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Sehr niedrigIn vitro2026

Hyperglycemia Leads to BMSC Impaired Osteogenesis, Enhanced Adipogenesis, and Altered Metabolism.

Suzanna Shirazi, Ezaldeen Esawi, Zeyad D Nassar, Stan Gronthos et al.

Kernaussage

High glucose impairs BMSC osteogenesis and proliferation while promoting adipogenesis, leading to increased cellular damage and aging, with NAD+ and α-KG levels being key implicated metabolites that can partially counteract these effects when supplemented.

Abstract

Diabetes is a major risk factor for osteoporosis, which negatively impacts bone health, but the mechanisms underlying the effects of hyperglycemia on bone marrow mesenchymal/stromal cells (BMSC) are not fully understood. This study investigated how high glucose levels influence BMSC differentiation, proliferation, viability, and metabolism. The results demonstrated that high glucose inhibits osteogenesis in human BMSC, as evidenced by reduced alkaline phosphatase activity, impaired calcium deposition, and downregulation of key osteogenic genes (RUNX2, ALP). Conversely, high glucose conditions promoted adipogenesis, characterized by increased percentage of cells with lipid droplets, and upregulation of adipogenic genes (PPARγ2, CEBPα, AdipoQ), suggesting a shift towards fat cell differentiation. Furthermore, BMSC cultured in high glucose showed decreased proliferation, elevated DNA damage, increased oxidative stress, enhanced apoptosis and senescence, particularly in later passages, highlighting the negative impact of hyperglycemia on BMSC viability. Metabolomic profiling of osteogenic and adipogenic differentiation in normal and high glucose conditions revealed key metabolic shifts, with nicotinamide adenine dinucleotide (NAD+) and l-glutamate/α-ketoglutarate (α-KG) identified as critical metabolites driving these processes. Supplementation with NAD+ and α-KG in high glucose conditions significantly enhanced ALP activity. These findings suggest that high glucose promotes adipogenesis at the expense of osteogenesis, exacerbating cellular damage and accelerating aging in BMSC. The identification of NAD+ and α-KG as key regulators in this process provides new insights into the metabolic mechanisms behind impaired bone health in diabetes and highlights potential therapeutic avenues to counteract these detrimental effects to better manage diabetes-related bone diseases.

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Quelle: PubMed Central / National Library of Medicine (NLM). Apollion steht in keiner Verbindung mit NLM und wird von NLM nicht empfohlen. Evidenzgrade bewerten die methodische Studienqualität — nicht die inhaltliche Richtigkeit.

Lizenz: CC BY — Inhalte werden ausschließlich aus Open-Access-Quellen mit kommerziell nutzbaren Lizenzen (CC0, CC BY, CC BY-SA) indexiert.