Organoid Development

Organoid development is the generation of three-dimensional, tissue-like structures from stem cells or primary cells that self-organize to reproduce selected features of an organ. In neuroscience, the process typically guides pluripotent stem cells through defined culture conditions and developmental signaling cues, allowing neural progenitors to proliferate, differentiate, and arrange into interacting cell populations. Brain organoids can model aspects of human neurodevelopment, neuronal circuitry, and neurological disease while providing platforms for studying gene function, testing therapeutics, and examining responses to environmental or pathological conditions. Although they do not fully replicate an intact brain, organoids offer experimentally accessible systems for investigating processes that are difficult to study in living patients.

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JoVE EoE - Immunopathology

A Technique to Develop a Parasite Infection in Intestinal Organoids via Microinjection

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2025

This video demonstrates a microinjection technique to develop a human intestinal organoid infection model. The infectious sporozoite stage of the parasite Cryptosporidium parvum is microinjected into the organoid lumen. Upon invading the epithelial cells of the organoid, it undergoes asexual and sexual reproduction to complete its life cycle and spreads the infection.

Developing an In Vitro Model of Zika Virus Infection in Cerebral Organoids

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2025

This video demonstrates the establishment of an in vitro model of Zika virus infection in a developing brain. Human cerebral organoids containing rosettes of stem cells, neural progenitor cells (NPCs), and neurons are infected with the Zika virus. The virus infects NPCs and triggers apoptosis, disrupting organoid development.

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.

Development of Mouse-Derived Organoid Lines from Fallopian Tube Epithelial Cells for High Grade Serous Ovarian Carcinoma Modeling

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2025

This protocol details the development of high-grade serous ovarian carcinoma (HGSOC) mouse models in vitro and in vivo. From the derivation of murine fallopian tube organoids, their genetic modification to recapitulate human HGSOC genetics, and their introduction in the ovarian bursa of syngeneic mice for in vivo development of tumors.

Derivation of a Human Brain Organoid with Microglia Development

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Cited by 1 •

2025

We present a protocol to generate a human brain organoid with resident microglia by incorporating Induced pluripotent stem cell (iPSC)-derived hematopoietic progenitor cells (HPCs) into organoid development.

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