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Published on: January 13, 2014
Single-Nucleus RNA Sequencing Reveals the Spatiotemporal Dynamics of Disease-Associated Microglia in Amyotrophic
Lu-Xi Chen1,2,3,4, Mei-Di Zhang5, Hai-Feng Xu1,2,3
1Department of Medical Genetics and Center for Rare Diseases, Second Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou, Zhejiang, China.
Abstract:
Disease-associated microglia (DAM) are observed in neurodegenerative diseases, demyelinating disorders, and aging. However, the spatiotemporal dynamics and evolutionary trajectory of DAM during the progression of amyotrophic lateral sclerosis (ALS) remain unclear. Using a mouse model of ALS that expresses a human SOD1 gene mutation, we found that the microglia subtype DAM begins to appear following motor neuron degeneration, primarily in the brain stem and spinal cord. Using reverse transcription quantitative polymerase chain reaction, RNAscope in situ hybridization, and flow cytometry, we found that DAM increased in number as the disease progressed, reaching their peak in the late disease stage. DAM responded to disease progression in both SOD1G93A mice and sporadic ALS and C9orf72-mutated patients. Motor neuron loss in SOD1G93A mice exhibited 2 accelerated phases: P90 to P110 (early stage) and P130 to P150 (late stage). Some markers were synchronized with the accelerated phase of motor neuron loss, suggesting that these proteins may be particularly responsive to disease progression. Through pseudotime trajectory analysis, we tracked the dynamic transition of homeostatic microglia into DAM and cluster 6 microglia. Interestingly, we used the colony-stimulating factor 1 receptor (CSF1R) inhibitor PLX5622 to deplete microglia in SOD1G93A mice and observed that DAM survival is independent of CSF1R. An in vitro phagocytosis assay directly confirmed that DAM could phagocytose more beads than other microglia subtypes. These findings reveal that the induction of the DAM phenotype is a shared cross-species and cross-subtype characteristic in ALS. Inducing the DAM phenotype and enhancing its function during the early phase of disease progression, or the time window between P130 and P150 where motor neuron loss slows, could serve as a neuroprotective strategy for ALS.
Insights
Disease-associated microglia (DAM) emerge with motor neuron loss in amyotrophic lateral sclerosis (ALS). Enhancing DAM function early or during disease progression may offer neuroprotection against ALS.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Disease-associated microglia (DAM) are implicated in neurodegenerative diseases, demyelinating disorders, and aging.
- The precise role and dynamics of DAM in amyotrophic lateral sclerosis (ALS) progression are not fully understood.
Purpose of the Study:
- To investigate the spatiotemporal dynamics and evolutionary trajectory of DAM during ALS progression.
- To explore the potential of targeting DAM for neuroprotection in ALS.
Main Methods:
- Utilized a mouse model of ALS (SOD1G93A) and analyzed patient samples.
- Employed techniques including RT-qPCR, RNAscope in situ hybridization, flow cytometry, and pseudotime trajectory analysis.
- Investigated the role of colony-stimulating factor 1 receptor (CSF1R) and performed in vitro phagocytosis assays.
Main Results:
- DAM appear after motor neuron degeneration in SOD1G93A mice, increasing with disease progression and peaking in late stages.
- DAM induction is a conserved characteristic across species and ALS subtypes (SOD1G93A, sporadic ALS, C9orf72).
- DAM exhibit enhanced phagocytic capacity, and their survival is independent of CSF1R signaling.
Conclusions:
- The DAM phenotype is a common feature in ALS progression, responding to disease severity.
- Targeting DAM induction or enhancing their phagocytic function during specific disease phases presents a potential neuroprotective strategy for ALS.
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