Glucose Variability: How Does It Work?
Vadim V Klimontov1, Olga V Saik1,2, Anton I Korbut1
1Laboratory of Endocrinology, Research Institute of Clinical and Experimental Lymphology-Branch of the Institute of Cytology and Genetics, Siberian Branch of Russian Academy of Sciences (RICEL-Branch of IC&G SB RAS), 630060 Novosibirsk, Russia.
Abstract:
A growing body of evidence points to the role of glucose variability (GV) in the development of the microvascular and macrovascular complications of diabetes. In this review, we summarize data on GV-induced biochemical, cellular and molecular events involved in the pathogenesis of diabetic complications. Current data indicate that the deteriorating effect of GV on target organs can be realized through oxidative stress, glycation, chronic low-grade inflammation, endothelial dysfunction, platelet activation, impaired angiogenesis and renal fibrosis. The effects of GV on oxidative stress, inflammation, endothelial dysfunction and hypercoagulability could be aggravated by hypoglycemia, associated with high GV. Oscillating hyperglycemia contributes to beta cell dysfunction, which leads to a further increase in GV and completes the vicious circle. In cells, the GV-induced cytotoxic effect includes mitochondrial dysfunction, endoplasmic reticulum stress and disturbances in autophagic flux, which are accompanied by reduced viability, activation of apoptosis and abnormalities in cell proliferation. These effects are realized through the up- and down-regulation of a large number of genes and the activity of signaling pathways such as PI3K/Akt, NF-κB, MAPK (ERK), JNK and TGF-β/Smad. Epigenetic modifications mediate the postponed effects of glucose fluctuations. The multiple deteriorative effects of GV provide further support for considering it as a therapeutic target in diabetes.
Insights
Glucose variability (GV) significantly contributes to diabetic complications through various biochemical and cellular pathways. Targeting GV offers a promising therapeutic strategy for managing diabetes and its severe health consequences.
Area of Science:
- Endocrinology
- Metabolism
- Molecular Biology
Background:
- Growing evidence links glucose variability (GV) to microvascular and macrovascular complications in diabetes.
- Understanding the underlying mechanisms of GV's detrimental effects is crucial for effective diabetes management.
Purpose of the Study:
- To review the biochemical, cellular, and molecular events mediating GV-induced diabetic complications.
- To highlight GV as a potential therapeutic target.
Main Methods:
- Comprehensive literature review of studies investigating glucose variability and diabetic complications.
- Analysis of biochemical, cellular, and molecular pathways affected by glucose fluctuations.
Main Results:
- GV exacerbates diabetic complications via oxidative stress, inflammation, endothelial dysfunction, and impaired angiogenesis.
- Hypoglycemia associated with high GV can worsen these effects.
- Cellular damage includes mitochondrial dysfunction, ER stress, and apoptosis, influenced by gene and signaling pathway modulation.
- Epigenetic modifications contribute to long-term effects of glucose fluctuations.
Conclusions:
- GV plays a significant role in the pathogenesis of diabetic complications.
- Multiple molecular and cellular pathways are implicated in GV's harmful effects.
- Targeting GV presents a viable therapeutic strategy for diabetes treatment.
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