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1.
Nature ; 610(7931): 319-326, 2022 10.
Artigo em Inglês | MEDLINE | ID: mdl-36224417

RESUMO

Self-organizing neural organoids represent a promising in vitro platform with which to model human development and disease1-5. However, organoids lack the connectivity that exists in vivo, which limits maturation and makes integration with other circuits that control behaviour impossible. Here we show that human stem cell-derived cortical organoids transplanted into the somatosensory cortex of newborn athymic rats develop mature cell types that integrate into sensory and motivation-related circuits. MRI reveals post-transplantation organoid growth across multiple stem cell lines and animals, whereas single-nucleus profiling shows progression of corticogenesis and the emergence of activity-dependent transcriptional programs. Indeed, transplanted cortical neurons display more complex morphological, synaptic and intrinsic membrane properties than their in vitro counterparts, which enables the discovery of defects in neurons derived from individuals with Timothy syndrome. Anatomical and functional tracings show that transplanted organoids receive thalamocortical and corticocortical inputs, and in vivo recordings of neural activity demonstrate that these inputs can produce sensory responses in human cells. Finally, cortical organoids extend axons throughout the rat brain and their optogenetic activation can drive reward-seeking behaviour. Thus, transplanted human cortical neurons mature and engage host circuits that control behaviour. We anticipate that this approach will be useful for detecting circuit-level phenotypes in patient-derived cells that cannot otherwise be uncovered.


Assuntos
Vias Neurais , Organoides , Animais , Animais Recém-Nascidos , Transtorno Autístico , Humanos , Síndrome do QT Longo , Motivação , Neurônios/fisiologia , Optogenética , Organoides/citologia , Organoides/inervação , Organoides/transplante , Ratos , Recompensa , Córtex Somatossensorial/citologia , Córtex Somatossensorial/fisiologia , Células-Tronco/citologia , Sindactilia
2.
Stem Cell Reports ; 16(5): 1156-1164, 2021 05 11.
Artigo em Inglês | MEDLINE | ID: mdl-33979600

RESUMO

Coronavirus disease 2019 (COVID-19) patients have manifested a variety of neurological complications, and there is still much to reveal regarding the neurotropism of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). Human stem cell-derived brain organoids offer a valuable in vitro approach to study the cellular effects of SARS-CoV-2 on the brain. Here we used human embryonic stem cell-derived cortical organoids to investigate whether SARS-CoV-2 could infect brain tissue in vitro and found that cortical organoids could be infected at low viral titers and within 6 h. Importantly, we show that glial cells and cells of the choroid plexus were preferentially targeted in our model, but not neurons. Interestingly, we also found expression of angiotensin-converting enzyme 2 in SARS-CoV-2 infected cells; however, viral replication and cell death involving DNA fragmentation does not occur. We believe that our model is a tractable platform to study the cellular effects of SARS-CoV-2 infection in brain tissue.


Assuntos
COVID-19/patologia , Plexo Corióideo/patologia , Células-Tronco Embrionárias Humanas/citologia , Neuroglia/virologia , Organoides/inervação , Organoides/patologia , Células Cultivadas , Plexo Corióideo/citologia , Plexo Corióideo/virologia , Humanos , Neuroglia/patologia , Neurônios/virologia , Organoides/citologia , SARS-CoV-2/patogenicidade
3.
Methods Cell Biol ; 159: 175-199, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-32586442

RESUMO

The use of human pluripotent stem cells (hPSCs) and differentiation techniques offer new ways to generate specific tissue. It is now possible to differentiate hPSC into human intestinal organoids that include an enteric nervous system. Using step-wise differentiation processes, we generate innervated intestinal organoids that form three-dimensional structures bearing an epithelium, neurons and glial cells embedded in a supporting mesenchyme. Innervated organoids further develop to a complex structure with similar organization and cellular differentiation as the developing intestine. These tools open up new fields of application in the study of the development and pathophysiology of enteric neuropathies. Herein, we describe the generation of both human intestinal organoids and vagal neural crest cells from hPSC and their combination into an innervated organoid. We also discuss technical considerations for these experiments, and highlight advantages and limitations of the system.


