敏感于光的脂肪-海波塔马斯轴控制代谢调节
Tadataka Tsuji1, Vladimir Tolstikov2, Yang Zhang1
1Section on Integrative Physiology and Metabolism, Research Division, Joslin Diabetes Center, Harvard Medical School, Boston, MA, USA.
Nature communications
|August 8, 2024
概括
对脂肪的蓝光暴露通过激活大脑脂肪通路来改善代谢健康. 这种依赖Opsin3的机制涉及histidine信号传递,提供了一种针对肥胖的新策略.
科学领域:
- 代谢研究的研究.
- 神经内分泌学神经内分泌学
- 光生物学的生物.
背景情况:
- 哺乳动物在多个器官中利用感光光受体.
- 奥普辛3在脂肪组织中特别丰富,促进器官间的通信,特别是通过交感神经系统 (SNS) 与大脑之间的通信.
研究的目的:
- 为了研究脂肪组织和下丘脑之间的新型光触发交叉声.
- 探索Opsin3在调节对光的代谢反应中的作用.
主要方法:
- 在高脂肪饮食模型中,直接暴露于皮下白脂肪的蓝光暴露.
- 代谢分析以确定关键的信号分子.
- 对交感神经系统 (SNS) 途径的调查,涉及histidine和下丘脑.
- 人类白色脂肪细胞的细胞自主研究.
主要成果:
- 蓝光暴露在白色脂肪中,以Opsin3依赖的方式改善了饮食引起的代谢功能障碍.
- 代谢学揭示了海斯蒂丁水平的增加,这激活了下丘脑内基因激素神经元.
- 这种激活通过SNS刺激了棕色脂肪组织 (BAT).
- 阻断希斯蒂丁的中心作用或消毒BAT取消了蓝光的好处.
- 人类白色脂肪细胞表现出细胞对蓝光的自主反应.
结论:
- 在脂肪组织和下丘脑之间存在一种新的对光敏感的代谢电路.
- 这条由Opsin3和histidine调解的途径为与肥胖相关的代谢障碍提供了潜在的治疗策略.
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