ArticleCell death & disease2023
N6-methyladenosine demethylase FTO regulates synaptic and cognitive impairment by destabilizing PTEN mRNA in hypoxic-ischemic neonatal rats.
Article in Cell death & disease, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed, 10 citations in OpenAlex.
- m6A RNA methylation in neural plasticity, brain aging, and neurodegenerative vulnerability.Molecular brain · 2026Review
- METTL7B-stabilized lncRNA-MIR22HG to drive p53-mediated neuronal apoptosis via the ubiquitinating JARID2 in cerebral ischemia/reperfusion injury.Cell biology and toxicology · 2026Article
- FTO-dependent mInflammation · 2026Article
- Electroacupuncture reduces amyloid beta accumulation and improves cerebral ischemia-induced cognitive impairment in a N6-methyladenosine-dependent manner.Journal of molecular histology · 2026Article
- Regulation of FTO on PDCD5 mRNA stability to mediate neuron apoptosis in rats with hypoxic-ischemic brain damage.Translational neuroscience · 2026Article
- Inhibition of N6-Methyladenosine Accumulation by Targeting METTL3 Mitigates Tau Pathology and Cognitive Decline in Alzheimer's Disease.Research square · 2025Article
- Gut microbial dysbiosis exacerbates long-term cognitive impairments by promoting intestinal dysfunction and neuroinflammation following neonatal hypoxia-ischemia.Gut microbes · 2025Article
- The Role of mRNA Alternative Processing in Mammalian Neurodevelopment.International journal of molecular sciences · 2025Review
- The Clinical Relevance of FTO as a Demethylase Beyond Cancer: Molecular Mechanisms and Therapeutic Opportunities.Aging and disease · 2025Review
- Mechanisms of Fat Mass and Obesity-Associated Protein in Regulating Cognitive Impairment Induced by Sevoflurane Anesthesia in Neonatal Rats.Neurochemical research · 2025Article
- BNIP3-mediated mitophagy attenuates hypoxic-ischemic brain damage in neonatal rats by inhibiting ferroptosis through P62-KEAP1-NRF2 pathway activation to maintain iron and redox homeostasis.Acta pharmacologica Sinica · 2025Article
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Authors and funding
12 authors at 2 institutions in 1 country.
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Abstract
Hypoxic-ischemic brain damage (HIBD) can result in significant global rates of neonatal death or permanent neurological disability. N6-methyladenosine (m6A) modification of RNA influences fundamental aspects of RNA metabolism, and m6A dysregulation is implicated in various neurological diseases. However, the biological roles and clinical significance of m6A in HIBD remain unclear. We currently evaluated the effect of HIBD on cerebral m6A methylation in RNAs in neonatal rats. The m6A dot blot assay showed a global augmentation in RNA m6A methylation post-HI. Herein, we also report on demethylase FTO, which is markedly downregulated in the hippocampus and is the main factor involved with aberrant m6A modification following HI. By conducting a comprehensive analysis of RNA-seq data and m6A microarray results, we found that transcripts with m6A modifications were more highly expressed overall than transcripts without m6A modifications. The overexpression of FTO resulted in the promotion of Akt/mTOR pathway hyperactivation, while simultaneously inhibiting autophagic function. This is carried out by the demethylation activity of FTO, which selectively demethylates transcripts of phosphatase and tensin homolog (PTEN), thus promoting its degradation and reduced protein expression after HI. Moreover, the synaptic and neurocognitive disorders induced by HI were effectively reversed through the overexpression of FTO in the hippocampus. Cumulatively, these findings demonstrate the functional importance of FTO-dependent hippocampal m6A methylome in cognitive function and provides novel mechanistic insights into the therapeutic potentials of FTO in neonatal HIBD.
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