KDM5C基因敲除HEK293细胞
货号:
EDJ-KQ2967
物种:
人
细胞名称:
HEK293
基因名称:
KDM5C
基因ID:
8242
规格:
1×10⁶cells
KDM5C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-KQ2967 |
|---|---|
| 产品名称 | KDM5C 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 | KDM5C |
| 基因ID | |
| 基因别名 | DXS1272E|JARID1C|MRX13|MRXJ|MRXS16|MRXSCJ|MRXSJ|SMCX|XE169 |
| 摘要 |
This gene is a member of the SMCY homolog family and encodes a protein with one ARID domain, one JmjC domain, one JmjN domain and two PHD-type zinc fingers. The DNA-binding motifs suggest this protein is involved in the regulation of transcription and chromatin remodeling. Mutations in this gene have been associated with X-linked cognitive disability. Alternative splicing results in multiple transcript variants. [provided by RefSeq, Apr 2009]
|
| 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 | ||
| Allele1 | Allele2 | Allele1 | Allele2 | |
| Amelogenin | X | X | ||
| CSF1P0 | 12 | 11 | 12 | |
| D2S1338 | 19 | 19 | ||
| D3S1358 | 15 | 17 | 15 | 17 |
| D5S818 | 8 | 8 | 9 | |
| D7S820 | 11 | 12 | 11 | 12 |
| D8S1179 | 12 | 14 | 12 | 14 |
| D13S317 | 12 | 14 | 12 | 14 |
| D16S539 | 9 | 13 | 9 | 13 |
| D18S51 | 17 | 18 | 17 | 18 |
| D19S433 | 15 | 18 | 15 | 18 |
| D21S11 | 28 | 30.2 | 28 | 30.2 |
| FGA | 23 | 23 | ||
| Penta D | 9 | 10 | 9 | 10 |
| Penta E | 7 | 15 | 7 | 15 |
| TH01 | 7 | 9.3 | 7 | 9.3 |
| TPOX | 11 | 11 | ||
| vWA | 16 | 19 | 16 | 19 |
| D6S1043 | 11 | 11 | ||
| D12S391 | 19 | 21 | 11 | 15 |
| D2S441 | 11 | 15 | 11 | 15 |
* 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。
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
KDM5C、KDM6A 和 KMT2B 在癌症表观遗传失调和转录重编程中作用的多组学阐明。
IF=5.1
Communications biology
Histone-modifying enzymes (HMEs) are critical regulators of tumorigenesis through epigenetic reprogramming. While mutations in HMEs are recognized drivers of cancer epigenome dysregulation, systematic comparative analyses of their mutational impacts and functional divergence across malignancies remain underexplored. Here, we investigated three HMEs frequently mutated in diverse cancers: KMT2B (H3K4me3 methyltransferase), KDM5C (H3K4me3 demethylase), and KDM6A (H3K27me3 demethylase). Using CRISPR/Cas9-engineered HEK293T knockout cell lines, we performed integrated multi-omics profiling that combined genome-wide chromatin accessibility, transcriptomics, and chromatin-bound proteomics. Contrary to expectations that KMT2B loss (H3K4me3 depletion) and KDM5C loss (H3K4me3 accumulation) would induce opposing transcriptional programs, or that KDM6A deficiency (H3K27me3 accumulation) would exhibit distinct regulatory effects, our analyses revealed distinct effect of all three HME modulations in terms of both transcriptional output and chromatin-associated proteomic state. Functionally, KDM5C loss upregulated FOXF2 and downregulated KLF5, implicating the dysregulation of G protein-coupled receptor pathways; KDM6A loss upregulated JUNB and downregulated TP73, affecting extracellular matrix regulation; and KMT2B loss upregulated JUN and downregulated HOXA10, impacting on cytokine signaling. Notably, transcription factors such as PATZ1 and GATA2 were commonly altered across knockouts. In PANC-1 pancreatic cancer cells, we further confirmed that KDM6A regulates CDH family genes controlling cell adhesion, thereby promoting migration and invasion. Finally, integrative analyzes demonstrated strong correlations between promoter accessibility, transcription factor occupancy, and gene expression, and uncovered cooperation between epigenetic and genetic drivers. Together, these findings reveal context-dependent functional hierarchies among HMEs and underscore the necessity of multi-layered analyses to resolve the complexity of epigenetic regulation in cancer.
该敲除模型可用于:
- 研究通过 FOXF2 上调和 KLF5 下调导致的 G 蛋白偶联受体通路失调
- 研究与 H3K4me3 去甲基化酶缺失相关的转录重编程在癌症表观遗传学中的作用
- 分析染色质可及性和转录因子占位(如 PATZ1、GATA2)在表观遗传调控中的作用
- 探索恶性肿瘤中组蛋白修饰酶之间的上下文依赖性功能层级
- 通过整合多组学分析研究表观遗传驱动因子与遗传驱动因子之间的合作