Renal oxygenation: preglomerular vasculature is an unlikely contributor to renal oxygen shunting

Author:

Olgac Ufuk1,Kurtcuoglu Vartan12

Affiliation:

1. The Interface Group, Institute of Physiology, University of Zurich, Zurich, Switzerland;

2. Zurich Center for Integrative Human Physiology, University of Zurich, Zurich, Switzerland

Abstract

The primary aim of this study was to assess the plausibility of preglomerular arterial-to-venous oxygen shunting in the kidney. To this end, we have developed a segment-wise three-dimensional computational model that takes into account transport processes in arteries, veins, cortical tissue, and capillaries. Our model suggests that the amount of preglomerular oxygen shunting is negligible. Consequently, it is improbable that preglomerular shunting contributes to the hypothesized regulation of renal oxygenation. Cortical tissue oxygenation is more likely determined by the interplay between oxygen supply, either from the preglomerular vasculature or from capillaries, and oxygen consumption. We show that reported differences in permeability to oxygen between perfused and unperfused tissue may be explained by what we refer to as advection-facilitated diffusion. We further show that the preglomerular vasculature is the primary source of oxygen for the tissue when cortical consumption is high or renal arterial blood is highly oxygenated, i.e., under hyperoxemic conditions. Conversely, when oxygen demand in the tissue is decreased, or under hypoxemic conditions, oxygen is supplied predominantly by capillaries.

Publisher

American Physiological Society

Subject

Physiology

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1. Reconfiguration and loss of peritubular capillaries in chronic kidney disease;Scientific Reports;2023-11-11

2. Anemia and Hypoxia Impact on Chronic Kidney Disease Onset and Progression: Review and Updates;Cureus;2023-10-09

3. Fount, fate, features, and function of renal erythropoietin-producing cells;Pflügers Archiv - European Journal of Physiology;2022-06-24

4. Renal blood flow and oxygenation;Pflügers Archiv - European Journal of Physiology;2022-04-19

5. A mathematical model of the rat kidney. III. Ammonia transport;American Journal of Physiology-Renal Physiology;2021-06-01

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