Hkdc1-flox Mouse
一般名
Hkdc1-flox
製品ID
S-CKO-05955
背景情報
C57BL/6JCya
系統ID
CKOCMP-216019-Hkdc1-B6J-VA
状況
このマウス系統を論文で使用する場合は、「Hkdc1-flox Mouse(カタログ番号S-CKO-05955)はサイアジェンから購入しました。」と引用してください。
製品タイプ
年齢
遺伝子型
性別
数量
標準的な配送方法では、少なくとも3匹のヘテロ接合体キャリアを保証しています。ホモ接合体キャリアや指定された性別の個体の繁殖サービスも利用可能です。
基本情報
系統名
Hkdc1-flox
系統ID
CKOCMP-216019-Hkdc1-B6J-VA
遺伝子名
製品ID
S-CKO-05955
遺伝子別名
--
遺伝子別名
C57BL/6JCya
NCBI ID
修正
Conditional knockout
染色体
Chr 10
表現型
アプリケーション
--
さらに
系統詳細
EnsemblトランスクリプトID
ENSMUST00000020277
NCBIトランスクリプトID
NM_145419
ターゲット領域
Exon 2
有効領域の大きさ
~0.8 kb
遺伝子研究の概要
HKDC1, or hexokinase domain component 1, is an important protein with functions in multiple biological processes. It is involved in glucose metabolism, lipid homeostasis, and has been associated with pathways related to cell proliferation, metastasis, and immune evasion. HKDC1 is also known to interact with various proteins and RNAs, playing a role in the regulation of gene expression and metabolism [1-10]. Genetic models, such as gene knockout (KO) or conditional knockout (CKO) mouse models, can be valuable in further understanding its functions.
In gastric cancer, HKDC1 enhances invasion, migration, and cisplatin resistance by reprogramming lipid metabolism. It forms a ribonucleoprotein complex with G3BP1 to stabilize PRKDC transcript [1]. In hepatocellular carcinoma, HKDC1 promotes tumor immune evasion in a CD8+ T cell-dependent manner by activating STAT1/PD-L1 [2]. In pancreatic adenocarcinoma, HKDC1 promotes autophagy and cell proliferation through interaction with PARP1 and poly(ADP-ribosyl)ation [6]. In liver cancer, HKDC1 promotes stemness under hypoxia by stabilizing β-catenin [3]. In gastric cancer, silencing HKDC1 inhibits cell proliferation and glycolysis [5]. Also, HKDC1 upregulation promotes glycolysis, disease progression, and chemoresistance in gastric cancer [4]. In intrahepatic cholangiocarcinoma, HKDC1 is identified as a potential prognostic biomarker associated with metabolic reprogramming [7]. In the liver, HKDC1 expression contributes to liver metabolism, and its overexpression causes mitochondrial dysfunction in hepatocytes [8].
In conclusion, HKDC1 plays essential roles in various biological processes and disease conditions. Model-based research, especially KO/CKO mouse models, has revealed its significance in cancer metastasis, immune evasion, autophagy, cell proliferation, and metabolic regulation. These findings suggest that HKDC1 could be a potential therapeutic target for cancers and liver-related metabolic diseases.
References:
1. Zhao, Ping, Yuan, Fei, Xu, Lijuan, Wang, Chaofu, Zhang, Guoxin. 2023. HKDC1 reprograms lipid metabolism to enhance gastric cancer metastasis and cisplatin resistance via forming a ribonucleoprotein complex. In Cancer letters, 569, 216305. doi:10.1016/j.canlet.2023.216305. https://pubmed.ncbi.nlm.nih.gov/37423558/
2. Zhang, Yi, Wang, Mingjie, Ye, Ling, Zhong, Xiuying, Gao, Ping. 2024. HKDC1 promotes tumor immune evasion in hepatocellular carcinoma by coupling cytoskeleton to STAT1 activation and PD-L1 expression. In Nature communications, 15, 1314. doi:10.1038/s41467-024-45712-2. https://pubmed.ncbi.nlm.nih.gov/38351096/
3. Fan, Li, Tian, Cheng, Yang, Wentao, Ni, Min, Zhu, Liqin. 2024. HKDC1 promotes liver cancer stemness under hypoxia through stabilizing β-catenin. In Hepatology (Baltimore, Md.), , . doi:10.1097/HEP.0000000000001085. https://pubmed.ncbi.nlm.nih.gov/39250463/
4. Wang, Mei-Qian, Chen, Yi-Ru, Xu, Hui-Wen, Li, Yan, Zhu, Sen-Lin. 2023. HKDC1 upregulation promotes glycolysis and disease progression, and confers chemoresistance onto gastric cancer. In Cancer science, 114, 1365-1377. doi:10.1111/cas.15692. https://pubmed.ncbi.nlm.nih.gov/36519789/
5. Yu, Chen, Bao, Ting-Ting, Jin, Li, Lu, Jian-Wei, Feng, Ji-Feng. 2023. HKDC1 Silencing Inhibits Proliferation and Glycolysis of Gastric Cancer Cells. In Journal of oncology, 2023, 3876342. doi:10.1155/2023/3876342. https://pubmed.ncbi.nlm.nih.gov/37153834/
6. Pang, Qiang, Huang, Shansong, Wang, Huiying, Cao, Jiaqing. 2024. HKDC1 promotes autophagy and proliferation in pancreatic adenocarcinoma through interaction with PARP1 and poly(ADP-ribosyl)ation. In Cellular signalling, 124, 111474. doi:10.1016/j.cellsig.2024.111474. https://pubmed.ncbi.nlm.nih.gov/39424110/
7. Dong, Liangqing, Lu, Dayun, Chen, Ran, Zhou, Hu, Fan, Jia. 2021. Proteogenomic characterization identifies clinically relevant subgroups of intrahepatic cholangiocarcinoma. In Cancer cell, 40, 70-87.e15. doi:10.1016/j.ccell.2021.12.006. https://pubmed.ncbi.nlm.nih.gov/34971568/
8. Pusec, Carolina M, De Jesus, Adam, Khan, Md Wasim, Cordoba-Chacon, Jose, Layden, Brian T. . Hepatic HKDC1 Expression Contributes to Liver Metabolism. In Endocrinology, 160, 313-330. doi:10.1210/en.2018-00887. https://pubmed.ncbi.nlm.nih.gov/30517626/
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凍結前の精子濃度を測定し、精子の生存能力の判定します。
凍結後の精子では、各バッチから1本の凍結保存された精子を選び出し、体外受精に使用します。
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