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Rescue of loss-of-function long QT syndrome-associated mutations in K<sub>V</sub>7.1/KCNE1 by the endocannabinoid N-arachidonoyl-L-serine (ARA-S)
Linköping University, Department of Biomedical and Clinical Sciences, The Division of Cell and Neurobiology. Linköping University, Faculty of Medicine and Health Sciences.
Linköping University, Department of Biomedical and Clinical Sciences, The Division of Cell and Neurobiology. Linköping University, Faculty of Medicine and Health Sciences.
Univ Bern, Switzerland.
Linköping University, Department of Biomedical and Clinical Sciences, The Division of Cell and Neurobiology. Linköping University, Faculty of Medicine and Health Sciences.
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2025 (English)In: British Journal of Pharmacology, ISSN 0007-1188, E-ISSN 1476-5381, Vol. 182, no 13, p. 2861-2877Article in journal (Refereed) Published
Abstract [en]

Background and PurposeCongenital long QT syndrome (LQTS) involves genetic mutations affecting ion channels, leading to a prolonged QT interval and increased risk of potentially lethal ventricular arrhythmias. Mutations in the genes encoding KV7.1/KCNE1 are the most frequent, with channel loss-of-function contributing to LQTS. The endocannabinoid N-arachidonoyl-L-serine (ARA-S) has been shown to facilitate activation of wild type KV7.1/KCNE1 channels and to counteract a prolonged QT interval in isolated guinea pig hearts. In this study, we examine the ability of ARA-S to facilitate activation of LQTS-associated mutations, in various regions of the channel, and hence to counteract loss-of-function.Experimental ApproachThe two-electrode voltage clamp technique on Xenopus oocytes expressing human KV7.1/KCNE1 channels was used to investigate the effects of ARA-S in 20 LQTS type 1-associated mutations distributed across the channel. Thereafter, different electrophysiology was used to assess ARA-S effects in mammalian cells.Key ResultsARA-S enhanced the function of all mutated channels by shifting V50 and increasing current amplitude. However, the magnitude of effect varied, related to whether mutations were in one of the two putative ARA-S binding sites on the channel as suggested by molecular dynamics simulations. ARA-S displayed translational potential by facilitating channel opening in mammalian cells and shortening the action potential duration in cardiomyocytes.Conclusions and ImplicationsThis study demonstrates the rescuing capability of ARA-S on a diverse set of LQTS mutants. These insights may aid in developing drug compounds using ARA-S sites and mechanisms and guide interpretation of which LQTS mutants respond well to such compounds.

Place, publisher, year, edition, pages
WILEY , 2025. Vol. 182, no 13, p. 2861-2877
Keywords [en]
arrhythmia; electrophysiology; KCNQ1; Kv7; molecular dynamics
National Category
Immunology in the Medical Area
Identifiers
URN: urn:nbn:se:liu:diva-212543DOI: 10.1111/bph.70008ISI: 001444401500001PubMedID: 40083204Scopus ID: 2-s2.0-105000424385OAI: oai:DiVA.org:liu-212543DiVA, id: diva2:1947270
Note

Funding Agencies|European Research Council (ERC) under the European Union [850622]; Konung Gustaf; Drottning Victorias Stiftelse; Swedish Research Council [2022-00844]; National Institutes of Health, National Heart, Lung, and Blood Institute [2R01HL131461-05]; Bern Center of Precision Medicine Lighthouse Grant 'PACE'; National Academic Infrastructure for Supercomputing in Sweden (NAISS) [2023/1-3, 2023/3-35]

Available from: 2025-03-25 Created: 2025-03-25 Last updated: 2026-04-14
In thesis
1. Modulation of the cardiac Kv7.1/KCNE1 channel by endocannabinoids and derivatives in the context of Long QT Syndrome
Open this publication in new window or tab >>Modulation of the cardiac Kv7.1/KCNE1 channel by endocannabinoids and derivatives in the context of Long QT Syndrome
2025 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Long QT Syndrome (LQTS) is a life-threatening cardiac channelopathy primarily caused by mutations in the KCNQ1 gene, leading to dysfunction of the KV7.1/KCNE1 channel complex, essential for proper repolarization of the ventricular action potential. These mutations predispose individuals to prolonged QT intervals and increased risk of arrhythmia. Despite current treatment options, such as β-blockers, these therapies do not address the root cause of the disease, and up to 30% of individuals remain at risk for cardiac events. Moreover, the clinical phenotypes of genotype-positive patients vary considerably, suggesting that factors beyond the primary mutation play a significant role. One possible explanation is the presence of endogenous compounds that modulate the KV7.1/KCNE1 channel.

This thesis investigates the potential role of endocannabinoid compounds, which have emerged as key players in cardiovascular function, in modulating the KV7.1/KCNE1 channel. The primary technique employed in this thesis is the Two-electrode voltage clamp (TEVC) performed in Xenopus laevis oocytes expressing wild-type or mutated KV7.1/KCNE1 channels. Complementary Molecular Dynamic simulations were conducted to further explore the mechanism of action of these compounds. In addition, other electrophysiological techniques, including Automated and Manual Patch-clamp and Langendorff experiments, were used to assess the translational potential of these compounds in more complex systems.

We demonstrated that endocannabinoids with a Serine head group, which are negatively charged at physiological pH, facilitate the activation of wild-type KV7.1/KCNE1 by interacting with KV7.1 at two distinct sites, resulting in a shift in voltage dependence to a negative direction along the voltage axis, and increase of maximal conductance. Furthermore, we showed that the endocannabinoid N-arachidonoyl-L-Serine (ARA-S) effectively activates a broad range of LQTS-associated KV7.1 mutants, even when its primary binding site is altered, with varying concentrations required to restore mutant channels to a wild-type-like behavior. The translational relevance of these findings is highlighted by the maintained effects of ARA-S in KV7.1/KCNE1 when expressed in mammalian cell lines and by shortening of the action potential duration in LQTS rabbit cardiomyocytes and a drug-induced LQTS model of isolated guinea pig hearts. Moreover, the development of synthetic endocannabinoids with structural tail modifications demonstrated potential for identifying novel activators of KV7.1/KCNE1.

These findings highlight endocannabinoids as potential protective factors in LQTS, opening new possibilities for clinical management and therapeutic development.  

Place, publisher, year, edition, pages
Linköping: Linköping University Electronic Press, 2025. p. 75
Series
Linköping University Medical Dissertations, ISSN 0345-0082 ; 1973
Keywords
Arrhythmia, Electrophysiology, Endocannabinoids, KV7.1, Long QT Syndrome
National Category
Neurosciences
Identifiers
urn:nbn:se:liu:diva-212646 (URN)10.3384/9789181180343 (DOI)9789181180336 (ISBN)9789181180343 (ISBN)
Public defence
2025-04-30, Belladona, building 511, Campus US, Linköping, 09:00 (English)
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Supervisors
Available from: 2025-03-28 Created: 2025-03-28 Last updated: 2025-03-28Bibliographically approved

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