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Updated: Jun 23, 2025

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
p53 lysine-lactylated modification contributes to lipopolysaccharide-induced proinflammatory activation in BV2 cell
Xuechao Fei1, Lu Chen2, Jiayue Gao1
1Beijing Institute of Basic Medical Sciences, Beijing, 100850, China.
Abstract:
p53 has diversity functions in regulation of transcription, cell proliferation, cancer metastasis, etc. Recent studies have shown that p53 and nuclear factor-κB (NF-κB) co-regulate proinflammatory responses in macrophages. However, the role of p53 lysine lactylation (p53Kla) in mediating proinflammatory phenotypes in microglia under hypoxic conditions remains unclear. In the current study, we investigated the proinflammatory activation exacerbated by hypoxia and the levels of p53Kla in microglial cells. BV2 cells, an immortalized mouse microglia cell line, were divided into control, lipopolysaccharide (LPS)-induced, hypoxia (Hy), and LPS-Hy groups. The protein expression levels of p53 and p53Kla and the activation of microglia were compared among the four groups. Sodium oxamate and mutant p53 plasmids were transfected into BV2 cells to detect the effect of p53Kla on microglial proinflammatory activation. LPS-Hy stimulation significantly upregulated p53Kla levels in both the nucleus and the cytoplasm of BV2 cells. In contrast, the p53 protein levels were downregulated. LPS-Hy stimulation upregulated phosphorylated p65 protein levels in nuclear and activated the NF-κB pathway in BV2 cells, resulting in increased expression of pro-inflammatory cytokines (iNOS, IL6, IL1β, TNFα), enhanced cell viability, and concomitantly, increased cytotoxicity. In conclusion, p53 lysine-lactylated modification contributes to LPS-induced proinflammatory activation in BV2 cells under hypoxia through NF-κB pathway and inhibition of lactate production may alleviate neuroinflammatory injury.
Insights
p53 lysine lactylation (p53Kla) exacerbates inflammation in microglia under hypoxia. Inhibiting lactate production may reduce this neuroinflammatory injury by targeting the NF-κB pathway.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- p53 regulates diverse cellular processes, including transcription and proliferation.
- p53 and nuclear factor-κB (NF-κB) co-regulate inflammation in macrophages.
- The role of p53 lysine lactylation (p53Kla) in microglial inflammation under hypoxia is unknown.
Purpose of the Study:
- Investigate hypoxia-exacerbated microglial inflammation.
- Determine the levels of p53Kla in microglia under these conditions.
- Elucidate the role of p53Kla in mediating proinflammatory phenotypes.
Main Methods:
- Utilized BV2 microglial cells exposed to lipopolysaccharide (LPS) and hypoxia (Hy).
- Assessed p53 and p53Kla protein levels and microglial activation.
- Employed sodium oxamate and mutant p53 plasmids to study p53Kla effects.
Main Results:
- LPS-Hy significantly increased p53Kla in nucleus and cytoplasm, while decreasing p53 levels.
- LPS-Hy activated the NF-κB pathway, increasing phosphorylated p65.
- Pro-inflammatory cytokine expression (iNOS, IL6, IL1β, TNFα) and cytotoxicity were elevated.
Conclusions:
- p53Kla promotes LPS-induced microglial inflammation under hypoxia via the NF-κB pathway.
- Inhibiting lactate production may mitigate neuroinflammatory damage.
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