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Enhanced phagocytosis associated with multinucleated microglia via Pyk2 inhibition in an acute β-amyloid infusion
Ji-Won Lee1, Kaito Mizuno2,3, Haruhisa Watanabe4,5
1Microbiology, Department of Oral Pathobiological Science, Faculty and Graduate School of Dental Medicine, Hokkaido University, Kita13 Nishi7, Kita-Ku, Sapporo, 060-8586, Japan. jwlee@den.hokudai.ac.jp.
Abstract:
Multinucleated microglia have been observed in contexts associated with infection, inflammation, and aging. Though commonly linked to pathological conditions, the larger cell size of multinucleated microglia might enhance their phagocytic functions, potentially aiding in the clearance of brain debris and suggesting a reassessment of their pathological significance. To assess the phagocytic capacity of multinucleated microglia and its implications for brain debris clearance, we induced their formation by inhibiting Pyk2 activity using the pharmacological inhibitor PF-431396, which triggers cytokinesis regression. Multinucleated microglia demonstrate enhanced phagocytic function, as evidenced by their increased capacity to engulf β-amyloid (Aβ) oligomers. Concurrently, the phosphorylation of Pyk2, induced by Aβ peptide, was diminished upon treatment with a Pyk2 inhibitor (Pyk2-Inh, PF-431396). Furthermore, the increased expression of Lamp1, a lysosomal marker, with Pyk2-inh treatment, suggests an enhancement in proteolytic activity. In vivo, we generated an acute Alzheimer's disease (AD) model by infusing Aβ into the brains of Iba-1 EGFP transgenic (Tg) mice. The administration of the Pyk2-Inh led to an increased migration of microglia toward amyloid deposits in the brains of Iba-1 EGFP Tg mice, accompanied by morphological activation, suggesting a heightened affinity for Aβ. In human microglia, lipopolysaccharide (LPS)-induced inflammatory responses showed that inhibition of Pyk2 signaling significantly reduced the transcription and protein expression of pro-inflammatory markers. These results suggest that Pyk2 inhibition can modulate microglial functions, potentially reducing neuroinflammation and aiding in the clearance of neurodegenerative disease markers. This highlights Pyk2 as a promising target for therapeutic intervention in neurodegenerative diseases.
Insights
Inhibition of Pyk2 enhances multinucleated microglia's ability to clear amyloid-beta, suggesting a therapeutic strategy for neurodegenerative diseases like Alzheimer's disease.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Multinucleated microglia, often associated with aging and inflammation, may possess enhanced phagocytic capabilities.
- Their role in clearing brain debris and pathological significance warrants further investigation.
Purpose of the Study:
- To investigate the phagocytic capacity of multinucleated microglia.
- To explore the therapeutic potential of inhibiting Pyk2 for neurodegenerative diseases.
Main Methods:
- Inducing multinucleated microglia formation by inhibiting Pyk2 activity with PF-431396.
- Assessing phagocytosis of beta-amyloid (Aβ) oligomers and Lamp1 expression.
- Utilizing an in vivo Alzheimer's disease model in Iba-1 EGFP transgenic mice.
- Evaluating the effects of Pyk2 inhibition on microglial inflammatory responses in human cells.
Main Results:
- Multinucleated microglia exhibited increased phagocytosis of Aβ oligomers.
- Pyk2 inhibition reduced Aβ-induced Pyk2 phosphorylation and increased Lamp1 expression.
- In vivo, Pyk2 inhibition promoted microglial migration towards amyloid deposits and reduced pro-inflammatory markers.
- Pyk2 inhibition modulated microglial functions, enhancing neuroinflammation reduction and clearance of disease markers.
Conclusions:
- Pyk2 inhibition enhances microglial phagocytic capacity and neuroprotective functions.
- Targeting Pyk2 offers a potential therapeutic strategy for neurodegenerative diseases by modulating microglial activity and reducing neuroinflammation.

