Cellular transport ofl-arginine determines renal medullary blood flow in control rats, but not in diabetic rats despite enhanced cellular uptake capacity

Author:

Persson Patrik1,Fasching Angelica1,Teerlink Tom2,Hansell Peter1ORCID,Palm Fredrik1

Affiliation:

1. Division of Integrative Physiology, Department of Medical Cell Biology, Uppsala University, Uppsala, Sweden; and

2. Department of Clinical Chemistry, VU University Medical Center, Amsterdam, The Netherlands

Abstract

Diabetes mellitus is associated with decreased nitric oxide bioavailability thereby affecting renal blood flow regulation. Previous reports have demonstrated that cellular uptake of l-arginine is rate limiting for nitric oxide production and that plasma l-arginine concentration is decreased in diabetes. We therefore investigated whether regional renal blood flow regulation is affected by cellular l-arginine uptake in streptozotocin-induced diabetic rats. Rats were anesthetized with thiobutabarbital, and the left kidney was exposed. Total, cortical, and medullary renal blood flow was investigated before and after renal artery infusion of increasing doses of either l-homoarginine to inhibit cellular uptake of l-arginine or Nω-nitro- l-arginine methyl ester (l-NAME) to inhibit nitric oxide synthase. l-Homoarginine infusion did not affect total or cortical blood flow in any of the groups, but caused a dose-dependent reduction in medullary blood flow. l-NAME decreased total, cortical and medullary blood flow in both groups. However, the reductions in medullary blood flow in response to both l-homoarginine and l-NAME were more pronounced in the control groups compared with the diabetic groups. Isolated cortical tubular cells displayed similar l-arginine uptake capacity whereas medullary tubular cells isolated from diabetic rats had increased l-arginine uptake capacity. Diabetics had reduced l-arginine concentrations in plasma and medullary tissue but increased l-arginine concentration in cortical tissue. In conclusion, the reduced l-arginine availability in plasma and medullary tissue in diabetes results in reduced nitric oxide-mediated regulation of renal medullary hemodynamics. Cortical blood flow regulation displays less dependency on extracellular l-arginine and the upregulated cortical tissue l-arginine may protect cortical hemodynamics in diabetes.

Funder

Vetenskapsrådet (Swedish Research Council)

The Swedish Diabetes Foundation

Svenska Sällskapet för Medicinsk Forskning (Swedish Society for Medical Research)

Åke Wiberg Foundation

the Family Ernfors Foundation

Publisher

American Physiological Society

Subject

Physiology

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