Assuntos
Sistema Nervoso Entérico/fisiologia , Intestinos/citologia , Organoides/citologia , Organoides/inervação , Células-Tronco Pluripotentes/citologia , Diferenciação Celular , Linhagem Celular , Proliferação de Células , Técnicas de Cocultura , Humanos , Crista Neural/citologia
4.
Nature ; 582(7812): 399-404, 2020 06.
Artigo em Inglês | MEDLINE | ID: mdl-32494013

RESUMO

The skin is a multilayered organ, equipped with appendages (that is, follicles and glands), that is critical for regulating body temperature and the retention of bodily fluids, guarding against external stresses and mediating the sensation of touch and pain1,2. Reconstructing appendage-bearing skin in cultures and in bioengineered grafts is a biomedical challenge that has yet to be met3-9. Here we report an organoid culture system that generates complex skin from human pluripotent stem cells. We use stepwise modulation of the transforming growth factor ß (TGFß) and fibroblast growth factor (FGF) signalling pathways to co-induce cranial epithelial cells and neural crest cells within a spherical cell aggregate. During an incubation period of 4-5 months, we observe the emergence of a cyst-like skin organoid composed of stratified epidermis, fat-rich dermis and pigmented hair follicles that are equipped with sebaceous glands. A network of sensory neurons and Schwann cells form nerve-like bundles that target Merkel cells in organoid hair follicles, mimicking the neural circuitry associated with human touch. Single-cell RNA sequencing and direct comparison to fetal specimens suggest that the skin organoids are equivalent to the facial skin of human fetuses in the second trimester of development. Moreover, we show that skin organoids form planar hair-bearing skin when grafted onto nude mice. Together, our results demonstrate that nearly complete skin can self-assemble in vitro and be used to reconstitute skin in vivo. We anticipate that our skin organoids will provide a foundation for future studies of human skin development, disease modelling and reconstructive surgery.


Assuntos
Cabelo/citologia , Cabelo/crescimento & desenvolvimento , Organoides/citologia , Células-Tronco Pluripotentes/citologia , Pele/citologia , Animais , Ectoderma/citologia , Feminino , Cabelo/transplante , Cor de Cabelo , Folículo Piloso/citologia , Folículo Piloso/crescimento & desenvolvimento , Folículo Piloso/inervação , Folículo Piloso/transplante , Cabeça , Xenoenxertos , Humanos , Camundongos , Camundongos Nus , Organoides/crescimento & desenvolvimento , Organoides/inervação , Organoides/transplante , RNA-Seq , Análise de Célula Única , Pele/crescimento & desenvolvimento , Pele/inervação , Transplante de Pele
5.
Dev Dyn ; 248(1): 65-77, 2019 01.
Artigo em Inglês | MEDLINE | ID: mdl-30117633

RESUMO

Neuropsychiatric disorders have traditionally been difficult to study due to the complexity of the human brain and limited availability of human tissue. Induced pluripotent stem (iPS) cells provide a promising avenue to further our understanding of human disease mechanisms, but traditional 2D cell cultures can only provide a limited view of the neural circuits. To better model complex brain neurocircuitry, compartmentalized culturing systems and 3D organoids have been developed. Early compartmentalized devices demonstrated how neuronal cell bodies can be isolated both physically and chemically from neurites. Soft lithographic approaches have advanced this approach and offer the tools to construct novel model platforms, enabling circuit-level studies of disease, which can accelerate mechanistic studies and drug candidate screening. In this review, we describe some of the common technologies used to develop such systems and discuss how these lithographic techniques have been used to advance our understanding of neuropsychiatric disease. Finally, we address other in vitro model platforms such as 3D culture systems and organoids and compare these models with compartmentalized models. We ask important questions regarding how we can further harness iPS cells in these engineered culture systems for the development of improved in vitro models. Developmental Dynamics 248:65-77, 2019. © 2018 Wiley Periodicals, Inc.


Assuntos
Técnicas de Cultura de Células/métodos , Modelos Biológicos , Organoides/citologia , Animais , Encéfalo/anatomia & histologia , Compartimento Celular , Humanos , Células-Tronco Pluripotentes Induzidas/citologia , Neurônios , Organoides/inervação , Impressão Tridimensional
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