Functional genomic profiling of schizophrenia-associated genes reveals key microglial regulators
Joy E Horng1,2, Liam T McCrea1, Rebecca E Batorsky3
1Center for Genomic Medicine and Department of Psychiatry, Massachusetts General Hospital, Boston, MA, USA.
Abstract:
Microglia are increasingly recognized as key regulators of neural circuit development and putative contributors to the pathophysiology of neuropsychiatric disorders such as schizophrenia (SCZ). However, the functional impact of SCZ-associated genes in microglia remains largely unexplored. Here, we performed an arrayed CRISPR targeting screen of 30 SCZ-associated genes predicted to be differentially expressed in human microglia-like cells. Target genes were prioritized based on post-mortem transcriptomic relevance and predicted ontology-based roles in phagocytosis pathways. We quantified phagocytic activity and morphological changes following gene targeting using high-content confocal imaging. Key targets, including CYFIP1, MSR1, TREM2, SYK, ITGB2, ITGAM, and IRF8, modulated phagocytosis and altered morphological properties consistent with activation states, validating their functional roles in microglia. To elucidate transcriptional impact, we further applied a multiplexed RNA sequencing platform across gene targets. These analyses revealed gene-specific transcriptional signatures, implicating divergent pathways related to phagocytic, activation, cytoskeletal, and lysosomal function. Together, these findings demonstrate the utility of CRISPR-based functional genomics in characterizing microglia function and identifying new target genes and mechanisms that may underlie their contributions to SCZ pathophysiology.
Insights
This study used CRISPR screening to investigate schizophrenia-associated genes in microglia, revealing their roles in phagocytosis and cell activation. These findings highlight potential mechanisms linking microglia to schizophrenia pathophysiology.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Microglia regulate neural development and are implicated in schizophrenia (SCZ).
- The function of SCZ-associated genes within microglia is largely unknown.
- Understanding these genes is crucial for SCZ pathophysiology research.
Purpose of the Study:
- To functionally characterize SCZ-associated genes in human microglia-like cells.
- To identify specific genes impacting microglial phagocytosis and activation.
- To explore the transcriptional consequences of targeting these SCZ genes.
Main Methods:
- Arrayed CRISPR targeting screen of 30 SCZ-associated genes in human microglia-like cells.
- High-content confocal imaging to quantify phagocytic activity and morphology.
- Multiplexed RNA sequencing to analyze transcriptional impact.
Main Results:
- Key genes (CYFIP1, MSR1, TREM2, SYK, ITGB2, ITGAM, IRF8) modulated microglial phagocytosis and morphology.
- Targeted genes induced gene-specific transcriptional signatures.
- Identified roles in phagocytic, activation, cytoskeletal, and lysosomal pathways.
Conclusions:
- CRISPR-based functional genomics effectively characterizes microglial function.
- New target genes and mechanisms contributing to SCZ pathophysiology were identified.
- This work provides insights into microglial roles in neuropsychiatric disorders.
More Related Videos
06:12Author Spotlight: Induced Microglia-Like Cell Technology to Shed Light on the Role of Microglial Dysfunction in Neuropsychiatric Disorders
Published on: September 6, 2024
09:49Isolation of Region-specific Microglia from One Adult Mouse Brain Hemisphere for Deep Single-cell RNA Sequencing
Published on: December 3, 2019
Related Concept Videos
Biological Causes of Schizophrenia
Genetic Factors in Schizophrenia
The genetic basis of schizophrenia is strongly supported by family and twin...
Psychosis: Pathophysiology of Schizophrenia and Other Psychotic Disorders
Researchers have identified genetic factors that increase susceptibility to schizophrenia, underscoring the intricate interplay between genetics and environment in disease development. At the core of schizophrenia's pathophysiology is excessive dopaminergic neurotransmission within...
