Diabetic wounds exhibit delayed and incomplete healing, usually due to vascular and nerve damage. Dysregulation of cellular Ca 2+ homeostasis has recently been shown to be closely related to insulin resistance and type 2 diabetes mellitus. However, the involvement of this dysregulation in diabetic wound complications remains unknown. In this study, we found calcium dysregulation in patients with diabetic ulcers via tissue protein profiling. High glucose and glucometabolic toxicant stimulation considerably impaired the function of TRPC6, a pore subunit of transient receptor potential channels mediating Ca 2+ influx, and mitochondria, which regulate calcium cycling and metabolism. Furthermore, we found that mesenchymal stem cell (MSC)-derived small extracellular vesicles (MSC-sEVs) could play a dual role in restoring the function of TRPC6 and mitochondria by delivering transcription factor SP2 and deubiquitinating enzyme USP9, respectively. MSC-sEVs could transfer SP2 that activated TRPC6 expression by binding to its specific promoter regions (-1519 to -1725 bp), thus recovering Ca 2+ influx and downstream pathways. MSC-sEVs also promoted mitophagy to restore mitochondrial function by transporting USP9 that stabilized the expression of Parkin, a major player in mitophagy, thereby guaranteeing Ca 2+ efflux and avoidance of Ca 2+ overload. Targeting the regulation of calcium homeostasis provides a perspective for understanding diabetic wound healing, and the corresponding design of MSC-sEVs could be a potential therapeutic strategy.
Keyphrases
- wound healing
- transcription factor
- type diabetes
- mesenchymal stem cells
- insulin resistance
- binding protein
- protein kinase
- poor prognosis
- cell death
- high glucose
- gene expression
- endothelial cells
- bone marrow
- metabolic syndrome
- dna methylation
- stem cells
- adipose tissue
- oxidative stress
- drug delivery
- skeletal muscle
- endoplasmic reticulum
- reactive oxygen species
- high fat diet
- protein protein
- long non coding rna
- weight loss
- glycemic control
- single cell
- risk assessment
- risk factors
- cell therapy