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Published on: May 26, 2023
Oxidative stress decreases microtubule growth and stability in ventricular myocytes
Benjamin M L Drum1, Can Yuan1, Lei Li1
1Department of Physiology & Biophysics, University of Washington School of Medicine, Seattle, WA 98195, United States.
Abstract:
Microtubules (MTs) have many roles in ventricular myocytes, including structural stability, morphological integrity, and protein trafficking. However, despite their functional importance, dynamic MTs had never been visualized in living adult myocytes. Using adeno-associated viral vectors expressing the MT-associated protein plus end binding protein 3 (EB3) tagged with EGFP, we were able to perform live imaging and thus capture and quantify MT dynamics in ventricular myocytes in real time under physiological conditions. Super-resolution nanoscopy revealed that EB1 associated in puncta along the length of MTs in ventricular myocytes. The vast (~80%) majority of MTs grew perpendicular to T-tubules at a rate of 0.06μm∗s(-1) and growth was preferentially (82%) confined to a single sarcomere. Microtubule catastrophe rate was lower near the Z-line than M-line. Hydrogen peroxide increased the rate of catastrophe of MTs ~7-fold, suggesting that oxidative stress destabilizes these structures in ventricular myocytes. We also quantified MT dynamics after myocardial infarction (MI), a pathological condition associated with increased production of reactive oxygen species (ROS). Our data indicate that the catastrophe rate of MTs increases following MI. This contributed to decreased transient outward K(+) currents by decreasing the surface expression of Kv4.2 and Kv4.3 channels after MI. On the basis of these data, we conclude that, under physiological conditions, MT growth is directionally biased and that increased ROS production during MI disrupts MT dynamics, decreasing K(+) channel trafficking.
Insights
Dynamic microtubules in heart cells were visualized for the first time. Oxidative stress and myocardial infarction disrupt microtubule growth, impacting ion channel function.
Area of Science:
- Cardiovascular Biology
- Cell Biology
- Biophysics
Background:
- Microtubules (MTs) are crucial for ventricular myocyte structure and protein transport.
- Dynamic MTs in adult ventricular myocytes remained unvisualized until this study.
Purpose of the Study:
- To visualize and quantify dynamic microtubules in living adult ventricular myocytes.
- To investigate the impact of oxidative stress and myocardial infarction on MT dynamics and function.
Main Methods:
- Adeno-associated viral vectors expressing EGFP-tagged EB3 for live imaging.
- Super-resolution nanoscopy to analyze MT growth and dynamics.
- Quantification of MT dynamics in physiological and pathological conditions (myocardial infarction).
Main Results:
- Visualized and quantified MT dynamics in real-time in ventricular myocytes.
- Demonstrated directional bias in MT growth, predominantly perpendicular to T-tubules and within single sarcomeres.
- Showed that hydrogen peroxide significantly increases MT catastrophe rate, indicating destabilization by oxidative stress.
- Observed increased MT catastrophe rate post-myocardial infarction, linked to decreased Kv4.2/Kv4.3 channel surface expression and reduced K+ currents.
Conclusions:
- Microtubule growth in ventricular myocytes is directionally biased under physiological conditions.
- Increased reactive oxygen species production during myocardial infarction disrupts MT dynamics.
- Disrupted MT dynamics contribute to impaired K+ channel trafficking and function after myocardial infarction.
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