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Related Experiment Video

Updated: Dec 19, 2025

Brain Organoid Generation from Induced Pluripotent Stem Cells in Home-Made Mini Bioreactors
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Cellular complexity in brain organoids: Current progress and unsolved issues.

Abed AlFatah Mansour1, Simon T Schafer1, Fred H Gage1

  • 1Laboratory of Genetics, The Salk Institute for Biological Studies, 10010 North Torrey Pines Road, La Jolla, CA 92037, USA.

Seminars in Cell & Developmental Biology
|June 6, 2020
PubMed
Summary

Brain organoids, derived from pluripotent stem cells, model human brain development and function. This review covers advancements in generating diverse brain organoids and incorporating non-neuronal cells for complex studies.

Keywords:
Brain organoidsCerebral organoidsMicrogliaPluripotent stem cellsSelf-organizationTransplantationVascularization

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Area of Science:

  • Neuroscience
  • Developmental Biology
  • Stem Cell Research

Background:

  • Brain organoids are 3D neural cultures from pluripotent stem cells.
  • They self-organize to mimic brain region architecture and cell types.
  • Organoids offer novel ways to study human brain development and disease.

Purpose of the Study:

  • To review recent advances in generating brain organoids.
  • To discuss strategies for incorporating non-neuronal cell types.
  • To explore transplantation methods for increased complexity and survival.

Main Methods:

  • Generation of brain organoids from pluripotent stem cells.
  • Incorporation of non-neuronal cells (vasculature, immune cells).
  • Transplantation techniques for enhanced model complexity.

Main Results:

  • Development of brain organoids resembling diverse brain regions.
  • Successful integration of vasculature and immune cells.
  • Improved cellular complexity and long-term survival via transplantation.

Conclusions:

  • Brain organoids are powerful tools for studying human neurodevelopment and dysfunction.
  • Future research directions include enhancing model complexity and addressing key questions in organogenesis.
  • Continued advancements promise deeper insights into brain function and disease modeling.