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Published on: June 29, 2013
The effect of hypoxia-induced intrauterine growth restriction on renal artery function
M T C Verschuren1, J S Morton1, A Abdalvand1
11 Department of Obstetrics and Gynaecology, University of Alberta, Edmonton, Canada.
Insights
Intrauterine hypoxia and growth restriction alter rat renal artery function differently in males and females. These sex-specific vascular changes occur without evidence of premature kidney aging.
Area of Science:
- Cardiovascular Science
- Developmental Biology
- Renal Physiology
Background:
- Cardiovascular disease risk originates before birth.
- The intrauterine environment significantly impacts adult health.
- Previous studies linked in utero hypoxia and intrauterine growth restriction (IUGR) to cardiovascular changes.
Purpose of the Study:
- Investigate how in utero hypoxia and IUGR affect renal artery function.
- Determine if hypoxia induces renal senescence as a mediator of altered vascular function.
- Examine sex-specific differences in these effects.
Main Methods:
- Utilized a rat model of IUGR induced by in utero hypoxia.
- Assessed renal artery responses to adrenergic and endothelium-dependent stimuli.
- Measured nitric oxide (NO) modulation of vascular function.
- Analyzed kidney morphology, proteinuria, and senescence markers.
Main Results:
- IUGR females showed reduced vascular responses to phenylephrine and methylcholine.
- IUGR females exhibited altered basal and activated NO modulation in renal arteries.
- IUGR males displayed altered basal and activated NO modulation but intact contractile/vasodilator responses.
- No significant changes in kidney morphology, proteinuria, or senescence markers were observed in either sex.
Conclusions:
- In utero hypoxia and IUGR induce sex-dependent alterations in rat renal vascular function.
- These vascular dysfunctions are not mediated by premature renal senescence.
- Findings highlight the critical role of the intrauterine environment in long-term cardiovascular health.
Abstract:
The risk of developing cardiovascular diseases is known to begin before birth and the impact of the intrauterine environment on subsequent adult health is currently being investigated from many quarters. Following our studies demonstrating the impact of hypoxia in utero and consequent intrauterine growth restriction (IUGR) on the rat cardiovascular system, we hypothesized that changes extend throughout the vasculature and alter function of the renal artery. In addition, we hypothesized that hypoxia induces renal senescence as a potential mediator of altered vascular function. We demonstrated that IUGR females had decreased responses to the adrenergic agonist phenylephrine (PE; pEC50 6.50 ± 0.05 control v. 6.17 ± 0.09 IUGR, P < 0.05) and the endothelium-dependent vasodilator methylcholine (MCh; E max 89.8 ± 7.0% control v. 41.0 ± 6.5% IUGR, P < 0.001). In IUGR females, this was characterised by increased basal nitric oxide (NO) modulation of vasoconstriction (PE pEC50 6.17 ± 0.09 IUGR v. 6.42 ± 0.08 in the presence of the NO synthase inhibitor N-nitro-l-arginine methyl ester hydrochloride (l-NAME; P < 0.01) but decreased activated NO modulation (no change in MCh responses in the presence of l-NAME), respectively. In contrast, IUGR males had no changes in PE or MCh responses but demonstrated increased basal NO (PE pEC50 6.29 ± 0.06 IUGR v. 6.42 ± 0.12 plus l-NAME, P < 0.01) and activated NO (E max 37.8 ± 9.4% control v. -0.8 ± 13.0% plus l-NAME, P < 0.05) modulation. No significant changes were found in gross kidney morphology, proteinuria or markers of cellular senescence in either sex. In summary, renal vascular function was altered by hypoxia in utero in a sex-dependent manner but was unlikely to be mediated by premature renal senescence.
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