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Green Fluorescent Protein-based Expression Screening of Membrane Proteins in Escherichia coli
Published on: January 6, 2015
Intracellular Mechanism of Rosuvastatin-Induced Decrease in Mature hERG Protein Expression on Membrane
Pan-Feng Feng1, Bo Zhang1, Lei Zhao1
1Department of Pharmacology, College of Pharmacy , Harbin Medical University , Harbin , Heilongjiang 150081 , P. R. China.
Insights
Rosuvastatin reduces cardiac hERG channel function by affecting its expression, trafficking, and degradation. This can prolong cardiac repolarization, increasing the risk of arrhythmias, especially with concurrent QT-prolonging drugs.
Area of Science:
- Cardiovascular Pharmacology
- Molecular Cardiology
- Drug Safety
Background:
- The hERG potassium channel (IKr) is critical for cardiac repolarization.
- Decreased IKr function can lead to long QT syndrome and potentially fatal arrhythmias.
- Statins, including rosuvastatin, have been implicated in IKr inhibition.
Purpose of the Study:
- To elucidate the mechanism of rosuvastatin-induced hERG current reduction.
- To assess the potential for rosuvastatin-induced cardiac toxicity.
- To investigate rosuvastatin's effects on hERG channel expression, trafficking, and degradation.
Main Methods:
- Utilized induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs).
- Assessed hERG currents, action potential duration (APD), and QTc intervals.
- Investigated protein expression, transcription factor activity (Sp1, ATF6), chaperone involvement (Hsp70, calnexin, calreticulin), and degradation pathways (lysosomes, proteasomes).
Main Results:
- Rosuvastatin reduced hERG currents by accelerating inactivation and prolonging APD.
- It decreased mature hERG expression, involving Sp1 transcription factor.
- Rosuvastatin impaired hERG trafficking by reducing Hsp70 interaction and activated the UPR pathway via ATF6.
- Both lysosomal and proteasomal degradation pathways were upregulated, increasing hERG channel turnover.
- Significant blockade of hERG current, prolonged APDs, and QTc intervals were observed.
Conclusions:
- Rosuvastatin reduces hERG plasma membrane expression through impaired trafficking and increased degradation.
- It potently blocks hERG current, delays cardiac repolarization, and prolongs APDs and QTc intervals.
- Caution is advised when prescribing rosuvastatin, particularly with other QT-prolonging medications.
Abstract:
The hERG potassium channel (IKr) encoded by human ether-a-go-go-related gene plays an important role in cardiac repolarization. Decreased IKr may lead to long QT syndrome, which subsequently causes torsade de pointes and sudden cardiac death. Previous studies have shown that statins inhibit IKr and are more potent in inhibiting hERG currents when combined with other drugs. Since chemical structure of rosuvastatin is similar to that of several IKr blockers (ibutilide and E-4031), the present study aimed to reveal the mechanism that underlies rosuvastatin-induced hERG current reduction and to evaluate the possibility of cardiac toxicity. The results showed that rosuvastatin reduced hERG currents by accelerating the inactivation and prolonged action potential duration (APD) in hiPSC-CMs. Meanwhile, it was observed that rosuvastatin reduced the expression of the mature hERG. Transcription factor Sp1 was involved in hERG protein downregulation induced by rosuvastatin, and the result was verified by Sp1 siRNA and Sp1 agonist epicatechin. These results indicated that rosuvastatin could potentially inhibit transcription and reduce hERG mRNA expression. The interaction between hERG and heat shock protein was evaluated to study the mechanism of trafficking inhibition through co-immunoprecipitation. We found that rosuvastatin reduces the interaction of heat shock protein 70 (Hsp70) with the hERG protein, thereby affecting the folding of the hERG channel. Additionally, rosuvastatin significantly activates ATF6, which plays a key role in the activation of the unfolded protein response (UPR) pathway. Increased expression of the molecular chaperone calnexin and calreticulin, which are activated by ATF6 to help channel folding, further confirmed UPR activation. Meanwhile, the degradation of the hERG channel was mediated by lysosomes and proteasomes. In conclusion, Rosuvastatin reduced the expression of hERG plasma membrane by two pathways, the first is to disrupt the transport of immature hERG channels to the membrane, and the second is to increase the degradation of mature hERG channels. In addition, Rosuvastatin potently blocked hERG current, delayed cardiac repolarization, and thereby prolonged APDs and QTc intervals. Therefore, caution should be taken when rosuvastatin is used in the treatment of hyperlipidemia, especially when combined with drugs that can prolong the QT interval.
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