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Cardiotoxic effects of [3-[2-(diethylamino)ethyl]-1H-indol-4-yl] acetate and 3-[2-[ethyl(methyl)amino]ethyl]-1H-indol-4-ol: Short title: QT prolongation by 4-acetoxy-DET and 4-hydroxy-MET.

K. S. Yoon, Jin-Moo Lee, Young-Hoon Kim, S. Suh, Hye Jin Cha

Toxicology Letters November 6, 2019 DOI: 10.1016/j.toxlet.2019.10.022 via Semantic Scholar

Summary

AI-generated from the abstract

Two synthetic tryptamines, 4-AcO-DET and 4-HO-MET, are abused as recreational hallucinogens and may pose unknown health risks. In laboratory tests, both substances increased the proliferation of rat heart cells in a concentration-dependent manner, prolonged QT intervals in rats, and inhibited potassium channels in hamster cells, indicating potential cardiotoxicity. Expression of the PAK1 protein, involved in cardiovascular function, did not change. The findings suggest these new psychoactive substances could cause adverse cardiovascular effects, supporting evidence for their legal scheduling.

Study at a glance

Characteristics Experimental study Peer reviewed
Population H9c2 rat heart cells, Sprague-Dawley rats, and Chinese hamster ovary cells
Interventions 4-AcO-DET 4-HO-MET
Keywords Medicine Chemistry
Key finding 4-AcO-DET and 4-HO-MET increased heart cell proliferation, prolonged QT intervals, and inhibited potassium channels, indicating potential cardiotoxicity, without altering PAK1 expression.

Abstract

Two synthetic tryptamines, namely [3-[2-(diethylamino)ethyl]-1H-indol-4-yl] acetate (4-AcO-DET) and 3-[2-[ethyl(methyl)amino]ethyl]-1H-indol-4-ol (4-HO-MET), are abused by individuals seeking recreational hallucinogens. These new psychoactive substances (NPSs) can cause serious health problems because their adverse effects are mostly unknown. In the present study, we evaluated the cardiotoxicity of 4-AcO-DET and 4-HO-MET using the 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) assay, electrocardiography (ECG), and the human ether-a-go-go-related gene (hERG) assay. In addition, we analyzed the expression level of p21 (CDC42/RAC)-activated kinase 1 (PAK1), which is known to play various roles in the cardiovascular system. In the MTT assay, 4-AcO-DET- and 4-HO-MET-treated H9c2 cells proliferated in a concentration-dependent manner. Moreover, both substances increased QT intervals (as determined using ECG) in Sprague-Dawley rats and inhibited potassium channels (as verified by the hERG assay) in Chinese hamster ovary cells. However, there was no change in PAK1 expression. Collectively, the results indicated that 4-AcO-DET and 4-HO-MET might cause adverse effects on the cardiovascular system. Further studies are required to confirm the relationship between PAK1 expression and cardiotoxicity. The findings of the present study would provide science-based evidence for scheduling the two NPSs.

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