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Published on: November 3, 2023
Disruption of hexokinase II-mitochondrial binding blocks ischemic preconditioning and causes rapid cardiac necrosis
Kirsten M A Smeele1, Richard Southworth, Rongxue Wu
1Department of Anesthesiology, Laboratory of Experimental Intensive Care and Anesthesiology, Academic Medical Center, Amsterdam, Netherlands.
Insights
Mitochondrial hexokinase II (HKII) is crucial for heart protection during ischemia. Disrupting HKII binding to mitochondria prevents preconditioning benefits and, at high doses, causes severe cardiac damage by affecting mitochondrial function.
Area of Science:
- Biochemistry
- Cardiology
- Cell Biology
Background:
- Hexokinase isoforms I and II (HKI and HKII) bind to mitochondria.
- The necessity of mitochondrial-bound hexokinase for ischemic preconditioning and normal heart function is unclear.
Purpose of the Study:
- To test the hypothesis that reducing mitochondrial hexokinase abrogates ischemic preconditioning and disrupts myocardial function.
- To investigate the role of mitochondrial HKII in cardiac function and ischemic preconditioning.
Main Methods:
- Utilized ex vivo perfused hearts from HKII(+/-) and wild-type mice.
- Employed TAT-HK peptide to acutely reduce mitochondrial HKII levels in wild-type hearts.
- Assessed mitochondrial HKII association using immunogold labeling and electron microscopy.
- Evaluated cardiac function and ischemia-reperfusion injury.
Main Results:
- HKII(+/-) hearts showed increased cell death post-injury, but preconditioning was unaffected.
- Low-dose TAT-HK treatment reduced mitochondrial HKII, increased ischemia-reperfusion injury, and abolished preconditioning effects.
- High-dose TAT-HK induced mitochondrial depolarization, swelling, contractile impairment, and cardiac disintegration.
Conclusions:
- Mitochondrial HKII association is essential for the protective effects of ischemic preconditioning.
- Acute dissociation of HKII from mitochondria impairs cardiac function and protection.
- High-dose dissociation leads to severe cardiac damage via mitochondrial membrane depolarization.
Rationale:
Isoforms I and II of the glycolytic enzyme hexokinase (HKI and HKII) are known to associate with mitochondria. It is unknown whether mitochondria-bound hexokinase is mandatory for ischemic preconditioning and normal functioning of the intact, beating heart.
Objective:
We hypothesized that reducing mitochondrial hexokinase would abrogate ischemic preconditioning and disrupt myocardial function.
Methods And Results:
Ex vivo perfused HKII(+/-) hearts exhibited increased cell death after ischemia and reperfusion injury compared with wild-type hearts; however, ischemic preconditioning was unaffected. To investigate acute reductions in mitochondrial HKII levels, wild-type hearts were treated with a TAT control peptide or a TAT-HK peptide that contained the binding motif of HKII to mitochondria, thereby disrupting the mitochondrial HKII association. Mitochondrial hexokinase was determined by HKI and HKII immunogold labeling and electron microscopy analysis. Low-dose (200 nmol/L) TAT-HK treatment significantly decreased mitochondrial HKII levels without affecting baseline cardiac function but dramatically increased ischemia-reperfusion injury and prevented the protective effects of ischemic preconditioning. Treatment for 15 minutes with high-dose (10 μmol/L) TAT-HK resulted in acute mitochondrial depolarization, mitochondrial swelling, profound contractile impairment, and severe cardiac disintegration. The detrimental effects of TAT-HK treatment were mimicked by mitochondrial membrane depolarization after mild mitochondrial uncoupling that did not cause direct mitochondrial permeability transition opening.
Conclusions:
Acute low-dose dissociation of HKII from mitochondria in heart prevented ischemic preconditioning, whereas high-dose HKII dissociation caused cessation of cardiac contraction and tissue disruption, likely through an acute mitochondrial membrane depolarization mechanism. The results suggest that the association of HKII with mitochondria is essential for the protective effects of ischemic preconditioning and normal cardiac function through maintenance of mitochondrial potential.
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