LDHA基因敲除HCT116细胞
货号:
EDJ-KQ21154
物种:
人
细胞名称:
HCT 116
基因名称:
LDHA
基因ID:
3939
规格:
1×10⁶ cells
LDHA基因敲除细胞HCT116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-KQ21154 |
|---|---|
| 细胞 | HCT116 |
| Cellosaurus ID | CVCL_0291 |
| 细胞别名 | HCT-116, HCT.116, HCT_116, HCT116, HCT116wt, HCT-116/P, HCT-116/parental, CoCL2 |
| 基因 | LDHA |
| 基因ID | |
| 基因别名 | GSD11|HEL-S-133P|LDHM|PIG19 |
| 摘要 |
This gene encodes the A subunit of lactate dehydrogenase enzyme which catalyzes the reversible conversion of pyruvate to lactate with the concomitant oxidation of NADH to NAD in anaerobic glycolysis. The protein is found predominantly in skeletal muscle and belongs to the lactate dehydrogenase family. Mutations in this gene have been linked to exertional myoglobinuria. The human genome contains several non-transcribed pseudogenes of this gene. [provided by RefSeq, Sep 2023]
|
| 癌症类型 | Colorectal Carcinoma |
| 细胞形态 | Adherent |
| 传代比率 | 1/5-1/4,2days |
| 完全培养基 | mcCoy5A+10% FBS |
| 冻存培养基 | 90% FBS/完培+10% 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: HCT 116 | 细胞库细胞STR信息 细胞库细胞名: HCT 116 | ||||||
| Allele1 | Allele2 | Allele3 | Allele4 | Allele1 | Allele2 | Allele3 | Allele4 | |
| Amelogenin | X | X | ||||||
| CSF1PO | 7 | 10 | 7 | 9 | 10 | 11 | ||
| D2S1338 | 16 | 16 | ||||||
| D3S1358 | 12 | 17 | 18 | 19 | 12 | 18 | 19 | |
| D5S818 | 10 | 11 | 10 | 11 | ||||
| D7S820 | 11 | 12 | 11 | 12 | ||||
| D8S1179 | 10 | 12 | 14 | 15 | 10 | 12 | 14 | 15 |
| D13S317 | 10 | 12 | 10 | 12 | ||||
| D16S539 | 11 | 13 | 11 | 12 | 13 | 14 | ||
| D18S51 | 16 | 17 | 16 | 17 | ||||
| D19S433 | 12 | 13 | 12 | |||||
| D21S11 | 29 | 30 | 29 | 30 | ||||
| FGA | 18 | 23 | 18 | 23 | ||||
| Penta D | 9 | 13 | 9 | 13 | ||||
| Penta E | 12 | 13 | 14 | 12 | 13 | 14 | ||
| TH01 | 8 | 9 | 8 | 9 | ||||
| TPOX | 8 | 8 | ||||||
| vWA | 17 | 21 | 22 | 23 | 17 | 21 | 22 | 23 |
| D6S1043 | 13 | |||||||
| D12S391 | 17 | 21 | 22 | |||||
| D2S441 | 11 | 12 | ||||||
* 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
P53——缺氧条件下结直肠癌细胞代谢适应中的新参与者。
IF=3.4
BMC cancer
BACKGROUND:Colorectal cancer (CRC) frequently exhibits hypoxic regions due to poor vascularization, leading to the stabilization of hypoxia-inducible factor 1 alpha (HIF-1α). Moreover, mutations in the tumour suppressor p53 occur in approximately half of all CRCs. While the individual roles of both transcription factors in tumour cell survival are well characterized, their interaction and its influence on the metabolic adaptation of CRC cells under hypoxic stress remain unclear. METHODS:Using HCT116 CRC cells with targeted deletions of TP53 and HIF1A, we examined the effects of p53 loss on HIF-1 signalling and the respective consequences for metabolic adaptation as well as the survival of CRC cells under moderate (1% O₂) and severe (0.1% O₂) hypoxia. RESULTS:Severe hypoxia stabilized p53 protein levels despite the transcriptional repression of TP53, possibly through posttranslational mechanisms and dependent on nutrient availability. In contrast to the assumption that p53 is transcriptionally inactive under hypoxia, we observed stable expression of p53 target genes (P21, BAX) under severe hypoxia, indicating functional transactivation. Loss of p53 impaired the early induction of HIF-1 target genes (VEGF, PHD2), although HIF-1α protein levels and DNA binding were unaffected, suggesting a coactivator role for p53. Furthermore, compared with wild-type cells, p53-deficient cells presented delayed but exaggerated expression of glycolytic genes, including Glucose Uptake Transporter 1 (GLUT1), Phosphofructokinase Liver-Type (PFKL) and Lactate Dehydrogenase A (LDHA), under hypoxia, with no impairment of glycolytic function or cell viability. Remarkably, even HIF1A knockout cells preserved glycolysis, whereas glycolytic genes were significantly downregulated, indicating HIF-1-independent metabolic compensation. CONCLUSION:Our findings position p53 as a temporal gatekeeper and key regulator of hypoxic adaptation in CRC cells, coordinating early gene induction and metabolic responses. The ability of CRC cells to maintain glycolysis despite the loss of p53, respectively, HIF-1α underscores the existence of compensatory HIF-independent pathways. Targeting these alternative circuits may represent a promising strategy in hypoxic, p53-deficient CRC.
该敲除模型可用于:
- 研究缺氧条件下LDHA在代谢适应中的作用。
- 研究结直肠癌中p53信号与糖酵解之间的相互作用。
- 评估LDHA缺失对缺氧诱导的代谢重编程的影响。
- 验证LDHA作为癌症代谢研究中的靶点。
- 探索结直肠癌细胞中p53依赖性的代谢脆弱性。