogênese/fisiologia , Nervos Periféricos , Células de Schwann/metabolismo
6.
Nat Genet ; 53(5): 694-706, 2021 05.
Artigo em Inglês | MEDLINE | ID: mdl-33833454

RESUMO

Characterization of the progression of cellular states during human embryogenesis can provide insights into the origin of pediatric diseases. We examined the transcriptional states of neural crest- and mesoderm-derived lineages differentiating into adrenal glands, kidneys, endothelium and hematopoietic tissue between post-conception weeks 6 and 14 of human development. Our results reveal transitions connecting the intermediate mesoderm and progenitors of organ primordia, the hematopoietic system and endothelial subtypes. Unexpectedly, by using a combination of single-cell transcriptomics and lineage tracing, we found that intra-adrenal sympathoblasts at that stage are directly derived from nerve-associated Schwann cell precursors, similarly to local chromaffin cells, whereas the majority of extra-adrenal sympathoblasts arise from the migratory neural crest. In humans, this process persists during several weeks of development within the large intra-adrenal ganglia-like structures, which may also serve as reservoirs of originating cells in neuroblastoma.


Assuntos
Linhagem da Célula , Embrião de Mamíferos/metabolismo , Neuroblastoma/embriologia , Neuroblastoma/genética , Análise de Célula Única , Sistema Simpático-Suprarrenal/embriologia , Transcriptoma/genética , Animais , Células Cromafins/metabolismo , Células Cromafins/patologia , Análise por Conglomerados , Desenvolvimento Embrionário , Regulação da Expressão Gênica no Desenvolvimento , Regulação Neoplásica da Expressão Gênica , Humanos , Lactente , Camundongos , Células-Tronco Neurais/metabolismo , Neuroblastoma/patologia , Células de Schwann/metabolismo , Células de Schwann/patologia , Microambiente Tumoral
7.
J Vis Exp ; (151)2019 09 13.
Artigo em Inglês | MEDLINE | ID: mdl-31566611

RESUMO

Mechanical stimuli are known to modulate biological functions of cells and tissues. Recent studies have suggested that compressive stress alters growth plate cartilage architecture and results in growth modulation of long bones of children. To determine the role of compressive stress in bone growth, we created a microfluidic device actuated by pneumatic pressure, to dynamically (or statically) compress growth plate chondrocytes embedded in alginate hydrogel cylinders. In this article, we describe detailed methods for fabricating and characterizing this device. The advantages of our protocol are: 1) Five different magnitudes of compressive stress can be generated on five technical replicates in a single platform, 2) It is easy to visualize cell morphology via a conventional light microscope, 3) Cells can be rapidly isolated from the device after compression to facilitate downstream assays, and 4) The platform can be applied to study mechanobiology of any cell type that can grow in hydrogels.


Assuntos
Condrócitos/citologia , Dispositivos Lab-On-A-Chip , Microfluídica , Estresse Mecânico , Alginatos , Animais , Desenvolvimento Ósseo , Cartilagem , Técnicas de Cultura de Células , Força Compressiva , Desenho de Equipamento , Lâmina de Crescimento , Humanos , Hidrogéis/metabolismo , Pressão
8.
Lab Chip ; 18(14): 2077-2086, 2018 07 10.
Artigo em Inglês | MEDLINE | ID: mdl-29897088

RESUMO

Hyaline cartilage is a specialized type of connective tissue that lines many moveable joints (articular cartilage) and contributes to bone growth (growth plate cartilage). Hyaline cartilage is composed of a single cell type, the chondrocyte, which produces a unique hydrated matrix to resist compressive stress. Although compressive stress has profound effects on transcriptional networks and matrix biosynthesis in chondrocytes, mechanistic relationships between strain, signal transduction, cell metabolism, and matrix production remain superficial. Here, we describe development and validation of a polydimethylsiloxane (PDMS)-based pneumatic microfluidic cell compression device which generates multiple compression conditions in a single platform. The device contained an array of PDMS balloons of different sizes which were actuated by pressurized air, and the balloons compressed chondrocytes cells in alginate hydrogel constructs. Our characterization and testing of the device showed that the developed platform could compress chondrocytes with various magnitudes simultaneously with negligible effect on cell viability. Also, the device is compatible with live cell imaging to probe early effects of compressive stress, and it can be rapidly dismantled to facilitate molecular studies of compressive stress on transcriptional networks. Therefore, the proposed device will enhance the productivity of chondrocyte mechanobiology studies, and it can be applied to study mechanobiology of other cell types.


