Glucose effects on skin keratinocytes: implications for diabetes skin complications
N Spravchikov1, G Sizyakov, M Gartsbein
1Department of Pathology, Sackler School of Medicine, Tel Aviv University, Tel Aviv, 69978 Israel.
Abstract:
Altered skin wound healing is a common cause of morbidity and mortality among diabetic patients. However, the molecular mechanisms whereby diabetes alters skin physiology have not been elucidated. In this study, we investigated the relative roles of hyperglycemia, insulin, and IGF-I, all of which are abnormal in diabetes, in primary murine skin keratinocytes. These cells proliferate and differentiate in vitro in a manner similar to skin in vivo. It was found that in the presence of high glucose (20 mmol/l), the glucose transport rate of primary proliferating or differentiating keratinocytes was downregulated, whereas at 2 mmol/l glucose, the transport rate was increased. These changes were associated with changes in the GLUT1 expression and with changes in the affinity constant (K(m)) of the transport. Exposure to high glucose was associated with changes in cellular morphology, as well as with decreased proliferation and enhancement of Ca(2+)-induced differentiation of keratinocytes. Furthermore, in the presence of high glucose, ligand-induced IGF-I receptor but not insulin receptor (IR) autophosphorylation was decreased. Consequently, in high glucose, the effects of IGF-I on glucose uptake and keratinocyte proliferation were inhibited. Interestingly, lack of IR expression in IR-null keratinocytes abolished insulin-induced glucose uptake and partially decreased insulin- and IGF-I-induced proliferation, demonstrating the direct involvement of the IR in these processes. Our results demonstrate that hyperglycemia and impaired insulin signaling might be directly involved in the development of chronic complications of diabetes by impairing glucose utilization of skin keratinocytes as well as skin proliferation and differentiation.
Insights
Diabetes impairs skin healing by affecting keratinocyte glucose metabolism and function. High glucose levels and poor insulin signaling disrupt glucose uptake, proliferation, and differentiation, contributing to diabetic complications.
Area of Science:
- Cell Biology
- Dermatology
- Endocrinology
Background:
- Diabetic patients exhibit poor skin wound healing, but the underlying molecular mechanisms remain unclear.
- Hyperglycemia, insulin, and IGF-I are altered in diabetes and may impact skin physiology.
Purpose of the Study:
- To investigate the roles of hyperglycemia, insulin, and IGF-I in regulating primary murine skin keratinocytes.
- To elucidate the molecular mechanisms behind diabetes-induced alterations in skin keratinocyte function.
Main Methods:
- Primary murine skin keratinocytes were cultured in vitro under varying glucose concentrations.
- Glucose transport, GLUT1 expression, insulin receptor (IR) and IGF-I receptor autophosphorylation were measured.
- Keratinocyte proliferation and differentiation were assessed under different conditions.
Main Results:
- High glucose downregulated glucose transport and GLUT1 expression in keratinocytes.
- High glucose altered cell morphology, decreased proliferation, and enhanced differentiation.
- High glucose inhibited IGF-I-induced effects and impaired insulin signaling via the IR.
Conclusions:
- Hyperglycemia and impaired insulin signaling directly contribute to diabetic skin complications.
- These factors impair keratinocyte glucose utilization, proliferation, and differentiation.
- Understanding these mechanisms is crucial for managing diabetic wound healing.
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