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昼夜节律定义了 NAD 治疗饮食诱导代谢疾病的功效,通过同步小鼠肝脏的生物钟。

Time-of-day defines NAD efficacy to treat diet-induced metabolic disease by synchronizing the hepatic clock in mice.

机构信息

Departamento de Biología Celular y Fisiología, Instituto de Investigaciones Biomédicas, Universidad Nacional Autónoma de México, 04510, Mexico City, Mexico.

Laboratorio de Cronobiología y Metabolismo, Instituto Nacional de Medicina Genómica, 14610, Mexico City, Mexico.

出版信息

Nat Commun. 2023 Mar 27;14(1):1685. doi: 10.1038/s41467-023-37286-2.

Abstract

The circadian clock is an endogenous time-tracking system that anticipates daily environmental changes. Misalignment of the clock can cause obesity, which is accompanied by reduced levels of the clock-controlled, rhythmic metabolite NAD. Increasing NAD is becoming a therapy for metabolic dysfunction; however, the impact of daily NAD fluctuations remains unknown. Here, we demonstrate that time-of-day determines the efficacy of NAD treatment for diet-induced metabolic disease in mice. Increasing NAD prior to the active phase in obese male mice ameliorated metabolic markers including body weight, glucose and insulin tolerance, hepatic inflammation and nutrient sensing pathways. However, raising NAD immediately before the rest phase selectively compromised these responses. Remarkably, timed NAD adjusted circadian oscillations of the liver clock until completely inverting its oscillatory phase when increased just before the rest period, resulting in misaligned molecular and behavioral rhythms in male and female mice. Our findings unveil the time-of-day dependence of NAD-based therapies and support a chronobiology-based approach.

摘要

生物钟是一种内源性的时间跟踪系统,可预测日常环境变化。时钟的失调会导致肥胖,同时伴随着时钟控制的、有节奏的代谢物 NAD 水平降低。增加 NAD 正成为治疗代谢功能障碍的一种方法;然而,每日 NAD 波动的影响尚不清楚。在这里,我们证明了生物钟的时间决定了 NAD 治疗饮食诱导的代谢疾病在小鼠中的疗效。在肥胖雄性小鼠的活动期前增加 NAD 可改善代谢标志物,包括体重、葡萄糖和胰岛素耐量、肝炎症和营养感应途径。然而,在休息期前立即提高 NAD 会选择性地损害这些反应。值得注意的是,定时 NAD 调整了肝脏生物钟的昼夜节律波动,直到在休息期前增加 NAD 时完全反转其振荡相位,导致雄性和雌性小鼠的分子和行为节律失调。我们的发现揭示了基于 NAD 的治疗方法的时间依赖性,并支持基于生物钟的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38d1/10043291/ba6f328de2d5/41467_2023_37286_Fig1_HTML.jpg

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