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February 26, 2026Molecular Biology0 citations

Ac4C Acetylation Facilitates lncRNA MEG3 to Ameliorate Hyperglycemia-Induced Ferroptosis of Hippocampal Neurons

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ZZZ. ZhangCZC. ZhongZHZ. Huang

Key Points

  • This research aims to explore how hyperglycemia affects MEG3 levels and the subsequent impact on hippocampal neuron death.
  • Cultured HT22 cells in high glucose to model diabetes-associated cognitive impairment.
  • Used acetylated RNA immunoprecipitation to analyze MEG3 acetylation.
  • Conducted RNA decay assay to assess MEG3 stability.
  • NAT10-mediated ac4C acetylation significantly improves MEG3 stability in hyperglycemic conditions.
  • Hyperglycemia reduces the interaction between MEG3 and NAT10.
  • NAT10-driven MEG3 expression inhibits hyperglycemia-induced ferroptosis in neurons.

Abstract

Diabetes mellitus has been a global health concern, deteriorating central nervous system to induce diabetes-associated cognitive impairment (DACI). To date, the understanding of DACI is still in the infancy stage. Hyperglycemia reduces long non-coding RNA (lncRNA) maternally expressed gene 3 (MEG3) level in hippocampal neuron, and overexpression of MEG3 attenuates DACI by inhibiting hyperglycemia-induced hippocampal neuron death. However, the mechanisms of hyperglycemia inducing hippocampal neuron death by downregulating MEG3 remain unclear. Here, HT22 cells were cultured in a high glucose concentration (50 mM D-glucose) to establish in vitro DACI model. Besides, acetylated RNA immunoprecipitation (acRIP) was used to detected N4-acetylcytidine (ac4C) acetylation of MEG3 while MEG3 stability was identified by RNA decay assay. The investigation indicates that N-acetyltransferase 10 (NAT10)-mediated ac4C acetylation alleviates hyperglycemia-induced decrease in MEG3 level by improving its stability in hippocampal neurons. Mechanistically, hyperglycemia disrupts the interaction of MEG3 and NAT10. Moreover, NAT10-driven MEG3 suppresses hyperglycemia-induced ferroptosis of hippocampal neurons. Our findings suggest that NAT10-mediated ac4C acetylation improves MEG3 stability to inhibit hyperglycemia-induced ferroptosis of hippocampal neurons, which should provide novel targets for DACI treatment.

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Cite This Study

Zhang et al. (2025) studied this question.

synapsesocial.com/papers/699fe35995ddcd3a253e7147https://doi.org/10.1134/s0026893325700797
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