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N-acetylcysteine reverses cardiac myocyte dysfunction in HIV-Tat proteinopathy
Fangping Chen1, William Lewis, John M Hollander
1Department of Medicine, West Virginia University School of Medicine, Morgantown, WV 26506-9157, USA.
Insights
HIV-Tat protein causes heart dysfunction by increasing oxidative stress. N-acetylcysteine (NAC) treatment reversed these effects, suggesting NAC as a potential therapy for HIV-associated cardiomyopathy.
Area of Science:
- Biochemistry
- Cardiology
- Molecular Biology
Background:
- HIV cardiomyopathy is a prevalent global health issue, particularly in developing nations.
- Direct effects of HIV proteins, such as HIV-Tat, are implicated in myocardial dysfunction.
- Previous studies established a murine model of cardiomyopathy with cardiac myocyte-specific HIV-Tat expression.
Purpose of the Study:
- To investigate the effects of HIV-Tat on myocardial oxidative stress and function.
- To evaluate the therapeutic potential of N-acetylcysteine (NAC) in reversing Tat-induced cardiac dysfunction.
Main Methods:
- Assessed myocardial ATP, glutathione (GSH), and GSH/GSSG ratio in wild-type (WT) and Tat transgenic (TG) mice.
- Measured hydrogen peroxide (H2O2) levels, catalase, and glutathione peroxidase 1 (GPX1) activities.
- Evaluated cardiac myocyte contractility (inotropy) and responses to Ca2+ in vitro.
- Administered NAC at different concentrations (10(-4) M and 10(-7) M) to Tat-expressing myocytes and assessed functional recovery and biochemical markers.
Main Results:
- Tat transgenic mice exhibited decreased myocardial ATP and GSH, reduced GSH/GSSG ratio, and increased H2O2 levels.
- Cardiac myocytes from TG mice showed blunted positive and negative inotropy and impaired responses to Ca2+.
- NAC (10(-4) M) completely reversed inotropic defects, normalized oxidative stress markers (H2O2, GPX1), and restored Ca2+ responsiveness.
- NAC (10(-7) M) improved contractile function duration without altering GSH levels, indicating a GSH-independent effect.
Conclusions:
- HIV-Tat induces cardiac myocyte dysfunction through oxidative stress mechanisms.
- N-acetylcysteine effectively reverses HIV-Tat-induced cardiac dysfunction via both GSH-dependent and independent pathways.
- Elucidating NAC's mechanisms may reveal novel therapeutic targets for HIV-associated cardiomyopathy and other proteinopathies.
Abstract:
HIV cardiomyopathy remains highly prevalent among the estimated 33 million HIV-infected individuals worldwide. This is particularly true in developing countries. Potential mechanisms responsible for myocardial dysfunction following HIV infection include direct effects of HIV proteins. We have previously reported that cardiac myocyte-specific expression of HIV-Tat (Tat) results in a murine cardiomyopathy model. We now report that Tat exhibits decreased myocardial ATP [wild type (WT) vs. Tat transgenic (TG), P < 0.01] and myocyte GSH levels (WT vs. TG, P < 0.01), decreased GSH/GSSG ratio (WT vs. TG, P < 0.01), increased H(2)O(2) levels (WT vs. TG, P < 0.05), and increased catalase (TG vs. WT, P < 0.05) and GPX1 (glutathione peroxidase 1) activities (WT vs. TG, P < 0.05), blunted cardiac myocyte positive inotropy (% peak shortening, WT vs. TG, P < 0.01; +dl/dt, WT vs. TG, P < 0.01) and negative inotropy (-dl/dt, WT vs. TG, P < 0.01), and blunted inotropic responses to Ca(2+) (P < 0.01, for each) and shortened anatomical and functional survival in vitro (P < 0.01). The sulfhydryl donor, N-acetylcysteine (NAC; 10(-4) M), completely reversed both the positive and negative inotropic defects in Tat; increased GSH (P < 0.01) and GSH/GSSG (P < 0.01); reversed H(2)O(2) level (P < 0.05) and GPX1 activity (P < 0.05); and normalized the blunted inotropic response to Ca(2+) (P < 0.01). NAC (10(-7)) M normalized duration of contractile function from <40 min to >120 min (P < 0.01), with no effect on GSH and GSH/GSSG. NAC (10(-4) M) reverses cardiac myocyte dysfunction and markers of oxidative stress. NAC (10(-7) M) enhances myocyte function independent of changes in glutathione. Elucidating the molecular mechanisms involved in the GSH-dependent and GSH-independent salutary effects of NAC should identify novel therapeutic targets for myocardial proteinopathies recently appreciated in human cardiomyopathies.
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