Literature DB >> 32130021

Renal tissue Po2 sensing during acute hemodilution is dependent on the diluent.

Jessica R Abrahamson1, Austin Read1, Kyle Chin1, Nikhil Mistry1,2, Hannah Joo1, Jean-Francois Desjardins3, Elaine Liu1, Kerri Thai3, David F Wilson4, Sergei A Vinogradov4, Jason T Maynes5, Richard E Gilbert3,6, Kim A Connelly7,3,8, Andrew J Baker1,3,2, C David Mazer1,7,3,2, Gregory M T Hare1,7,3.   

Abstract

Sensing changes in blood oxygen content ([Formula: see text]) is an important physiological role of the kidney; however, the mechanism(s) by which the kidneys sense and respond to changes in [Formula: see text] are incompletely understood. Accurate measurements of kidney tissue oxygen tension ([Formula: see text]) may increase our understanding of renal oxygen-sensing mechanisms and could inform decisions regarding the optimal fluid for intravascular volume resuscitation to maintain renal perfusion. In some clinical settings, starch solution may be nephrotoxic, possibly due to inadequacy of tissue oxygen delivery. We hypothesized that hemodilution with starch colloid solutions would reduce [Formula: see text] to a more severe degree than other diluents. Anesthetized Sprague-Dawley rats (n = 77) were randomized to undergo hemodilution with either colloid (6% hydroxyethyl starch or 5% albumin), crystalloid (0.9% saline), or a sham procedure (control) (n = 13-18 rats/group). Data were analyzed by ANOVA with significance assigned at P < 0.05. After hemodilution, mean arterial pressure (MAP) decreased marginally in all groups, while hemoglobin (Hb) and [Formula: see text] decreased in proportion to the degree of hemodilution. Cardiac output was maintained in all groups after hemodilution. [Formula: see text] decreased in proportion to the reduction in Hb in all treatment groups. At comparably reduced Hb, and maintained arterial oxygen values, hemodilution with starch resulted in larger decreases in [Formula: see text] relative to animals hemodiluted with albumin or saline (P < 0.008). Renal medullary erythropoietin (EPO) mRNA levels increased more prominently, relative to other hypoxia-regulated molecules (GLUT-1, GAPDH, and VEGF). Our data demonstrate that the kidney acts as a biosensor of reduced [Formula: see text] following hemodilution and that [Formula: see text] may provide a quantitative signal for renal cellular responsiveness to acute anemia. Evidence of a more severe reduction in [Formula: see text] following hemodilution with starch colloid solution suggests that tissue hypoxia may contribute to starch induced renal toxicity.

Entities:  

Keywords:  anemia; colloid; crystalloid; hemodilution; kidney tissue oxygen tension

Year:  2020        PMID: 32130021     DOI: 10.1152/ajpregu.00323.2019

Source DB:  PubMed          Journal:  Am J Physiol Regul Integr Comp Physiol        ISSN: 0363-6119            Impact factor:   3.619


  3 in total

1.  Renal microvascular oxygen tension during hyperoxia and acute hemodilution assessed by phosphorescence quenching and excitation with blue and red light.

Authors:  Kyle Chin; Melina P Cazorla-Bak; Elaine Liu; Linda Nghiem; Yanling Zhang; Julie Yu; David F Wilson; Sergei A Vinogradov; Richard E Gilbert; Kim A Connelly; Roger G Evans; Andrew J Baker; C David Mazer; Gregory M T Hare
Journal:  Can J Anaesth       Date:  2020-11-10       Impact factor: 5.063

Review 2.  When to transfuse your acute care patient? A narrative review of the risk of anemia and red blood cell transfusion based on clinical trial outcomes.

Authors:  Gregory M T Hare; Melina P Cazorla-Bak; S F Michelle Ku; Kyle Chin; Nikhil Mistry; Michael C Sklar; Katerina Pavenski; Ahmad Alli; Adriaan Van Rensburg; Jan O Friedrich; Andrew J Baker; C David Mazer
Journal:  Can J Anaesth       Date:  2020-08-07       Impact factor: 6.713

3.  Impact of sodium glucose linked cotransporter-2 inhibition on renal microvascular oxygen tension in a rodent model of diabetes mellitus.

Authors:  Gregory M T Hare; Yanling Zhang; Kyle Chin; Kerri Thai; Evelyn Jacobs; Melina P Cazorla-Bak; Linda Nghiem; David F Wilson; Sergei A Vinogradov; Kim A Connelly; C David Mazer; Roger G Evans; Richard E Gilbert
Journal:  Physiol Rep       Date:  2021-06
  3 in total

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