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Modeling oxygen consumption in the proximal tubule: effects of NHE and SGLT2 inhibition.

Publication ,  Journal Article
Layton, AT; Vallon, V; Edwards, A
Published in: American journal of physiology. Renal physiology
June 2015

The objective of this study was to investigate how physiological, pharmacological, and pathological conditions that alter sodium reabsorption (TNa) in the proximal tubule affect oxygen consumption (QO2 ) and Na(+) transport efficiency (TNa/QO2 ). To do so, we expanded a mathematical model of solute transport in the proximal tubule of the rat kidney. The model represents compliant S1, S2, and S3 segments and accounts for their specific apical and basolateral transporters. Sodium is reabsorbed transcellularly, via apical Na(+)/H(+) exchangers (NHE) and Na(+)-glucose (SGLT) cotransporters, and paracellularly. Our results suggest that TNa/QO2 is 80% higher in S3 than in S1-S2 segments, due to the greater contribution of the passive paracellular pathway to TNa in the former segment. Inhibition of NHE or Na-K-ATPase reduced TNa and QO2 , as well as Na(+) transport efficiency. SGLT2 inhibition also reduced proximal tubular TNa but increased QO2 ; these effects were relatively more pronounced in the S3 vs. the S1-S2 segments. Diabetes increased TNa and QO2 and reduced TNa/QO2 , owing mostly to hyperfiltration. Since SGLT2 inhibition lowers diabetic hyperfiltration, the net effect on TNa, QO2 , and Na(+) transport efficiency in the proximal tubule will largely depend on the individual extent to which glomerular filtration rate is lowered.

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Published In

American journal of physiology. Renal physiology

DOI

EISSN

1522-1466

ISSN

1931-857X

Publication Date

June 2015

Volume

308

Issue

12

Start / End Page

F1343 / F1357

Related Subject Headings

  • Urology & Nephrology
  • Sodium-Hydrogen Exchangers
  • Sodium-Glucose Transporter 2 Inhibitors
  • Sodium-Glucose Transporter 2
  • Sodium
  • Rats
  • Oxygen Consumption
  • Kidney Tubules, Proximal
  • Hypoglycemic Agents
  • Glomerular Filtration Rate
 

Citation

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ICMJE
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Layton, A. T., Vallon, V., & Edwards, A. (2015). Modeling oxygen consumption in the proximal tubule: effects of NHE and SGLT2 inhibition. American Journal of Physiology. Renal Physiology, 308(12), F1343–F1357. https://doi.org/10.1152/ajprenal.00007.2015
Layton, Anita T., Volker Vallon, and Aurélie Edwards. “Modeling oxygen consumption in the proximal tubule: effects of NHE and SGLT2 inhibition.American Journal of Physiology. Renal Physiology 308, no. 12 (June 2015): F1343–57. https://doi.org/10.1152/ajprenal.00007.2015.
Layton AT, Vallon V, Edwards A. Modeling oxygen consumption in the proximal tubule: effects of NHE and SGLT2 inhibition. American journal of physiology Renal physiology. 2015 Jun;308(12):F1343–57.
Layton, Anita T., et al. “Modeling oxygen consumption in the proximal tubule: effects of NHE and SGLT2 inhibition.American Journal of Physiology. Renal Physiology, vol. 308, no. 12, June 2015, pp. F1343–57. Epmc, doi:10.1152/ajprenal.00007.2015.
Layton AT, Vallon V, Edwards A. Modeling oxygen consumption in the proximal tubule: effects of NHE and SGLT2 inhibition. American journal of physiology Renal physiology. 2015 Jun;308(12):F1343–F1357.

Published In

American journal of physiology. Renal physiology

DOI

EISSN

1522-1466

ISSN

1931-857X

Publication Date

June 2015

Volume

308

Issue

12

Start / End Page

F1343 / F1357

Related Subject Headings

  • Urology & Nephrology
  • Sodium-Hydrogen Exchangers
  • Sodium-Glucose Transporter 2 Inhibitors
  • Sodium-Glucose Transporter 2
  • Sodium
  • Rats
  • Oxygen Consumption
  • Kidney Tubules, Proximal
  • Hypoglycemic Agents
  • Glomerular Filtration Rate