| Literature DB >> 29876021 |
Jialin Duan1, Jingwen Tao1, Maocai Zhai1, Chengpeng Li2, Ning Zhou1, Jiagao Lv1, Lin Wang1, Li Lin1, Rong Bai3,4.
Abstract
Anticancer drugs may have proarrhythmic effects including drug-induced QT interval prolongation, which is of particular importance because it can lead to a fatal polymorphic ventricular tachycardia termed torsade de pointes (TdP). QT interval prolongation and TdP are rare life-threatening untoward effects of anticancer therapy, particularly with arsenic trioxides and anthracyclines, and even some novel molecular targeted drugs touted as 'tumor specific'. Several factors that affect myocardial repolarization can further increase the risk of TdP. This article reviews the mechanism of QT interval prolongation, risk factors for TdP and the QT toxicity of anticancer drugs as well as its management. Specific attention should be paid to high-risk populations such as patients with underlying heart diseases, electrolyte imbalance and bradycardia. To minimize the occurrence of QT interval prolongation and TdP, it is advisable to conduct a careful risk factor assessment before antitumor therapy. To this end, several new biomarkers have been introduced to predict TdP triggering and recent studies have pointed out the potential clinical relevance of genetic testing.Entities:
Keywords: QT interval prolongation; anticancer therapy; molecularly targeted drugs; torsade de pointes
Year: 2018 PMID: 29876021 PMCID: PMC5986642 DOI: 10.18632/oncotarget.25008
Source DB: PubMed Journal: Oncotarget ISSN: 1949-2553
Figure 1TdP in a patient with distant metastatic (M1) gastric adenocarcinoma undergoing oxaliplatin treatment
Figure 2QT and JT interval measurement with ECG
Figure 3Multiple ion currents involved in the myocardial action potential
Among them, IKr (HERG) is the most common target for anticancer drugs induced QT prolongation. Arsenic trioxide and oxaliplatin prolong the QT interval in unique ways. (+) represented for enhancing and (-) for inhibiting. Ito, transient outward potassium current.
Common clinical risk factors for drug-induced QT prolongation and TdP [19]
| Female |
| Conditions predisposing to heightened QT prolongation and risk of arrhythmia |
| Heart disease |
| Congestive heart failure |
| Left-ventricular hypertrophy |
| Hours following conversion of atrial fibrillation to sinus rhythm |
| Congenital long-QT syndrome (may be clinically unrecognized) |
| Bradycardia and conduction disease |
| Increased drug bioavailability |
| Altered function of specific cytochrome P450 (CYP450) isoforms (for liver metabolized drugs) Genetic variants |
| Concomitant inhibitory drugs |
| Liver disease |
| Altered renal or liver function (for renally or hepatically excreted drugs) |
| Electrolyte imbalance |
| Hypokalaemia |
| Hypomagnesaemia |
| Hypocalcaemia (possible) |
| Administration of other drugs which might cause QT prolongation |
Figure 4“Short-long-short” pattern prior to triggering a TdP
Figure 5TWA in a patient with congenital long QT syndrome
Minutes later, the patient developed TdP.
Antineoplastic drugs that prolong the QT interval
| 37% with 30–60 ms↑, 35% with > than 60 ms↑ | [ | ||
| 9.56 ms↑in doxorubicin therapy | [ | ||
| Dose related | possible | [ | |
| 6.25% in cisplatin treatment, no data for oxaliplatin treatment | [ | ||
| Significant increases in QTmax and QTd were observed as early as 24 h after 5-FU treatment | [ | ||
| QT prolongation usually occurs with total cesium intakes of 6 g/day | [ | ||
| Prolongs QT interval with long-term treatment (12 weeks) | [ | ||
| 36% with vorinostat treatment | [ | ||
| 1 case report | possible | [ | |
| Varieties of TKIs could lead to QT interval prolongation. | [ | ||
| 23.3% QTc prolongation | [ | ||
| Vemurafenib and Dabrafenib | [ | ||
| Eribulin | a minor prolongation of QTc | [ | |
| Bortezonib | 2 of 11 patients showed QT interval prolongation | [ |