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iPSC-derived functional human neuromuscular junctions model the pathophysiology of neuromuscular diseases
Chuang-Yu Lin, Michiko Yoshida, Li-Tzu Li, Akihiro Ikenaka, Shiori Oshima, Kazuhiro Nakagawa, Hidetoshi Sakurai, Eriko Matsui, Tatsutoshi Nakahata, Megumu K. Saito
Chuang-Yu Lin, Michiko Yoshida, Li-Tzu Li, Akihiro Ikenaka, Shiori Oshima, Kazuhiro Nakagawa, Hidetoshi Sakurai, Eriko Matsui, Tatsutoshi Nakahata, Megumu K. Saito
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Research Article Neuroscience Stem cells

iPSC-derived functional human neuromuscular junctions model the pathophysiology of neuromuscular diseases

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Abstract

The control of voluntary skeletal muscle contraction relies on action potentials, which send signals from the motor neuron through the neuromuscular junction (NMJ). Although dysfunction of the NMJ causes various neuromuscular diseases, a reliable in vitro system for disease modeling is currently unavailable. Here, we present a potentially novel 2-step, self-organizing approach for generating in vitro human NMJs from human induced pluripotent stem cells. Our simple and robust approach results in a complex NMJ structure that includes functional connectivity, recapitulating in vivo synapse formation. We used these in vitro NMJs to model the pathological features of spinal muscular atrophy, revealing the developmental and functional defects of NMJ formation and NMJ-dependent muscular contraction. Our differentiation system is therefore useful for investigating and understanding the physiology and pathology of human NMJs.

Authors

Chuang-Yu Lin, Michiko Yoshida, Li-Tzu Li, Akihiro Ikenaka, Shiori Oshima, Kazuhiro Nakagawa, Hidetoshi Sakurai, Eriko Matsui, Tatsutoshi Nakahata, Megumu K. Saito

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Figure 5

Functional analysis of in vitro hNMJ culture at day 20 of NMJ differentiation.

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Functional analysis of in vitro hNMJ culture at day 20 of NMJ differenti...
(A) Ca2+ transients and movements of the myotube were measured simultaneously in 2 regions of interest (ROIs). (B) Ca2+ imaging in 5 ROIs. Ca2+ transients increased with the application of calcium and stopped with the application of curare. (C) Motion analysis in 4 ROIs. (D) Motion analysis of myotubes before and after treatment with a gap junction inhibitor, GAP27. GAP27 was not washed out in the experiment. See also Supplemental Figure 9 and Supplemental Videos 1 and 2.

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