Wif1-flox Mouse
一般名
Wif1-flox
製品ID
S-CKO-08344
背景情報
C57BL/6JCya
系統ID
CKOCMP-24117-Wif1-B6J-VA
状況
このマウス系統を論文で使用する場合は、「Wif1-flox Mouse(カタログ番号S-CKO-08344)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
Wif1-flox
系統ID
CKOCMP-24117-Wif1-B6J-VA
遺伝子名
製品ID
S-CKO-08344
遺伝子別名
WIF-1
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
ENSMUST00000020439
NCBIトランスクリプトID
NM_011915
ターゲット領域
Exon 3
有効領域の大きさ
~1.4 kb
遺伝子研究の概要
Wif1, short for Wnt inhibitory factor 1, is a secreted antagonist of the Wnt signaling pathway. It directly binds to Wnt ligands, preventing their interaction with membrane-bound receptors, thus regulating the Wnt/β-catenin pathway which is crucial for embryonic development, tissue homeostasis, and is often dysregulated in diseases [4].
In prostate cancer, Wif1 acts as a tumor suppressor. It inhibits Wnt/β-catenin signaling, promotes apoptosis by regulating anti-and pro-apoptotic proteins, and suppresses epithelial-mesenchymal transition and metastasis [1]. In cervical cancer, endometrial cancer, and NSCLC, Wif1 is frequently downregulated due to promoter methylation. Restoring its expression through demethylation agents can inhibit cancer cell proliferation, induce apoptosis, and affect downstream genes in the Wnt/β-catenin pathway [2,3,5]. In podocytes, loss of CLDN5 deregulates Wif1, activating Wnt signaling and contributing to kidney disease, while systemic delivery of Wif1 suppresses disease progression [6]. In neural and glioma stem cells, Wif1 is upregulated by BMP4, and it decreases the cell cycle and inhibits proliferation of neural stem cells and glioma cells [7]. In diabetic retinopathy, Wif1 protects photoreceptor cells by inhibiting the Wnt/β-catenin-HIF-1α-Glut1 glycolytic pathway, reducing oxidative stress [8].
In summary, Wif1 is a key regulator of the Wnt signaling pathway. Its dysregulation, often due to promoter methylation, is involved in various cancers, kidney disease, and diabetic retinopathy. Understanding its function through different research models, such as in vivo studies on cell lines and animal models, provides insights into disease mechanisms and potential therapeutic targets for these diseases.
References:
1. Xia, Zhiliang, Du, Dan, Zhang, Zhi, Guo, Xiong, He, Ziqiu. 2024. WIF1 and DKK3 in prostate cancer: from molecular pathways to therapeutic targets: a narrative review. In Translational andrology and urology, 13, 2601-2616. doi:10.21037/tau-24-304. https://pubmed.ncbi.nlm.nih.gov/39698576/
2. Wang, Ying, Yuan, Shifa, Ma, Jing, Zhang, Fengzhen, Wang, Xiaomei. . WIF1 was downregulated in cervical cancer due to promoter methylation. In Acta biochimica Polonica, 70, 419-423. doi:10.18388/abp.2020_6700. https://pubmed.ncbi.nlm.nih.gov/37306343/
3. Zhang, Baohua, Ji, Jing, Hu, Mingzhu, Fu, Yu, Li, Lan. . WIF1 promoter hypermethylation induce endometrial carcinogenesis through the Wnt/β-catenin signaling pathway. In American journal of reproductive immunology (New York, N.Y. : 1989), 90, e13743. doi:10.1111/aji.13743. https://pubmed.ncbi.nlm.nih.gov/37491917/
4. Poggi, Lucia, Casarosa, Simona, Carl, Matthias. 2018. An Eye on the Wnt Inhibitory Factor Wif1. In Frontiers in cell and developmental biology, 6, 167. doi:10.3389/fcell.2018.00167. https://pubmed.ncbi.nlm.nih.gov/30574494/
5. Guo, Hao, Zhou, Shuni, Tan, Lili, Wu, Zhenfeng, Ran, Ruizhi. . Clinicopathological significance of WIF1 hypermethylation in NSCLC, a meta-analysis and literature review. In Oncotarget, 8, 2550-2557. doi:10.18632/oncotarget.13707. https://pubmed.ncbi.nlm.nih.gov/27911280/
6. Sun, Hui, Li, Hui, Yan, Jie, Zhao, Shengtian, Gong, Yongfeng. 2022. Loss of CLDN5 in podocytes deregulates WIF1 to activate WNT signaling and contributes to kidney disease. In Nature communications, 13, 1600. doi:10.1038/s41467-022-29277-6. https://pubmed.ncbi.nlm.nih.gov/35332151/
7. Xu, Congdi, Hu, Xinyu, Fan, Yantao, Gao, Zhengliang, Cai, Chunhui. . Wif1 Mediates Coordination of Bone Morphogenetic Protein and Wnt Signaling in Neural and Glioma Stem Cells. In Cell transplantation, 31, 9636897221134540. doi:10.1177/09636897221134540. https://pubmed.ncbi.nlm.nih.gov/36324293/
8. Chen, Bolin, Zou, Jing, Xie, Lihui, Li, Fangling, Xu, Huizhuo. 2024. WNT-inhibitory factor 1-mediated glycolysis protects photoreceptor cells in diabetic retinopathy. In Journal of translational medicine, 22, 245. doi:10.1186/s12967-024-05046-5. https://pubmed.ncbi.nlm.nih.gov/38448948/
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