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DHA attenuates Aβ-induced necroptosis through the RIPK1/RIPK3 signaling pathway in THP-1 monocytes
Shiqi Yuan1, Huan Li1, Canhong Yang1
1Department of Neurology, The Third Affiliated Hospital of Southern Medical University, No. 183, Zhongshan Road West, Guangzhou 510630, PR China.
Abstract:
Monocytes play a crucial role in Alzheimer's disease (AD), and docosahexaenoic acid (DHA) has a neuroprotective effect for many neurodegenerative diseases. However, mechanisms that regulate monocyte and Aβ protein interaction in AD and the effects of DHA on monocytes in the context of AD are not fully understood. The experiments were designed to further explore possible mechanisms of interaction between monocytes and Aβ plaques. Another objective of this study was to investigate a potential mechanism for Aβ-induced necroptosis involving the activation of MAPK and NF-kB signaling pathways in human THP-1 monocytes, as well as how these pathways might be modulated by DHA. Our findings indicate that Aβ25-35 has a "Hormesis" effect on cell viability and necroptosis in THP-1 cells, and Aβ25-35 influences THP-1 cells differentiation as analyzed by flow cytometry. Pretreatment of THP-1 monocytes with DHA effectively inhibited Aβ-induced activation and markedly suppressed protein expression of necroptosis (RIPK1, RIPK3, MLKL) and pro-inflammatory cytokines (TNF-α, IL-1β, IL-6). Moreover, our findings indicate that Aβ25-35 activated the ERK1/2 and p38 signaling pathways, but not NF-κB/p65 signaling, while pre-treatment with DHA followed by Aβ25-35 treatment suppressed only ERK1/2 signaling. Further study revealed that the expression level of RIPK3 is reduced much more during coadministration with DHA and necrostatin-1 (NEC-1) than administration alone with either of them, indicating that DHA may have additional targets. Meanwhile, this finding indicates that DHA can prevent Aβ-induced necroptosis of THP-1 cells via the RIPK1/RIPK3 signaling pathway. Our results also indicate that DHA treatment restored migration of THP-1 monocytes induced by Aβ25-35, and DHA treatment could be a promising new therapy for AD management.
Insights
Docosahexaenoic acid (DHA) prevents amyloid-beta induced monocyte necroptosis in Alzheimer's disease models. DHA suppresses inflammatory pathways and restores monocyte migration, suggesting its therapeutic potential for AD management.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Monocytes are implicated in Alzheimer's disease (AD) pathogenesis.
- Docosahexaenoic acid (DHA) exhibits neuroprotective properties.
- Mechanisms of monocyte-amyloid-beta (Aβ) interaction and DHA's role in AD remain unclear.
Purpose of the Study:
- To investigate monocyte-Aβ plaque interaction mechanisms in AD.
- To explore Aβ-induced necroptosis pathways (MAPK, NF-kB) in human THP-1 monocytes.
- To determine DHA's modulatory effects on these pathways and monocyte function.
Main Methods:
- Utilized human THP-1 monocytes treated with Aβ25-35 peptide.
- Assessed cell viability, differentiation (flow cytometry), and necroptosis markers (RIPK1, RIPK3, MLKL).
- Analyzed MAPK (ERK1/2, p38) and NF-kB signaling pathway activation.
- Investigated DHA's effects on Aβ-induced responses and monocyte migration.
Main Results:
- Aβ25-35 exhibited hormesis on THP-1 cell viability and induced necroptosis.
- DHA pretreatment inhibited Aβ-induced necroptosis and pro-inflammatory cytokine (TNF-α, IL-1β, IL-6) expression.
- Aβ25-35 activated ERK1/2 and p38 pathways; DHA suppressed ERK1/2 signaling.
- DHA prevented Aβ-induced necroptosis via the RIPK1/RIPK3 pathway and restored monocyte migration.
Conclusions:
- DHA effectively inhibits Aβ-induced necroptosis and inflammation in monocytes.
- DHA modulates MAPK signaling and preserves monocyte function in an AD context.
- DHA represents a potential therapeutic strategy for Alzheimer's disease management.
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