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Sulforaphane triggers a functional elongation of microglial process via the Akt signal
Yue Wu1, Minhui Gao1, Jingjing Wu2
1Department of Pharmacology, School of Pharmacy, Nantong University, #19 Qixiu Road, Nantong, Jiangsu Province, China 226001.
Abstract:
Microglia are a kind of innate immune cells in the nervous system. The amoeboid morphology in microglia indicates a pro-inflammatory status, while their ramified morphologies are associated with anti-neuroinflammation. Recently, we and others have reported that drugs that trigger microglial process elongation may be beneficial for neuroinflammation inhibition. In this study, we found that sulforaphane (SFN), a compound extracted from broccoli sprouts, promotes primary cultured microglial process elongation in both normal and pro-inflammatory conditions in a reversible manner. This pro-elongation effect of SFN was also observed in the prefrontal cortex in vivo and accompanied with an attenuation of pro-inflammatory response as well as an enhancement of anti-inflammatory response in primary cultured microglia. Mechanistic studies revealed that the SFN treatment increased Akt phosphorylation levels in primary cultured microglia and Akt inhibition blocked the effect of SFN on microglial process elongation, suggesting that the regulation of microglial process by SFN is mediated by Akt activation. Functional studies showed that Akt inhibition reversed the effect of SFN on both pro- and anti-inflammatory responses in lipopolysaccharide (LPS)-stimulated microglia. In an inflammation model in vivo, SFN pretreatment not only prevented LPS-induced retractions of microglial process in the prefrontal cortex, but improved LPS-induced behavioral abnormalities in mice, including the increase in immobility time in the tail suspension test and forced swim test as well as the decrease in sucrose preference. These results indicate that the SFN inhibits microglial activation and neuroinflammation-triggered behavioral abnormalities likely through triggering Akt-mediated microglial process elongation.
Insights
Sulforaphane (SFN) promotes microglial process elongation, reducing neuroinflammation. This compound, found in broccoli sprouts, may inhibit microglial activation and improve behavioral abnormalities linked to inflammation.
Area of Science:
- Neuroscience
- Immunology
- Pharmacology
Background:
- Microglia, innate immune cells in the brain, exhibit distinct morphologies correlating with inflammatory states.
- Amoeboid microglia indicate pro-inflammation, while ramified forms suggest anti-neuroinflammation.
- Modulating microglial morphology, specifically promoting process elongation, shows promise for inhibiting neuroinflammation.
Purpose of the Study:
- To investigate the effect of sulforaphane (SFN) on microglial process elongation.
- To explore the underlying mechanisms of SFN's action on microglia.
- To evaluate SFN's efficacy in mitigating neuroinflammation and associated behavioral deficits in vivo.
Main Methods:
- Primary microglial cultures were treated with SFN under normal and pro-inflammatory conditions.
- In vivo studies involved SFN administration in mouse prefrontal cortex and an LPS-induced inflammation model.
- Mechanistic studies assessed Akt phosphorylation, while functional studies examined inflammatory responses and behavioral tests (tail suspension, forced swim, sucrose preference).
Main Results:
- SFN promoted primary microglial process elongation reversibly in vitro and in vivo.
- SFN attenuated pro-inflammatory responses and enhanced anti-inflammatory responses in microglia.
- SFN-induced microglial process elongation was mediated by Akt activation, which also reversed inflammatory and behavioral changes in vivo.
Conclusions:
- Sulforaphane effectively promotes microglial process elongation, shifting microglia towards an anti-inflammatory state.
- SFN's neuroprotective effects are mediated through Akt activation, inhibiting microglial activation and neuroinflammation.
- SFN demonstrates potential as a therapeutic agent for neuroinflammatory conditions and associated behavioral abnormalities.
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