Reducing ischemic kidney injury through application of a synchronization modulation electric field to maintain Na + /K + -ATPase functions

Author:

Chen Wei1ORCID,Wang Lei2ORCID,Liang Pengfei1,Mast Jason1,Mathis Clausell1,Liu Catherine Y.2ORCID,Wei Jin2,Zhang Jie2,Fu Liying3,Juncos Luis A.4ORCID,Buggs Jacentha5ORCID,Liu Ruisheng2ORCID

Affiliation:

1. Department of Physics, College of Arts and Sciences, University of South Florida, Tampa, FL 33620, USA.

2. Department of Molecular Pharmacology and Physiology, College of Medicine, University of South Florida, Tampa, FL 33620, USA.

3. Department of Pathology, Scripps Green Hospital, La Jolla, CA 92037, USA.

4. Department of Internal Medicine, University of Arkansas for Medical Sciences, Little Rock, AR 72205, USA.

5. Tampa General Hospital, Tampa, FL 33606, USA.

Abstract

Renal ischemia-reperfusion injury is an important contributor to the development of delayed graft function after transplantation, which is associated with higher rejection rates and poorer long-term outcomes. One of the earliest impairments during ischemia is Na + /K + -ATPase (Na/K pump) dysfunction due to insufficient ATP supply, resulting in subsequent cellular damage. Therefore, strategies that preserve ATP or maintain Na/K pump function may limit the extent of renal injury during ischemia-reperfusion. Here, we applied a synchronization modulation electric field to activate Na/K pumps, thereby maintaining cellular functions under ATP-insufficient conditions. We tested the effectiveness of this technique in two models of ischemic renal injury: an in situ renal ischemia-reperfusion injury model (predominantly warm ischemia) and a kidney transplantation model (predominantly cold ischemia). Application of the synchronization modulation electric field to a renal ischemia-reperfusion injury mouse model preserved Na/K pump activity, thereby reducing kidney injury, as reflected by 40% lower plasma creatinine (1.17 ± 0.03 mg/dl) in the electric field–treated group as compared to the untreated control group (1.89 ± 0.06 mg/dl). In a mouse kidney transplantation model, renal graft function was improved by more than 50% with the application of the synchronization modulation electric field according to glomerular filtration rate measurements (85.40 ± 12.18 μl/min in the untreated group versus 142.80 ± 11.65 μl/min in the electric field–treated group). This technique for preserving Na/K pump function may have therapeutic potential not only for ischemic kidney injury but also for other diseases associated with Na/K pump dysfunction due to inadequate ATP supply.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

General Medicine

Reference66 articles.

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