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Updated: Jun 29, 2025

Author Spotlight: Induced Microglia-Like Cell Technology to Shed Light on the Role of Microglial Dysfunction in Neuropsychiatric Disorders
Published on: September 6, 2024
An adapted protocol to derive microglia from stem cells and its application in the study of CSF1R-related disorders
Marie-France Dorion1,2,3, Diana Casas1,3, Irina Shlaifer2,3
1Neuroimmunology Unit, Montreal Neurological Institute-Hospital, McGill University, Montreal, H3A 2B4, Canada.
Background:
Induced pluripotent stem cell-derived microglia (iMGL) represent an excellent tool in studying microglial function in health and disease. Yet, since differentiation and survival of iMGL are highly reliant on colony-stimulating factor 1 receptor (CSF1R) signaling, it is difficult to use iMGL to study microglial dysfunction associated with pathogenic defects in CSF1R.
Methods:
Serial modifications to an existing iMGL protocol were made, including but not limited to changes in growth factor combination to drive microglial differentiation, until successful derivation of microglia-like cells from an adult-onset leukoencephalopathy with axonal spheroids and pigmented glia (ALSP) patient carrying a c.2350G > A (p.V784M) CSF1R variant. Using healthy control lines, the quality of the new iMGL protocol was validated through cell yield assessment, measurement of microglia marker expression, transcriptomic comparison to primary microglia, and evaluation of inflammatory and phagocytic activities. Similarly, molecular and functional characterization of the ALSP patient-derived iMGL was carried out in comparison to healthy control iMGL.
Results:
The newly devised protocol allowed the generation of iMGL with enhanced transcriptomic similarity to cultured primary human microglia and with higher scavenging and inflammatory competence at ~ threefold greater yield compared to the original protocol. Using this protocol, decreased CSF1R autophosphorylation and cell surface expression was observed in iMGL derived from the ALSP patient compared to those derived from healthy controls. Additionally, ALSP patient-derived iMGL presented a migratory defect accompanying a temporal reduction in purinergic receptor P2Y12 (P2RY12) expression, a heightened capacity to internalize myelin, as well as heightened inflammatory response to Pam3CSK4. Poor P2RY12 expression was confirmed to be a consequence of CSF1R haploinsufficiency, as this feature was also observed following CSF1R knockdown or inhibition in mature control iMGL, and in CSF1RWT/KO and CSF1RWT/E633K iMGL compared to their respective isogenic controls.
Conclusions:
We optimized a pre-existing iMGL protocol, generating a powerful tool to study microglial involvement in human neurological diseases. Using the optimized protocol, we have generated for the first time iMGL from an ALSP patient carrying a pathogenic CSF1R variant, with preliminary characterization pointing toward functional alterations in migratory, phagocytic and inflammatory activities.
Insights
We optimized a protocol to generate induced pluripotent stem cell-derived microglia (iMGL) from patients with adult-onset leukoencephalopathy with axonal spheroids and pigmented glia (ALSP). This new method allows studying microglial dysfunction in neurological diseases caused by colony-stimulating factor 1 receptor (CSF1R) variants.
Area of Science:
- Neuroscience
- Stem Cell Biology
- Genetics
Background:
- Induced pluripotent stem cell-derived microglia (iMGL) are valuable for studying microglial function.
- iMGL differentiation and survival depend on colony-stimulating factor 1 receptor (CSF1R) signaling.
- Studying microglial dysfunction in CSF1R-related diseases is challenging due to protocol limitations.
Purpose of the Study:
- To optimize an iMGL differentiation protocol for studying diseases with pathogenic CSF1R variants.
- To generate and characterize iMGL from an adult-onset leukoencephalopathy with axonal spheroids and pigmented glia (ALSP) patient with a CSF1R variant.
- To investigate the functional consequences of CSF1R haploinsufficiency in patient-derived iMGL.
Main Methods:
- Modified an existing iMGL protocol, altering growth factor combinations for differentiation.
- Derived iMGL from an ALSP patient with a specific CSF1R variant (c.2350G>A, p.V784M).
- Validated the protocol's quality using cell yield, marker expression, transcriptomics, and functional assays (inflammation, phagocytosis).
- Characterized ALSP patient-derived iMGL, comparing them to healthy controls.
Main Results:
- The optimized protocol increased iMGL yield threefold and enhanced transcriptomic similarity to primary microglia.
- ALSP patient-derived iMGL showed reduced CSF1R signaling and P2RY12 expression, indicating migratory defects.
- These iMGL exhibited increased myelin phagocytosis and inflammatory responses.
- P2RY12 reduction was confirmed to be a direct consequence of CSF1R haploinsufficiency.
Conclusions:
- An optimized iMGL protocol provides a powerful tool for studying microglial roles in human neurological diseases.
- Successfully generated iMGL from an ALSP patient with a pathogenic CSF1R variant.
- Generated iMGL display functional alterations in migration, phagocytosis, and inflammation, linked to CSF1R deficiency.

