SCN5A基因敲除HEK293细胞

SCN5A基因敲除HEK293细胞
货号:

EDJ-KQ4969

物种:

细胞名称:

HEK293

基因名称:

SCN5A

基因ID:

6331

规格:

1×10⁶cells

SCN5A基因敲除细胞HEK293是由艾迪基因优化的CRISPR/Cas9编辑而成,采用Sanger测序法验证敲除,保证单克隆,活性良好。
货号 EDJ-KQ4969
产品名称 SCN5A Knockout HEK293 Cell Line
细胞 HEK293
Cellosaurus ID CVCL_0045
细胞别名 Hek293, HEK-293, HEK/293, (HEK)293, HEK 293, HEK,293, 293, 293 HEK, 293 Ad5, Graham 293, Graham-293, Human Embryonic Kidney 293
基因 SCN5A
基因ID
基因别名 CDCD2|CMD1E|CMPD2|HB1|HB2|HBBD|HH1|ICCD|IVF|LQT3|Nav1.5|PFHB1|SSS1|VF1
摘要
The protein encoded by this gene is an integral membrane protein and tetrodotoxin-resistant voltage-gated sodium channel subunit. This protein is found primarily in cardiac muscle and is responsible for the initial upstroke of the action potential in an electrocardiogram. Defects in this gene have been associated with long QT syndrome type 3 (LQT3), atrial fibrillation, cardiomyopathy, and Brugada syndrome 1, all autosomal dominant cardiac diseases. Alternative splicing results in several transcript variants encoding different isoforms. [provided by RefSeq, May 2022]
癌症类型 Non-tumor
细胞形态 Adherent
传代比率 1/2~1/4
完全培养基 DMEM + 10% FBS
冻存培养基 95%完全培养基+ 5% DMSO
* 仅供科研使用,不适用于人体或动物,包括临床、治疗或诊断用途。
Loci送检细胞STR信息
送检细胞名: HEK293
细胞库细胞STR信息
细胞库细胞名: HEK293
Allele1Allele2Allele1 Allele2
AmelogeninXX
CSF1P0121112
D2S13381919
D3S135815171517
D5S818889
D7S82011121112
D8S117912141214
D13S31712141214
D16S539913913
D18S5117181718
D19S43315181518
D21S112830.22830.2
FGA2323
Penta D910910
Penta E715715
TH0179.379.3
TPOX1111
vWA16191619
D6S10431111
D12S39119211115
D2S44111151115
* 该细胞系与收录于ATCC, DSMZ, JCRB 和 RIKEN数据库的细胞系STR数据匹配。
结论:该细胞 STR 鉴定正确。
* 研究用途免责声明:本内容基于公开的研究数据、生物信息学资源及计算分析生成,仅供研究参考。

相关研究文献

IF=13.6
The Journal of clinical investigation
Fibroblast growth factor homologous factors (FHFs) bind to the cytoplasmic C-terminus of voltage-gated sodium channels (VGSCs) and modulate channel function. Variants in FHFs or VGSCs perturbing that bimolecular interaction are associated with arrhythmias. Like some channel auxiliary subunits, FHFs exert additional cellular regulatory roles, but whether these alternative roles affect VGSC regulation is unknown. Using a separation-of-function strategy, we show that a structurally guided, binding-incompetent, mutant fibroblast growth factor 13 (FGF13; the major FHF in mouse heart), confers complete regulation of VGSC steady-state inactivation (SSI), the canonical effect of FHFs. In cardiomyocytes isolated from Fgf13-KO mice, expression of the mutant FGF13 completely restores WT regulation of SSI. FGF13 regulation of SSI derives from effects on local accessible membrane cholesterol, which is unexpectedly polarized and concentrated in cardiomyocytes at the intercalated disc (ID), where most VGSCs localize. Fgf13-KO eliminates the polarized cholesterol distribution and causes loss of VGSCs from the ID. Moreover, we show that the previously described FGF13-dependent stabilization of VGSC currents at elevated temperatures depends on the cholesterol mechanism. These results provide new insights into how FHFs affect VGSCs and alter the canonical model by which channel auxiliary subunits exert influence.
IF=13.3
Cardiovascular research
AIMS:SCN5A encodes cardiac sodium channel Nav1.5 that maintains normal electrophysiological functions of hearts. Loss-of-function variants of Nav1.5 reduce sodium current densities (INa) and cause arrhythmias such as cardiac conduction block or Brugada syndrome. The regulatory mechanisms of Nav1.5 functions are not fully understood. The aim of this study was to identify novel proteins that interact with Nav1.5 and characterize their regulatory mechanisms on Nav1.5 and arrhythmias. METHODS AND RESULTS:GST pull-down coupled with mass spectrometry, co-immunoprecipitation, and mutational analysis were used to identify de-ubiquitinating enzyme USP10 as a novel Nav1.5-interacting protein, and showed that USP10 reduces Nav1.5 protein expression and INa densities in vitro. AAV9-mediated cardiac overexpression of USP10 in mice reduced Nav1.5 protein expression, INa and ICa-L densities, shortened APD, and caused delayed ventricular activation, spontaneous atrioventricular conduction block, sinus pause, and ventricular tachycardia induced with electrical pacing. Cardiac knockdown of USP10 in Scn5a+/- mice restored Nav1.5, INa, and ICa-L to levels comparable to wild-type mice, and alleviated the conduction delay and premature ventricular contractions. Mechanistically, USP10 increased Nav1.5 protein degradation through chaperone-mediated autophagy (CMA) as the effect was blocked by lysosome inhibitor CQ and inhibition of CMA using siRNA targeting LAMP2A or HSC70, but not by proteasomal inhibitor MG132. Mutational analysis identified the key CMA degradation motif of Nav1.5 as EKRFQ431-435. USP10 decreased Nav1.5 ubiquitination and increased binding of Nav1.5 to HSC70. Mutational analysis identified K430 of Nav1.5 as the USP10 de-ubiquitination site, and K430R mutation blocked regulation of Nav1.5 by USP10. CONCLUSION:We identified a novel CMA-mediated pathway regulating degradation of Nav1.5 by coupling with USP10-mediated de-ubiquitination at K430 of Nav1.5, which resulted in reduced INa densities and cardiac conduction defects. Knockdown of USP10 alleviated arrhythmias in Scn5a+/- mice, providing a novel therapeutic strategy for treating arrhythmias with reduced INa.
该敲除模型可用于: - 研究心脏钠通道降解机制,包括泛素化和分子伴侣介导的自噬途径。 - 研究SCN5A/NaV1.5在心律失常发病机制中的作用。 - 探索辅助亚基(如FGF13)和膜胆固醇调节对离子通道的调控。 - 验证影响NaV1.5稳定性的翻译后修饰和蛋白-蛋白相互作用。 - 筛选靶向NaV1.5相关心脏电生理和通道病的化合物。

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