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Rififylin (RFFL), a Novel Regulator of Transient Outward ( I to ) Potassium Channels

Title: Rififylin (RFFL), a Novel Regulator of Transient Outward ( I to ) Potassium Channels
Authors: Roder, Karim; Kabakov, Anatoli; Moshal, Karni S; Xie, An; Turan, Nilüfer N; Lu, Yichun; Koren, Gideon
Contributors: National Heart, Lung, and Blood Institute
Source: The FASEB Journal ; volume 33, issue S1 ; ISSN 0892-6638 1530-6860
Publisher Information: Wiley
Publication Year: 2019
Collection: Wiley Online Library (Open Access Articles via Crossref)
Description: The expression of sarcolemmal ion channels is a net result of the rate of coordinated biosynthesis, proper folding, forward trafficking, recycling, and degradation. The importance of these processes was highlighted by several genome‐wide association studies that reported novel loci that modify the QT interval and are located in or near genes involved in protein trafficking and degradation (Roder et al ., 2014; Roder et al . 2018). One of the genes identified, the ring finger and FYVE‐like domain containing E3 ubiquitin protein ligase rififylin (RFFL), has also been shown to regulate cardiac excitation and growth in a congenic rat strain (Gopalakrishnan et al . 2011). As transient outward K + currents ( I to ) are essential during the whole repolarization phase of the action potential in rodents, we hypothesized that RFFL could regulate cardiac excitation through I to ‐encoding channels. Adult rabbit cardiomyocytes with adenovirus‐expressed RFFL exhibited reduced I to,f . In HEK cells, transient RFFL overexpression caused polyubiquitination and downregulation of total and surface levels of Kv4.2 and Kv4.3 as well as the corresponding current I to,f . In contrast, in transiently co‐transfected HEK cells, overexpressed RFFL monoubiquitinated and upregulated total and membrane levels of Kv1.4 and the corresponding current I to,s in a RING domain‐dependent manner. We conclude that RFFL, through its interactions with and ubiquitination of I to ‐encoding channels Kv4.2, Kv4.3 and Kv1.4 regulate their forward trafficking and degradation, which may affect cardiac action potential shape and duration. Support or Funding Information NHLBI grant 5R01HL134706‐02 (GK). This abstract is from the Experimental Biology 2019 Meeting. There is no full text article associated with this abstract published in The FASEB Journal .
Document Type: article in journal/newspaper
Language: English
DOI: 10.1096/fasebj.2019.33.1_supplement.824.18
Availability: http://dx.doi.org/10.1096/fasebj.2019.33.1_supplement.824.18
Rights: http://onlinelibrary.wiley.com/termsAndConditions#vor
Accession Number: edsbas.B4674FFB
Database: BASE