GEO series
Acsl1 mediated FA Synthesis Impairs Osseointegration in type I diabetes
GSE318283
Mus musculus
Expression profiling by high throughput sequencing
14 samples
2026/02/05
GPL28457
Summary
Diabetes mellitus is considered a relative contraindication for oral implant therapy, as hyperglycemia frequently precipitates vascular and osseous pathologies. Although clinicians routinely prioritize glycemic control before initiating implant-related treatment plans, diabetic patients often exhibit impaired osseointegration. However, the specific mechanisms remain to be elucidated. Emerging evidence suggests that this refractory bone loss is mediated by trained immunity, a process in which innate immune cells retain an epigenetic memory of prior inflammatory stimuli and mount an exaggerated response upon secondary challenge such as the invasive implantation process or inflammatory insult. Here, integrating RNA-seq, metabolomics, and ATAC-seq analyses, we demonstrate that stringent glycemic control in type I diabetes fails to normalize fatty-acid biosynthetic process, which remain persistently activated and potentiate macrophage-mediated inflammation and osteoclastogenesis when experiencing the secondary challenge. Mechanistically, prior hyperglycemic exposure enhances chromatin accessibility and sustaining Acsl1 transcription by H3K4me1 epigenetic modification at the Acsl1 locus in macrophages. This epigenetic imprint augments fatty-acid anabolism, amplifies pro-inflammatory cytokine production, and accelerates osteoclastic differentiation, ultimately compromising osseous repair. Collectively, our findings reveal that diabetes-induced H3K4me1 modification at Acsl1 drives metabolic reprogramming underpinning trained immunity and consequent bone damage. Targeting H3K4me1 or Acsl1 therefore represents a promising therapeutic strategy to improve implant osseointegration and skeletal regeneration in diabetic patients.
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