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Frontiers in Cell and Developmental Biology· 2026Q1

Metilglioksal, NRSF/REST Aracılığıyla Transkriptom Modifikasyonu Yoluyla İnsan Retina Endotel Hücrelerinin Anjiyojenik Kapasitesini Engeller

Methylglyoxal hampers the angiogenic capacity of human retinal endothelial cells modifying cell transcriptome with the contribution of NRSF/REST

Marianna Aprile, Cecilia Nigro, Caterina Perfetto, Alessia Leone ve diğerleri

Kısa özet

Metilglioksal (MGO) maruziyeti, insan retina endotel hücrelerinin (hREC) anjiyojenik kapasitesini %72'ye kadar bozarak migrasyonu, tüp oluşumunu ve perisit alımını azaltır ve bu işlev bozukluğu kısmen transkripsiyonel düzenleyici NRSF/REST tarafından aracılık edilir.

Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.

Ana noktalar

  • MGO'nun 72 saat boyunca maruz bırakılması, hREC migrasyonunu, tüp oluşumunu ve perisit alımını bozar.
  • MGO, hREC'lerde kapsamlı transkripsiyonel ve mikroRNA bozukluklarına neden olur.
  • NRSF/REST ekspresyonu MGO tedavisinden sonra artar ve düzensizleştirilmiş genlerin %56'sına bağlanır.
  • NRSF/REST'in susturulması, endotel fonksiyonundaki MGO kaynaklı kusurları önemli ölçüde azaltır.

Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.

Özet (abstract)

Background The functional impairment of retinal microvascular cells is an early and central event in diabetic retinopathy (DR). Methylglyoxal (MGO), the most reactive precursor of advanced glycation end products (AGEs), has been implicated in vascular injury and neuro-retinal dysfunction. Its direct effects on retinal endothelial cells and underlying molecular mechanisms remain poorly understood. Methods Human retinal endothelial cells (hRECs) were exposed to MGO and the effect of sublethal doses on the proangiogenic function was evaluated by migration, tube formation and pericyte recruitment assays. MGO derived AGEs were evaluated by western blot. Transcriptome and miRNome profiling were performed to identify gene expression and microRNA perturbations. Integrative in silico analyses combining RNA-Seq with ENCODE ChIP-Seq datasets were used to identify transcriptional regulators responsible for MGO-induced gene deregulation. Transcriptomic profiles were compared with independent human DR datasets, and REST was silenced by siRNAs followed by analyses of proangiogenic function. Results The exposure of hRECs to MGO for 72 h is sufficient to increase protein glycation adducts, impair the migration, tube-formation and the recruitment of pericytes. Transcriptome and miRNome analyses highlight that MGO induces extensive transcriptional perturbations, related to gene expression regulation, cell cycle, cell death and vasculature development. Among the identified transcriptional regulators, Neuron-Restrictive Silencer Factor/RE1-Silencing Transcription Factor (NRSF/REST) emerges as a candidate mediator, with binding sites enriched in 56% of deregulated genes. NRSF/REST expression markedly increases after 24 h of MGO treatment, suggesting it is an early event of the exposure to MGO. Protein–protein interaction network analysis prioritized NRSF/REST as a central node linking key MGO-responsive pathways. Accordingly, NRSF/REST knockdown is associated with the reduction of TP53 and FOSL2 , which are induced by MGO and display NRSF binding sites and known migration-related functions. Importantly, REST silencing significantly attenuates MGO-induced defects in endothelial migration, tube formation and pericyte recruitment, supporting its contribution to both transcriptional and functional endothelial alterations induced by MGO in hRECs. Conclusion These findings demonstrate that MGO exposure disrupts endothelial function and transcriptional homeostasis in hRECs, identifying NRSF/REST as a contributor to MGO-induced endothelial dysfunction and supporting further investigations of the MGO/NRSF-REST axis as a potential therapeutic target for DR.

Yazarların özeti; kaynağından alınmıştır. Frontiers in Cell and Developmental Biology, 2026 · DOI ↗

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Alan: Klinik Biyokimya

Clinical BiochemistryBiochemistry, Genetics and Molecular Biology