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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Sanguinarine modulates microglial function via PPARγ activation and protects against CNS demyelination
Dan-Jie Wang1, Xiao Wang1, Shu-le Li1
1Department of Integrative Medicine and Neurobiology, School of Basic Medical Science, Shanghai Medical College, Fudan University, Shanghai 200032, China.
Abstract:
Microglia aggregate in regions of active inflammation and demyelination in the CNS of multiple sclerosis (MS) patients and are considered pivotal in the disease process. Targeting microglia is a promising therapeutic approach for myelin repair. Previously, we identified two candidates for microglial modulation and remyelination using a Connectivity Map (CMAP)-based screening strategy. Interestingly, with results that overlapped, sanguinarine (SAN) emerged as a potential drug candidate to modulate microglial polarization and promote remyelination. In the current study, we demonstrate the efficacy of SAN in mitigating the MS-like experimental autoimmune encephalomyelitis (EAE) in a dose-dependent manner. Meanwhile, prophylactic administration of a medium dose (2.5 mg/kg) significantly reduces disease incidence and ameliorates clinical signs in EAE mice. At the cellular level, SAN reduces the accumulation of microglia in the spinal cord. Morphological analyses and immunophenotyping reveal a less activated state of microglia following SAN administration, supported by decreased inflammatory cytokine production in the spinal cord. Mechanistically, SAN skews primary microglia towards an immunoregulatory state and mitigates proinflammatory response through PPARγ activation. This creates a favorable milieu for the differentiation of oligodendrocyte progenitor cells (OPCs) when OPCs are incubated with conditioned medium from SAN-treated microglia. We further extend our investigation into the cuprizone-induced demyelinating model, confirming that SAN treatment upregulates oligodendrocyte lineage genes and increases myelin content, further suggesting its pro-myelination effect. In conclusion, our data propose SAN as a promising candidate adding to the preclinical therapeutic arsenal for regulating microglial function and promoting myelin repair in CNS demyelinating diseases such as MS.
Insights
Sanguinarine (SAN) shows promise in treating multiple sclerosis (MS) by reducing inflammation and promoting myelin repair. This compound modulates microglia, aiding in the recovery process for central nervous system (CNS) demyelinating diseases.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Microglia are key players in central nervous system (CNS) inflammation and demyelination observed in multiple sclerosis (MS).
- Modulating microglial activity presents a potential therapeutic strategy for myelin repair in MS.
- Previous research identified sanguinarine (SAN) as a candidate for microglial modulation and remyelination.
Purpose of the Study:
- To evaluate the efficacy of sanguinarine (SAN) in preclinical models of multiple sclerosis (MS).
- To investigate the mechanisms by which SAN influences microglial polarization and promotes myelin repair.
Main Methods:
- Experimental autoimmune encephalomyelitis (EAE) and cuprizone-induced demyelination models were used in mice.
- SAN was administered prophylactically and therapeutically.
- Microglial activation, inflammatory cytokine production, oligodendrocyte progenitor cell (OPC) differentiation, and myelin content were assessed.
- PPARγ activation was investigated as a potential mechanism of action.
Main Results:
- SAN demonstrated dose-dependent efficacy in mitigating EAE, reducing disease incidence and severity.
- SAN treatment reduced microglial accumulation and inflammatory cytokine production in the spinal cord.
- SAN shifted microglia towards an immunoregulatory phenotype via PPARγ activation, promoting OPC differentiation.
- In the cuprizone model, SAN upregulated oligodendrocyte lineage genes and increased myelin content.
Conclusions:
- Sanguinarine (SAN) is a promising therapeutic candidate for regulating microglial function in CNS demyelinating diseases like MS.
- SAN promotes myelin repair by modulating microglial polarization and supporting oligodendrocyte differentiation.
- Further preclinical investigation of SAN for MS treatment is warranted.

