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1.
Nat Med ; 26(7): 1102-1113, 2020 07.
Artigo em Inglês | MEDLINE | ID: mdl-32661401

RESUMO

Patients awaiting lung transplantation face high wait-list mortality, as injury precludes the use of most donor lungs. Although ex vivo lung perfusion (EVLP) is able to recover marginal quality donor lungs, extension of normothermic support beyond 6 h has been challenging. Here we demonstrate that acutely injured human lungs declined for transplantation, including a lung that failed to recover on EVLP, can be recovered by cross-circulation of whole blood between explanted human lungs and a Yorkshire swine. This xenogeneic platform provided explanted human lungs a supportive, physiologic milieu and systemic regulation that resulted in functional and histological recovery after 24 h of normothermic support. Our findings suggest that cross-circulation can serve as a complementary approach to clinical EVLP to recover injured donor lungs that could not otherwise be utilized for transplantation, as well as a translational research platform for immunomodulation and advanced organ bioengineering.


Assuntos
Lesão Pulmonar Aguda/terapia , Transplante de Pulmão/métodos , Pulmão/irrigação sanguínea , Preservação de Órgãos/métodos , Lesão Pulmonar Aguda/sangue , Lesão Pulmonar Aguda/fisiopatologia , Animais , Circulação Extracorpórea/métodos , Humanos , Pulmão/fisiopatologia , Perfusão/métodos , Suínos , Doadores de Tecidos
2.
Nat Protoc ; 14(10): 2781-2817, 2019 10.
Artigo em Inglês | MEDLINE | ID: mdl-31492957

RESUMO

The application of tissue-engineering approaches to human induced pluripotent stem (hiPS) cells enables the development of physiologically relevant human tissue models for in vitro studies of development, regeneration, and disease. However, the immature phenotype of hiPS-derived cardiomyocytes (hiPS-CMs) limits their utility. We have developed a protocol to generate engineered cardiac tissues from hiPS cells and electromechanically mature them toward an adult-like phenotype. This protocol also provides optimized methods for analyzing these tissues' functionality, ultrastructure, and cellular properties. The approach relies on biological adaptation of cultured tissues subjected to biomimetic cues, applied at an increasing intensity, to drive accelerated maturation. hiPS cells are differentiated into cardiomyocytes and used immediately after the first contractions are observed, when they still have developmental plasticity. This starting cell population is combined with human dermal fibroblasts, encapsulated in a fibrin hydrogel and allowed to compact under passive tension in a custom-designed bioreactor. After 7 d of tissue formation, the engineered tissues are matured for an additional 21 d by increasingly intense electromechanical stimulation. Tissue properties can be evaluated by measuring contractile function, responsiveness to electrical stimuli, ultrastructure properties (sarcomere length, mitochondrial density, networks of transverse tubules), force-frequency and force-length relationships, calcium handling, and responses to ß-adrenergic agonists. Cell properties can be evaluated by monitoring gene/protein expression, oxidative metabolism, and electrophysiology. The protocol takes 4 weeks and requires experience in advanced cell culture and machining methods for bioreactor fabrication. We anticipate that this protocol will improve modeling of cardiac diseases and testing of drugs.


Assuntos
Células-Tronco Pluripotentes Induzidas/citologia , Miocárdio , Engenharia Tecidual/métodos , Técnicas de Cultura de Células/métodos , Diferenciação Celular , Coração/fisiologia , Humanos , Miocárdio/citologia , Miócitos Cardíacos/citologia , Miócitos Cardíacos/fisiologia
3.
Nat Commun ; 10(1): 2238, 2019 05 20.
Artigo em Inglês | MEDLINE | ID: mdl-31110246

RESUMO

Cardiac fibroblasts (CFs) play critical roles in heart development, homeostasis, and disease. The limited availability of human CFs from native heart impedes investigations of CF biology and their role in disease. Human pluripotent stem cells (hPSCs) provide a highly renewable and genetically defined cell source, but efficient methods to generate CFs from hPSCs have not been described. Here, we show differentiation of hPSCs using sequential modulation of Wnt and FGF signaling to generate second heart field progenitors that efficiently give rise to hPSC-CFs. The hPSC-CFs resemble native heart CFs in cell morphology, proliferation, gene expression, fibroblast marker expression, production of extracellular matrix and myofibroblast transformation induced by TGFß1 and angiotensin II. Furthermore, hPSC-CFs exhibit a more embryonic phenotype when compared to fetal and adult primary human CFs. Co-culture of hPSC-CFs with hPSC-derived cardiomyocytes distinctly alters the electrophysiological properties of the cardiomyocytes compared to co-culture with dermal fibroblasts. The hPSC-CFs provide a powerful cell source for research, drug discovery, precision medicine, and therapeutic applications in cardiac regeneration.


Assuntos
Diferenciação Celular , Fibroblastos/fisiologia , Coração/crescimento & desenvolvimento , Células-Tronco Pluripotentes Induzidas/fisiologia , Miocárdio/citologia , Linhagem Celular , Técnicas de Cocultura/métodos , Derme/citologia , Voluntários Saudáveis , Humanos , Microscopia Intravital , Microscopia de Fluorescência , Cultura Primária de Células
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