Assuntos
Condrócitos/citologia , Dispositivos Lab-On-A-Chip , Fenômenos Mecânicos , Fenômenos Biomecânicos , Sobrevivência Celular , Fatores de Tempo
9.
Tissue Eng Part A ; 24(1-2): 94-105, 2018 01.
Artigo em Inglês | MEDLINE | ID: mdl-28525313

RESUMO

Defining the final size and geometry of engineered tissues through precise control of the scalar and vector components of tissue growth is a necessary benchmark for regenerative medicine, but it has proved to be a significant challenge for tissue engineers. The growth plate cartilage that promotes elongation of the long bones is a good model system for studying morphogenetic mechanisms because cartilage is composed of a single cell type, the chondrocyte; chondrocytes are readily maintained in culture; and growth trajectory is predominately in a single vector. In this cartilage, growth is generated via a differentiation program that is spatially and temporally regulated by an interconnected network composed of long- and short-range signaling mechanisms that together result in the formation of functionally distinct cellular zones. To facilitate investigation of the mechanisms underlying anisotropic growth, we developed an in vitro model of the growth plate cartilage by using neonatal mouse growth plate chondrocytes encapsulated in alginate hydrogel beads. In bead cultures, encapsulated chondrocytes showed high viability, cartilage matrix deposition, low levels of chondrocyte hypertrophy, and a progressive increase in cell proliferation over 7 days in culture. Exogenous factors were used to test functionality of the parathyroid-related protein-Indian hedgehog (PTHrP-IHH) signaling interaction, which is a crucial feedback loop for regulation of growth. Consistent with in vivo observations, exogenous PTHrP stimulated cell proliferation and inhibited hypertrophy, whereas IHH signaling stimulated chondrocyte hypertrophy. Importantly, the treatment of alginate bead cultures with IHH or thyroxine resulted in formation of a discrete domain of hypertrophic cells that mimics tissue architecture of native growth plate cartilage. Together, these studies are the first demonstration of a tunable in vitro system to model the signaling network interactions that are required to induce zonal architecture in growth plate chondrocytes, which could also potentially be used to grow cartilage cultures of specific geometries to meet personalized patient needs.


Assuntos
Alginatos/química , Cartilagem/citologia , Lâmina de Crescimento/citologia , Alicerces Teciduais/química , Animais , Diferenciação Celular , Células Cultivadas , Citometria de Fluxo , Ácido Glucurônico/química , Ácidos Hexurônicos/química , Camundongos , Transdução de Sinais
10.
Elife ; 62017 04 17.
Artigo em Inglês | MEDLINE | ID: mdl-28414273

RESUMO

Cartilaginous structures are at the core of embryo growth and shaping before the bone forms. Here we report a novel principle of vertebrate cartilage growth that is based on introducing transversally-oriented clones into pre-existing cartilage. This mechanism of growth uncouples the lateral expansion of curved cartilaginous sheets from the control of cartilage thickness, a process which might be the evolutionary mechanism underlying adaptations of facial shape. In rod-shaped cartilage structures (Meckel, ribs and skeletal elements in developing limbs), the transverse integration of clonal columns determines the well-defined diameter and resulting rod-like morphology. We were able to alter cartilage shape by experimentally manipulating clonal geometries. Using in silico modeling, we discovered that anisotropic proliferation might explain cartilage bending and groove formation at the macro-scale.


Assuntos
Cartilagem/embriologia , Vertebrados/embriologia , Animais , Simulação por Computador , Camundongos , Modelos Biológicos
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