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Transplantation of Human Induced Pluripotent Stem Cell-Derived Microglia in Immunocompetent Mice Brain via Non-Invasive Transnasal Route
Published on: May 31, 2022
Microglial dynamics and ferroptosis induction in human iPSC-derived neuron-astrocyte-microglia tri-cultures
Hongmei Lisa Li1, Hiroko Ohmiya1, Sou Sakamoto1
1Neuroscience Translational Medicine, Neuroscience Drug Discovery Unit, Research, Takeda Pharmaceutical Company, Fujisawa, Japan.
Abstract:
The dynamics of microglial activity within neuron-astrocyte-microglia tri-cultures derived from human induced pluripotent stem cells (iPSCs) present a complex interplay and offer an opportunity to obtain new insights into neuron-glia interactions. Iron-laden microglia, correlating with functional changes, represent a key pathological feature of Alzheimer's disease (AD). This study characterized the cellular crosstalk and transcriptional states of microglia in tri-cultures. Complement C3 can be detected in culture media when microglia are cocultured with neurons, and the addition of astrocytes in the coculture led to an increased amount of C3, indicating that the impact of glial interactions can be evaluated in this model system. We compared microglial gene expression profiles comprehensively in monoculture, coculture, and tri-culture settings. Single-cell RNA sequencing (scRNA-seq) revealed various microglial states with gene expression changes associated with endocytosis and neuron-related functions in tri-culture settings, suggesting that microglial behavior is profoundly impacted by the presence of neurons and astrocytes. We assessed microglial responses to iron overload combined with the ferroptosis inducer RSL3 (a GPX4 inhibitor) in tri-cultures. Microglial cell death was accompanied by ferritin heavy-chain expression, indicating microglia ferroptosis. scRNA-seq analyses highlighted alterations in pathways related to ferroptosis, stress response, and autophagy, indicating substantial shifts in microglial profiles upon iron perturbation. These findings underscore the necessity of using tri-cultures as a model to capture certain degrees of complex cellular interactions occurring in vivo. These results offer critical insights for establishing in vitro models for therapeutic development of neurodegenerative diseases, including AD.
Insights
Human induced pluripotent stem cell-derived tri-cultures reveal complex neuron-glia interactions. This model accurately captures microglial ferroptosis in Alzheimer's disease, crucial for developing new therapies.
Area of Science:
- Neuroscience
- Stem Cell Biology
- Immunology
Background:
- Microglial dysfunction is central to Alzheimer's disease (AD) pathogenesis, particularly iron accumulation.
- Understanding neuron-glia interactions is crucial for modeling neurodegenerative diseases.
Purpose of the Study:
- To characterize microglial crosstalk and transcriptional states in human induced pluripotent stem cell (iPSC)-derived tri-cultures (neuron-astrocyte-microglia).
- To investigate microglial responses to iron overload and ferroptosis induction within this complex in vitro model.
Main Methods:
- Generation of tri-cultures from human iPSCs.
- Comparison of microglial gene expression across monoculture, coculture, and tri-culture settings using single-cell RNA sequencing (scRNA-seq).
- Assessment of microglial response to iron overload and ferroptosis induction (RSL3).
Main Results:
- Tri-cultures revealed distinct microglial states with altered gene expression related to endocytosis and neuron functions.
- Complement C3 production increased with astrocyte co-addition, validating glial interaction assessment.
- Iron overload induced microglial ferroptosis, evidenced by ferritin heavy-chain expression and pathway alterations in scRNA-seq data.
- scRNA-seq identified significant shifts in ferroptosis, stress response, and autophagy pathways.
Conclusions:
- Human iPSC-derived tri-cultures effectively model complex in vivo-like neuron-glia interactions.
- This model system is essential for studying microglial ferroptosis in neurodegenerative diseases like AD.
- Findings provide critical insights for developing novel therapeutic strategies for AD and other neurodegenerative conditions.
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