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Updated: Aug 14, 2026

Isolation of Microvascular Endothelial Tubes from Mouse Resistance Arteries
Published on: November 26, 2013
Insulin reduces contraction and intracellular calcium concentration in vascular smooth muscle
A M Kahn1, C L Seidel, J C Allen
1Department of Medicine, University of Texas Medical School, Houston.
Abstract:
Resistance to insulin-induced glucose disposal is associated with hypertension, in accord with recent reports that insulin-induced vasodilation is impaired in men with resistance to insulin-induced glucose disposal. Nevertheless, the mechanism of insulin-induced vasodilation is not known. We wished to determine whether a physiological concentration of insulin inhibits agonist-induced contraction at the level of the individual vascular smooth muscle cell, and if so, how. Dispersed vascular smooth muscle cells from dog femoral artery were grown on collagen gels for 4 to 8 days. Contraction and intracellular Ca2+ concentration of individual cells were measured by photomicroscopy and fura 2 epifluorescence microscopy, respectively. Serotonin and angiotensin II contracted cells in a dose-dependent manner. Preincubation of cells for 20 minutes (short-term) or 7 days (long-term) with insulin (40 microU/mL) inhibited serotonin- and angiotensin II-induced contractions by approximately 50%. Insulin (10 microU/mL) acutely inhibited serotonin-induced contraction by 34%. The maximal effect of high extracellular K(+)-induced contraction was not affected by short-term insulin exposure, but the ED50 for extracellular K(+)-induced contraction was increased from 7.6 +/- 2.5 to 16.0 +/- 3.9 mmol/L (P < .05). Short-term insulin exposure also attenuated the peak rise of the serotonin-induced intracellular Ca2+ transient and increased the rate constant for intracellular Ca2+ decline. Verapamil and ouabain completely blocked the attenuation of agonist-induced contraction by short-term insulin exposure, indicating the importance of voltage-operated Ca2+ channels and the Na(+)-K+ pump for this effect.(ABSTRACT TRUNCATED AT 250 WORDS)
Insights
Insulin can inhibit vascular smooth muscle contraction by affecting calcium levels and ion pumps. This finding helps explain why insulin resistance is linked to hypertension.
Area of Science:
- Vascular Physiology
- Endocrinology
Background:
- Insulin resistance is linked to hypertension and impaired insulin-induced vasodilation.
- The precise mechanism behind insulin-induced vasodilation remains unclear.
Purpose of the Study:
- To investigate if physiological insulin concentrations inhibit vascular smooth muscle cell contraction.
- To elucidate the cellular mechanisms involved in insulin's effect on vascular tone.
Main Methods:
- Vascular smooth muscle cells from dog femoral artery were cultured on collagen gels.
- Cell contraction and intracellular calcium (Ca2+) levels were measured using photomicroscopy and fura 2 epifluorescence microscopy.
- Cells were exposed to insulin and then stimulated with serotonin or angiotensin II.
Main Results:
- Insulin (40 microU/mL) significantly inhibited serotonin- and angiotensin II-induced contractions by approximately 50%.
- Acute insulin exposure (10 microU/mL) reduced serotonin-induced contraction by 34% and attenuated the rise in intracellular Ca2+.
- Insulin increased the decline rate of intracellular Ca2+ and affected extracellular K(+)-induced contractions, with effects blocked by verapamil and ouabain.
Conclusions:
- Insulin inhibits agonist-induced vascular smooth muscle contraction at the cellular level.
- This inhibition involves modulation of voltage-operated Ca2+ channels and the Na(+)-K+ pump.
- Findings provide insight into the mechanism of insulin-induced vasodilation and its potential role in hypertension.
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