DGAT駆動の無駄な脂質サイクルは、顕著でありながら隠された熱産生機能を持つ
Anand Kumar Sharma1, Radhika Khandelwal1, Jelena Zurkovic2
1Laboratory of Translational Nutrition Biology, Institute of Food, Nutrition and Health, ETH Zurich, 8603 Schwerzenbach, Switzerland.
Cell metabolism
|January 10, 2026
まとめ
脂肪組織の無駄な脂質サイクル(FLC)は、UCP1非依存性の熱産生を提供する。DGATによって調節されるこのプロセスは、震えとAMPK活性化によるその喪失を補償し、体温を維持する。
科学分野:
- 生理学
- 代謝調節
- 哺乳類の熱調節
背景:
- 熱調節は哺乳類における重要な恒常性プロセスであるが、UCP1を介した熱産生以外の根底にあるメカニズムは不明なままである。
- UCP1を介した熱産生は効率的であるが、必須ではないため、熱産生のための代替経路が存在することを示唆している。
主な方法:
- 哺乳類モデルにおけるFLCを研究するために薬理遺伝学的手法を利用した。
- ジアプリルグリセロールアシル基転移酵素(DGAT)のFLC調節への関与を調査した。
- FLC欠損モデルにおける震えやAMPK活性化を含む代償的な熱産生応答を評価した。
結論:
- FLCは実質的な熱産生ポテンシャルを持ち、UCP1を介した熱産生に代わるものを提供する。
- 哺乳類の熱調節は柔軟性を示し、体温を維持するために脂肪細胞代謝の変化を通じて適応する。
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