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Updated: Jan 27, 2026

A Pulmonary Trunk Banding Model of Pressure Overload Induced Right Ventricular Hypertrophy and Failure
Published on: November 29, 2018
Adenosine kinase attenuates cardiomyocyte microtubule stabilization and protects against pressure overload-induced
John Fassett1, Xin Xu2, Dongmin Kwak3
1Department of Pharmacology and Toxicology, University of Graz, Graz 8010, Austria.
Insights
Adenosine kinase (ADK) is crucial for heart health. Disrupting ADK in mice caused cardiac hypertrophy and dysfunction, revealing its role in microtubule stability and protection against heart disease.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Adenosine offers cardioprotection, including mitigating cardiac hypertrophy.
- Adenosine kinase (ADK) is central to myocardial adenosine metabolism, but its role in cardiac function remains unclear.
Purpose of the Study:
- To investigate the impact of ADK activity on cardiac structure and function under normal and stress conditions.
- To elucidate the mechanisms underlying ADK's influence on cardiomyocyte adaptation.
Main Methods:
- Generated cardiomyocyte-specific ADK knockout mice (cADK-/-) using the MerCreMer-lox-P system.
- Subjected mice to transverse aortic constriction (TAC) to induce pressure overload.
- Analyzed cardiac structure, function, and molecular signaling pathways, including microtubule dynamics.
Main Results:
- ADK disruption led to spontaneous cardiac hypertrophy and, under pressure overload, exacerbated hypertrophy, dilation, and reduced ejection fraction.
- ADK deficiency was linked to increased microtubule stabilization and elevated mTORC1 and ERK signaling.
- Adenosine treatment protected cardiomyocytes from hypertrophy by modulating microtubule detyrosination, an effect dependent on ADK activity.
Conclusions:
- ADK plays a critical role in maintaining cardiac homeostasis and adaptation to stress.
- ADK-mediated adenosine metabolism influences cardiomyocyte microtubule dynamics independently of adenosine receptors.
- ADK is a potential therapeutic target for preventing maladaptive cardiac hypertrophy.
Abstract:
Adenosine exerts numerous protective actions in the heart, including attenuation of cardiac hypertrophy. Adenosine kinase (ADK) converts adenosine to adenosine monophosphate (AMP) and is the major route of myocardial adenosine metabolism, however, the impact of ADK activity on cardiac structure and function is unknown. To examine the role of ADK in cardiac homeostasis and adaptation to stress, conditional cardiomyocyte specific ADK knockout mice (cADK-/-) were produced using the MerCreMer-lox-P system. Within 4 weeks of ADK disruption, cADK-/- mice developed spontaneous hypertrophy and increased β-Myosin Heavy Chain expression without observable LV dysfunction. In response to 6 weeks moderate left ventricular pressure overload (transverse aortic constriction;TAC), wild type mice (WT) exhibited ~60% increase in ventricular ADK expression and developed LV hypertrophy with preserved LV function. In contrast, cADK-/- mice exhibited significantly greater LV hypertrophy and cardiac stress marker expression (atrial natrurietic peptide and β-Myosin Heavy Chain), LV dilation, reduced LV ejection fraction and increased pulmonary congestion. ADK disruption did not decrease protein methylation, inhibit AMPK, or worsen fibrosis, but was associated with persistently elevated mTORC1 and p44/42 ERK MAP kinase signaling and a striking increase in microtubule (MT) stabilization/detyrosination. In neonatal cardiomyocytes exposed to hypertrophic stress, 2-chloroadenosine (CADO) or adenosine treatment suppressed MT detyrosination, which was reversed by ADK inhibition with iodotubercidin or ABT-702. Conversely, adenoviral over-expression of ADK augmented CADO destabilization of MTs and potentiated CADO attenuation of cardiomyocyte hypertrophy. Together, these findings indicate a novel adenosine receptor-independent role for ADK-mediated adenosine metabolism in cardiomyocyte microtubule dynamics and protection against maladaptive hypertrophy.
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