PEX19基因敲除HEK293细胞

PEX19基因敲除HEK293细胞
货号:

EDJ-KQ5611

物种:

细胞名称:

HEK293

基因名称:

PEX19

基因ID:

5824

规格:

1×10⁶cells

PEX19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-KQ5611
产品名称 PEX19 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 PEX19
基因ID
基因别名 D1S2223E|HK33|PBD12A|PMP1|PMPI|PXF|PXMP1
摘要
This gene is necessary for early peroxisomal biogenesis. It acts both as a cytosolic chaperone and as an import receptor for peroxisomal membrane proteins (PMPs). Peroxins (PEXs) are proteins that are essential for the assembly of functional peroxisomes. The peroxisome biogenesis disorders (PBDs) are a group of genetically heterogeneous autosomal recessive, lethal diseases characterized by multiple defects in peroxisome function. These disorders have at least 14 complementation groups, with more than one phenotype being observed for some complementation groups. Although the clinical features of PBD patients vary, cells from all PBD patients exhibit a defect in the import of one or more classes of peroxisomal matrix proteins into the organelle. Defects in this gene are a cause of Zellweger syndrome (ZWS), as well as peroxisome biogenesis disorder complementation group 14 (PBD-CG14), which is also known as PBD-CGJ. Alternative splicing results in multiple transcript variants. [provided by RefSeq, Aug 2010]
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=3.8
Journal of virology
Peroxisomes are vital cellular organelles that play critical roles in metabolism, immune regulation, and disease pathogenesis. As a key receptor for peroxisomal membrane proteins, peroxisomal biogenesis factor 19 (PEX19) is essential for peroxisome biogenesis. In this study, we identify PEX19 as a novel host restriction factor against porcine deltacoronavirus (PDCoV), an emerging enteropathogenic coronavirus with zoonotic potential. Overexpression of PEX19 significantly inhibits PDCoV replication, while knockout of PEX19 enhances viral propagation. Interestingly, the anti-PDCoV effect of PEX19 largely depends on its farnesylation modification, as PEX19 mutants with deleted or mutated farnesylation sites exhibit only marginal anti-PDCoV activity. Mechanistically, PEX19 restricts PDCoV infection through three distinct pathways: (i) reducing cellular cholesterol levels in a farnesylation-dependent manner, (ii) targeting the viral nonstructural protein 2 (nsp2) for autophagy-lysosome-mediated degradation, which is also dependent on farnesylation, and (iii) inducing low-level interferon production independently of farnesylation. Taken together, these findings define a new antiviral role for PEX19 and highlight its potential as a therapeutic target for combating PDCoV infection.IMPORTANCEPeroxisomes are increasingly recognized as critical regulators of virus-host interactions; however, their roles during coronavirus infection remain poorly understood and controversial. By screening the peroxins (PEXs) that regulate the replication of porcine deltacoronavirus (PDCoV), we identify PEX19, a key peroxisomal biogenesis factor, as a novel antiviral host protein, whose anti-PDCoV activity is largely dependent on farnesylation modification. Our findings demonstrate that farnesylated PEX19 restricts PDCoV replication by reducing cellular cholesterol levels and promoting autophagy-lysosome-mediated degradation of the viral nsp2 protein, while also inducing low-level interferon production independently of farnesylation. These results provide new molecular insights into PDCoV-host interactions and highlight PEX19 as a potential therapeutic target against PDCoV infection.
该敲除模型可用于: - 研究猪δ冠状病毒复制中的宿主因子。 - 研究法尼基化依赖和非依赖的抗病毒机制。 - 阐明PEX19介导的过氧化物酶体生物发生在病毒感染中的作用。 - 筛选靶向PEX19相关途径的抗病毒化合物。 - 探索过氧化物酶体在先天免疫信号传导中的作用。

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