Cluh-flox Mouse
一般名
Cluh-flox
製品ID
S-CKO-18037
背景情報
C57BL/6JCya
系統ID
CKOCMP-74148-Cluh-B6J-VB
状況
このマウス系統を論文で使用する場合は、「Cluh-flox Mouse(カタログ番号S-CKO-18037)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
Cluh-flox
系統ID
CKOCMP-74148-Cluh-B6J-VB
遺伝子名
製品ID
S-CKO-18037
遺伝子別名
Kiaa0664, mKIAA0664, 1300001I01Rik
遺伝子別名
C57BL/6JCya
NCBI ID
修正
Conditional knockout
染色体
Chr 11
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
ENSMUST00000092915
NCBIトランスクリプトID
NM_001081158
ターゲット領域
Exon 4~9
有効領域の大きさ
~2.2 kb
遺伝子研究の概要
CLUH, also known as clustered mitochondria homolog, is a cytosolic RNA-binding protein. It plays a crucial role in regulating mitochondrial function, metabolism, and cell cycle progression. CLUH binds to mRNAs encoding mitochondrial proteins, influencing their translation, stability, and localization, which is essential for maintaining normal mitochondrial biogenesis and function. It is involved in pathways such as oxidative phosphorylation, mTORC1 signaling, and mitochondrial fission, and its function is vital for normal cell growth, development, and homeostasis [1,4,5,7,9]. Genetic models, especially knockout (KO) mouse models, are valuable tools for studying CLUH's function.
In KO mouse models and other loss-of-function experiments, several key findings have emerged. In cells lacking CLUH, astrin levels decrease, mTORC1 signaling increases, but cells cannot sustain anaplerotic and anabolic pathways, resulting in dysregulated growth, metabolism, and cell cycling [1]. In motoneurons, the absence of CLUH leads to ATP deficits in the growth cone, peripheral neuropathy, and motor deficits due to its role in maintaining functional mitochondria and axonal translation [2]. In human macrophages, reduced CLUH expression enhances mitochondrial ROS production, impairs mitophagy and lysosomal function, and exacerbates inflammation, as seen in ulcerative colitis pathogenesis [3]. In Drosophila and mammalian cells, depletion of CLUH causes mitochondrial elongation due to its role in promoting Drp1 recruitment to mitochondria for fission [4]. In adipocytes, Cluh depletion impairs proper differentiation and reduces mitochondrial respiration [6]. In hepatocytes, without CLUH, a mitophagy block causes mitochondrial clustering [5]. In general, CLUH-knockout cells show OXPHOS defects, a metabolic shift towards glucose dependency, and alterations in amino acid and lipid metabolism [8].
In conclusion, CLUH is essential for coupling mitochondrial metabolism with cell cycle progression, maintaining functional mitochondria in neurons, regulating inflammation in macrophages, controlling mitochondrial fission, promoting adipogenesis, and coordinating metabolic adaptation in hepatocytes. The study of CLUH KO/CKO mouse models has significantly contributed to understanding its role in diseases such as ulcerative colitis, peripheral neuropathy, and potentially others related to mitochondrial and metabolic dysfunctions.
References:
1. Schatton, Désirée, Di Pietro, Giada, Szczepanowska, Karolina, Trifunovic, Aleksandra, Rugarli, Elena I. 2022. CLUH controls astrin-1 expression to couple mitochondrial metabolism to cell cycle progression. In eLife, 11, . doi:10.7554/eLife.74552. https://pubmed.ncbi.nlm.nih.gov/35559794/
2. Zaninello, Marta, Schlegel, Tim, Nolte, Hendrik, Langer, Thomas, Rugarli, Elena I. 2024. CLUH maintains functional mitochondria and translation in motoneuronal axons and prevents peripheral neuropathy. In Science advances, 10, eadn2050. doi:10.1126/sciadv.adn2050. https://pubmed.ncbi.nlm.nih.gov/38809982/
3. Khan, Shaziya, Raj, Desh, Sahu, Shikha, Ghoshal, Uday C, Lahiri, Amit. 2023. CLUH functions as a negative regulator of inflammation in human macrophages and determines ulcerative colitis pathogenesis. In JCI insight, 8, . doi:10.1172/jci.insight.161096. https://pubmed.ncbi.nlm.nih.gov/37140992/
4. Yang, Huan, Sibilla, Caroline, Liu, Raymond, Harvey, Robert J, Guo, Ming. 2022. Clueless/CLUH regulates mitochondrial fission by promoting recruitment of Drp1 to mitochondria. In Nature communications, 13, 1582. doi:10.1038/s41467-022-29071-4. https://pubmed.ncbi.nlm.nih.gov/35332133/
5. Pla-Martín, David, Schatton, Désirée, Wiederstein, Janica L, Krüger, Marcus, Rugarli, Elena I. 2020. CLUH granules coordinate translation of mitochondrial proteins with mTORC1 signaling and mitophagy. In The EMBO journal, 39, e102731. doi:10.15252/embj.2019102731. https://pubmed.ncbi.nlm.nih.gov/32149416/
6. Cho, Eugene, Jung, Wonhee, Joo, Hyun-Yoo, Lee, Kee Ho, Shin, Hyun Jin. 2019. Cluh plays a pivotal role during adipogenesis by regulating the activity of mitochondria. In Scientific reports, 9, 6820. doi:10.1038/s41598-019-43410-4. https://pubmed.ncbi.nlm.nih.gov/31048716/
7. Schatton, Désirée, Pla-Martin, David, Marx, Marie-Charlotte, Velagapudi, Vidya, Rugarli, Elena I. 2017. CLUH regulates mitochondrial metabolism by controlling translation and decay of target mRNAs. In The Journal of cell biology, 216, 675-693. doi:10.1083/jcb.201607019. https://pubmed.ncbi.nlm.nih.gov/28188211/
8. Wakim, Jamal, Goudenege, David, Perrot, Rodolphe, Lenaers, Guy, Khiati, Salim. 2017. CLUH couples mitochondrial distribution to the energetic and metabolic status. In Journal of cell science, 130, 1940-1951. doi:10.1242/jcs.201616. https://pubmed.ncbi.nlm.nih.gov/28424233/
9. Gao, Jie, Schatton, Désirée, Martinelli, Paola, Sardiello, Marco, Rugarli, Elena I. . CLUH regulates mitochondrial biogenesis by binding mRNAs of nuclear-encoded mitochondrial proteins. In The Journal of cell biology, 207, 213-23. doi:10.1083/jcb.201403129. https://pubmed.ncbi.nlm.nih.gov/25349259/
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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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