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1.
Nat Commun ; 15(1): 1452, 2024 Feb 16.
Artigo em Inglês | MEDLINE | ID: mdl-38365780

RESUMO

The development of vascular networks in microfluidic chips is crucial for the long-term culture of three-dimensional cell aggregates such as spheroids, organoids, tumoroids, or tissue explants. Despite rapid advancement in microvascular network systems and organoid technologies, vascularizing organoids-on-chips remains a challenge in tissue engineering. Most existing microfluidic devices poorly reflect the complexity of in vivo flows and require complex technical set-ups. Considering these constraints, we develop a platform to establish and monitor the formation of endothelial networks around mesenchymal and pancreatic islet spheroids, as well as blood vessel organoids generated from pluripotent stem cells, cultured for up to 30 days on-chip. We show that these networks establish functional connections with the endothelium-rich spheroids and vascular organoids, as they successfully provide intravascular perfusion to these structures. We find that organoid growth, maturation, and function are enhanced when cultured on-chip using our vascularization method. This microphysiological system represents a viable organ-on-chip model to vascularize diverse biological 3D tissues and sets the stage to establish organoid perfusions using advanced microfluidics.


Assuntos
Ilhotas Pancreáticas , Microfluídica , Organoides , Engenharia Tecidual/métodos , Endotélio , Ilhotas Pancreáticas/irrigação sanguínea
2.
Nat Aging ; 4(1): 80-94, 2024 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-38238601

RESUMO

Skeletal muscle plays a central role in the regulation of systemic metabolism during lifespan. With aging, this function is perturbed, initiating multiple chronic diseases. Our knowledge of mechanisms responsible for this decline is limited. Glycerophosphocholine phosphodiesterase 1 (Gpcpd1) is a highly abundant muscle enzyme that hydrolyzes glycerophosphocholine (GPC). The physiological functions of Gpcpd1 remain largely unknown. Here we show, in mice, that the Gpcpd1-GPC metabolic pathway is perturbed in aged muscles. Further, muscle-specific, but not liver- or fat-specific, inactivation of Gpcpd1 resulted in severely impaired glucose metabolism. Western-type diets markedly worsened this condition. Mechanistically, Gpcpd1 muscle deficiency resulted in accumulation of GPC, causing an 'aged-like' transcriptomic signature and impaired insulin signaling in young Gpcpd1-deficient muscles. Finally, we report that the muscle GPC levels are markedly altered in both aged humans and patients with type 2 diabetes, displaying a high positive correlation between GPC levels and chronological age. Our findings reveal that the muscle GPCPD1-GPC metabolic pathway has an important role in the regulation of glucose homeostasis and that it is impaired during aging, which may contribute to glucose intolerance in aging.


Assuntos
Diabetes Mellitus Tipo 2 , Glucose , Glicerilfosforilcolina , Fosfolipases , Idoso , Animais , Humanos , Camundongos , Envelhecimento/metabolismo , Diabetes Mellitus Tipo 2/metabolismo , Glucose/metabolismo , Redes e Vias Metabólicas , Músculo Esquelético/metabolismo , Fosfolipases/metabolismo , Glicerilfosforilcolina/metabolismo
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