Related Experiment Video
Updated: Jan 10, 2026

Generation of Human Microglia to Combine Them with Retinal Organoids for Improved Disease Modeling
Published on: July 26, 2024
Midbrain microglia-integrated organoids as a next-generation tool for chronic morphine withdrawal research: A pilot
Abstract:
In the midst of an opioid epidemic, opioid use disorder (OUD) can lead to significant clinical impairment or distress (such as opioid dependence and/or addiction) and overdose deaths. Therefore, it is significant to elucidate the exact molecular mechanisms of OUD and identify more effective therapies. Human induced pluripotent stem cell (hiPSC)-derived organoids are self-organized 3D tissues and mimic in vivo human organs. Increasingly, human-specific features of opioid abuse are being investigated using emerging brain organoids, which faithfully model the key functional, structural and biological complexities of neural tissues. However, a significant limitation of brain organoids is the absence of microglia which plays a fundamental role in OUD-related remodeling of neural circuits. In this pilot study, using hiPSC KOLF2.1J cell line, we developed our approach for generating both midbrain organoid and microglia and verified that our midbrain organoid was successfully integrated with microglia. We found that chronic exposure to morphine triggers key elements of immune responses including increased TNFα signaling and downregulation of sirtuin3 (Sirt3, a mitochondrial protein, preventing oxidative stress) and manganese superoxide dismutase (MnSOD, located in the mitochondrial matrix) in microglia-organoid co-cultures. Our findings suggest that immunocompetent midbrain organoids provide excellent models with which to study human-specific mechanisms of neuroinflammation and neurodegeneration. By combining disease relevance with scalability, the model system can be utilized as an effective tool for drug screening and toxicity testing.
Insights
This study developed a novel brain organoid model with microglia to investigate opioid use disorder (OUD). The model revealed that morphine exposure triggers immune responses and mitochondrial dysfunction in microglia, offering new avenues for OUD therapy development.
Area of Science:
- Neuroscience
- Stem Cell Biology
- Pharmacology
Background:
- Opioid use disorder (OUD) presents a significant public health crisis, necessitating a deeper understanding of its molecular mechanisms and improved therapeutic strategies.
- Human induced pluripotent stem cell (hiPSC)-derived brain organoids offer a promising platform for studying human-specific neural processes, but typically lack microglia, crucial for OUD-related neural circuit remodeling.
Purpose of the Study:
- To develop and validate a co-culture system integrating human midbrain organoids with microglia derived from hiPSCs.
- To investigate the impact of chronic morphine exposure on neuroinflammation and mitochondrial function within this immunocompetent brain organoid model.
Main Methods:
- Generation of midbrain organoids from the hiPSC KOLF2.1J cell line.
- Differentiation and integration of microglia into the midbrain organoids.
- Chronic exposure of the microglia-organoid co-cultures to morphine.
Main Results:
- Successful generation and integration of microglia within the hiPSC-derived midbrain organoids.
- Morphine exposure induced key immune responses, including increased TNFα signaling.
- Downregulation of mitochondrial proteins sirtuin3 (Sirt3) and manganese superoxide dismutase (MnSOD) was observed in microglia.
Conclusions:
- The developed immunocompetent midbrain organoid model accurately reflects human-specific neuroinflammatory and neurodegenerative responses relevant to OUD.
- This model system serves as a valuable tool for drug screening and toxicity testing in the context of opioid abuse and related neurological conditions.
More Related Videos
10:34Derivation of a Human Brain Organoid with Microglia Development
Published on: January 17, 2025
09:54Combining Laser Capture Microdissection and Microfluidic qPCR to Analyze Transcriptional Profiles of Single Cells: A Systems Biology Approach to Opioid Dependence
Published on: March 8, 2020