Human Ipsc-derived Neurons

Human iPSC-derived neurons are nerve cells generated from human induced pluripotent stem cells, providing a renewable model for studying human nervous system biology and disease. Researchers reprogram mature somatic cells to pluripotency, then use defined culture conditions and developmental signaling cues to direct their differentiation into neuronal populations with relevant molecular, structural, and functional properties. These cells support neuroscience research by enabling patient-specific disease modeling, analysis of neuronal development, electrophysiological studies, and evaluation of potential therapeutics. They can also help address limitations of animal models and scarce primary human neurons, advancing investigations of neurological disorders and personalized treatment strategies.

Human Ipsc-derived Neurons - Related Videos

Research

JoVE Journal - Developmental Biology

Generation of iPSC-derived Human Brain Organoids to Model Early Neurodevelopmental Disorders

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Cited by 46 •

2017

Modeling human brain development has been hindered due to the unprecedented complexity of neural epithelial tissue. Here, a method for the robust generation of brain organoids to delineate early events of human brain development and to model microcephaly in vitro is described.

Developing Human iPSC-Derived Motor Nerve Organoids Using a Microfluidic Chip

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2025

This video demonstrates the method of creating motor nerve organoids by first culturing human induced pluripotent stem cells in a special medium to form spheroids, then differentiating them into motor neurons using specific inhibitors, and finally cultivating them in a microfluidic chip to extend axons and form motor nerve organoids.

Research

JoVE Journal - Neuroscience
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Three-Dimensional Bioprinting of Human iPSC-Derived Neuron-Astrocyte Cocultures for Screening Applications

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Cited by 4 •

2023

Here, we present a protocol to produce 3D-bioprinted cocultures of iPSC-derived neurons and astrocytes. This coculture model, generated within a hydrogel scaffold in 96- or 384-well formats, demonstrates high post-print viability and neurite outgrowth within 7 days and shows the expression of maturity markers for both cell types.

Three-dimensional Quantification of Dendritic Spines from Pyramidal Neurons Derived from Human Induced Pluripotent Stem Cells

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Cited by 7 •

2015

Dendritic spines of pyramidal neurons are the sites of most excitatory synapses in mammalian brain cortex. This method describes a 3D quantitative analysis of spine morphologies in human cortical pyramidal glutamatergic neurons derived from induced pluripotent stem cells.

Three-Dimensional Thymic Culture System to Generate iPSC-Derived Thymic Emigrants

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2025

This video demonstrates a protocol for generating functional antigen-specific T cells from iPSC-derived immature T cells using a three-dimensional thymic culture system. Co-culturing the iPSC-derived immature T cells with endogenous lymphocyte-depleted mice fetal thymic lobes resulted in successful maturation of the T cells to form CD8αβ+ MHC class I+ iPSC-derived thymic emigrants (iTEs).

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