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Urciuolo, A.

Publications and source records attributed to Urciuolo, A..

2 recordsLinked to original sources

Engineering assembloids to mimic graft-host skeletal muscle interaction

Skeletal muscle (SkM) tissue engineering aims to generate in vitro three-dimensional (3D) products that can be implanted in patients to replace or repair damaged muscles. Having a humanized in vitro model able to mimic the interaction between the innervated recipient and the engineered SkMs at a functional level would greatly help in the evaluation of the graft potential. Here we developed a 3D in vitro model that allowed to investigate the function, stability, and adaptability of the human NM system in response to an engineered SkM construct. To achieved this, we used decellularized SkMs (dSkM)-based constructs as engineered SkM and human neuromuscular organoids (NMOs) as the recipient-like NM system to create graft-host SkM assembloids. We observed migration of myogenic cells and invasion of neural axons from the NMO to the engineered SkM construct in the assembloids, with the generation of functional neuromuscular junctions (NMJs). Finally, we showed that assembloids were able to regenerate following acute damage, with SkM regeneration and functional recovery. Despite limited by the absence of immunocompetent cells and vasculature, our data showed that our assembloid represents a useful tool to evaluate in vitro the response of the human innervated SkM to a potential tissue-engineered SkM graft.

cell biology↗

Native extracellular matrix promotes human neuromuscular organoid morphogenesis and function.

Human neuromuscular organoids (NMOs) derived from induced pluripotent stem cells (hiPSCs) hold a great potential to study (dys)functional human skeletal muscle (SkM) in vitro. The three-dimensional (3D) self-assembly of NMOs leads to the generation of spheroids, whose 3D organization cannot be controlled. Indeed, proper development, maturation and function of the innervated SkM require a well-defined multiscale 3D organization of the cells in a tissue-specific extracellular matrix (ECM) context. We hypothesized that extracellular structural imprinting along with hiPSC small-molecule-based differentiation could provide self-assembly guidance driving NMO morphogenesis and promoting the maturation and function of the human neuronal-coupled SkM in vitro models. We found that SkM ECM, provided as decellularized skeletal muscle, is able to reproducibly guide the morphogenesis of differentiating hiPSC toward multiscale structured tissue-like NMOs (t-NMOs). T-NMOs show contractile activity and possess functional neuromuscular junctions (NMJs), with mature neuromuscular system upon 30 days of hiPSC differentiation. We found that t-NMO could mimic altered muscle contraction upon administration of neurotoxins that act at NMJ level. Finally, we used hiPSCs derived from patients affected by Duchenne Muscular Dystrophy (DMD) to produce DMD t-NMOs that, upon neuronal stimulation, were able to mimic the altered SkM contractility and calcium dynamics typical of the disease. Altogether, our data confirm the ability of t-NMO platform to model in vitro human neuromuscular system (patho)physiology.

cell biology↗