HAVCR1基因敲除HEK293细胞

HAVCR1基因敲除HEK293细胞
货号:

EDJ-KQ17753

物种:

细胞名称:

HEK293

基因名称:

HAVCR1

基因ID:

26762

规格:

1×10⁶cells

HAVCR1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。
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
摘要
The protein encoded by this gene is a membrane receptor for both human hepatitis A virus (HHAV) and TIMD4. The encoded protein may be involved in the moderation of asthma and allergic diseases. The reference genome represents an allele that retains a MTTVP amino acid segment that confers protection against atopy in HHAV seropositive individuals. The protein is a receptor for multiple other viruses, including Ebola virus, Marburg virus, Dengue virus, and Zika virus and is a possible entry factor for SARS-CoV-2 and other coronaviruses. [provided by RefSeq, Sep 2021]
癌症类型 Non-tumor
* 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=19.8
Cellular & molecular immunology
T-cell immunoglobulin mucin family member-1 (TIM-1, also known as HAVCR1/KIM-1) is a transmembrane glycoprotein that has been reported to act as an entry receptor for multiple flaviviruses including Zika virus (ZIKV). The post-translational regulation of TIM-1 and its effects on ZIKV infection are unclear. In this study, we identified the membrane-associated RING-CH-type finger (MARCH) E3 ubiquitin ligase family members MARCH2 and MARCH3 as critical negative regulators of TIM-1 under physiological conditions. MARCH2 and MARCH3 associate with TIM-1 and mediate its K48-linked polyubiquitination at K338 and K346 respectively, leading to subsequent proteasomal degradation. While deficiency of either MARCH2 or MARCH3 modestly increases TIM-1 levels and enhances ZIKV infectivity, double knockout of MARCH2/3 has a more dramatic effect. Double knockout of MARCH2/3 increased ZIKV infectivity in wild-type but not TIM-1 knockout cells, and reconstitution of TIM-1 into TIM-1-deficient cells increases ZIKV infectivity to a higher degree than reconstitution with wild-type TIM-1. Knockout of either MARCH2 or MARCH3 increased ZIKV infectivity and pathogenesis in mice, whereas double knockout of MARCH2/3 has a more dramatic effect. These findings suggest that MARCH2 and MARCH3 target TIM-1 for K48-linked polyubiquitination and proteasomal degradation, thereby acting as redundant host restriction factors to limit ZIKV infection and pathogenesis.
IF=5.6
Biosensors
Orthoflaviviruses cause a major threat to global public health, and no antiviral treatment is available yet. Zika virus (ZIKV) entry, together with many other viruses, is known to be enhanced by phosphatidylserine (PS) receptors such as T-cell immunoglobulin mucin domain protein 1 (TIM-1). In this study, we demonstrate for the first time, using cell-based electrical impedance (CEI) biosensing, that ZIKV entry is also enhanced by expression of CD300a, another PS receptor. Furthermore, inhibiting CD300a in immature monocyte-derived dendritic cells partially but significantly inhibits ZIKV replication. As we have previously demonstrated that CEI is a useful tool to study Orthoflavivirus infection in real time, we now use this technology to determine how these PS receptors influence the kinetics of in vitro ZIKV infection. Results show that ZIKV entry is highly sensitive to minor changes in TIM-1 expression, both after overexpression of TIM-1 in infection-resistant HEK293T cells, as well as after partial knockout of TIM-1 in susceptible A549 cells. These results are confirmed by quantification of viral copy number and viral infectivity, demonstrating that CEI is highly suited to study and compare virus-host interactions. Overall, the results presented here demonstrate the potential of targeting this universal viral entry pathway.
IF=3.8
Journal of virology
T-cell immunoglobin and mucin domain protein-1 (TIM-1) mediates entry of chikungunya virus (CHIKV) into some mammalian cells through the interaction with envelope phospholipids. While this interaction enhances entry, TIM-1 has been shown to tether newly formed HIV and Ebola virus particles, limiting their efficient release. In this study, we investigate the ability of surface receptors such as TIM-1 to sequester newly budded virions on the surface of infected cells. We established a luminescence reporter system to produce chikungunya viral particles that integrate nano-luciferase and easily quantify viral particles. We found that TIM-1 on the surface of host cells significantly reduced CHIKV release efficiency in comparison to other entry factors. Removal of cell surface TIM-1 through direct cellular knock-out or altering the cellular lipid distribution enhanced CHIKV release. Over the course of infection, CHIKV was able to counteract the tethering effect by gradually decreasing the surface levels of TIM-1 in a process mediated by the nonstructural protein 2. This study highlights the importance of phosphatidylserine receptors in mediating not only the entry of CHIKV but also its release and could aid in developing cell lines capable of enhanced vaccine production. IMPORTANCE:Chikungunya virus (CHIKV) is an enveloped alphavirus transmitted by the bites of infectious mosquitoes. Infection with CHIKV results in the development of fever, joint pain, and arthralgia that can become chronic and last for months after infection. Prevention of this disease is still highly focused on vector control strategies. In December 2023, a new live attenuated vaccine against CHIKV was approved by the FDA. We aimed to study the cellular factors involved in CHIKV release, to better understand CHIKV's ability to efficiently infect and spread among a wide variety of cell lines. We found that TIM-1 receptors can significantly abrogate CHIKV's ability to efficiently exit infected cells. This information can be beneficial for maximizing viral particle production in laboratory settings and during vaccine manufacturing.
该敲除模型可用于: - 研究TIM-1在病毒进入和限制机制中的作用,特别是寨卡和基孔肯雅病毒。 - 研究涉及磷脂酰丝氨酸介导的病毒结合和释放的宿主-病毒相互作用。 - 表征膜相关泛素连接酶在调节TIM-1表面表达中的功能。 - 使用细胞电阻抗试验评估病毒感染动态。 - 筛选靶向TIM-1依赖性感染途径的抗病毒化合物。

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