Cardiospecific Overexpression of ATPGD1 (Carnosine Synthase) Increases Histidine Dipeptide Levels and Prevents Myocardial Ischemia Reperfusion Injury

Author:

Zhao Jingjing12,Conklin Daniel J.12,Guo Yiru3,Zhang Xiang4,Obal Detlef5,Guo Luping12,Jagatheesan Ganapathy12,Katragadda Kartik12,He Liqing4,Yin Xinmin4,Prodhan Md Aminul Islam4,Shah Jasmit6,Hoetker David12,Kumar Amit7,Kumar Vijay7,Wempe Michael F.7,Bhatnagar Aruni12,Baba Shahid P.12

Affiliation:

1. Diabetes and Obesity Center University of Louisville KY

2. Christina Lee Brown Envirome Institute University of Louisville KY

3. Division of Cardiovascular Medicine Department of Medicine University of Louisville KY

4. Department of Chemistry University of Louisville KY

5. Department of Anesthesiology and Perioperative and Pain Medicine Stanford University Palo Alto CA

6. Department of Medicine The Aga Khan University Medical College Nairobi Kenya

7. Department of Pharmaceutical Sciences University of Colorado Denver CO

Abstract

BACKGROUND Myocardial ischemia reperfusion (I/R) injury is associated with complex pathophysiological changes characterized by pH imbalance, the accumulation of lipid peroxidation products acrolein and 4‐hydroxy trans ‐2‐nonenal, and the depletion of ATP levels. Cardioprotective interventions, designed to address individual mediators of I/R injury, have shown limited efficacy. The recently identified enzyme ATPGD1 (Carnosine Synthase), which synthesizes histidyl dipeptides such as carnosine, has the potential to counteract multiple effectors of I/R injury by buffering intracellular pH and quenching lipid peroxidation products and may protect against I/R injury . METHODS AND RESULTS We report here that β‐alanine and carnosine feeding enhanced myocardial carnosine levels and protected the heart against I/R injury. Cardiospecific overexpression of ATPGD 1 increased myocardial histidyl dipeptides levels and protected the heart from I/R injury. Isolated cardiac myocytes from ATPGD 1‐transgenic hearts were protected against hypoxia reoxygenation injury. The overexpression of ATPGD 1 prevented the accumulation of acrolein and 4‐hydroxy trans ‐2‐nonenal–protein adducts in ischemic hearts and delayed acrolein or 4‐hydroxy trans ‐2‐nonenal–induced hypercontracture in isolated cardiac myocytes. Changes in the levels of ATP , high‐energy phosphates, intracellular pH, and glycolysis during low‐flow ischemia in the wild‐type mice hearts were attenuated in the ATPGD 1‐transgenic hearts. Two natural dipeptide analogs (anserine and balenine) that can either quench aldehydes or buffer intracellular pH , but not both, failed to protect against I/R injury. CONCLUSIONS Either exogenous administration or enhanced endogenous formation of histidyl dipeptides prevents I/R injury by attenuating changes in intracellular pH and preventing the accumulation of lipid peroxidation derived aldehydes.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine

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