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LKB1 作为胰高血糖素介导的禁食反应的关键刹车。

LKB1 acts as a critical brake for the glucagon-mediated fasting response.

机构信息

Thoracic and GI Malignancies BranchCenter for Cancer ResearchNational Cancer Institute, NIHBethesdaMarylandUSA.

出版信息

Hepatol Commun. 2022 Aug;6(8):1949-1961. doi: 10.1002/hep4.1942. Epub 2022 Mar 31.

Abstract

As important as the fasting response is for survival, an inability to shut it down once nutrients become available can lead to exacerbated disease and severe wasting. The liver is central to transitions between feeding and fasting states, with glucagon being a key initiator of the hepatic fasting response. However, the precise mechanisms controlling fasting are not well defined. One potential mediator of these transitions is liver kinase B1 (LKB1), given its role in nutrient sensing. Here, we show LKB1 knockout mice have a severe wasting and prolonged fasting phenotype despite increased food intake. By applying RNA sequencing and intravital microscopy, we show that loss of LKB1 leads to a dramatic reprogramming of the hepatic lobule through robust up-regulation of periportal genes and functions. This is likely mediated through the opposing effect that LKB1 has on glucagon pathways and gene expression. Conclusion: Our findings show that LKB1 acts as a brake to the glucagon-mediated fasting response, resulting in "periportalization" of the hepatic lobule and whole-body metabolic inefficiency. These findings reveal a mechanism by which hepatic metabolic compartmentalization is regulated by nutrient-sensing.

摘要

尽管禁食反应对生存至关重要,但一旦有营养物质可供利用,而无法关闭该反应,可能会导致疾病恶化和严重消瘦。肝脏在进食和禁食状态之间的转换中起核心作用,胰高血糖素是肝脏禁食反应的关键启动子。然而,控制禁食的确切机制尚未明确。鉴于其在营养感应中的作用,肝激酶 B1(LKB1)是这些转换的潜在介质之一。在这里,我们发现 LKB1 敲除小鼠尽管食物摄入量增加,但仍表现出严重消瘦和延长的禁食表型。通过应用 RNA 测序和活体显微镜检查,我们发现 LKB1 的缺失导致肝小叶通过强烈的门周基因和功能上调发生显著的重编程。这可能是通过 LKB1 对胰高血糖素途径和基因表达的相反作用来介导的。结论:我们的研究结果表明,LKB1 作为胰高血糖素介导的禁食反应的制动,导致肝小叶和全身代谢效率低下的“门周化”。这些发现揭示了一种由营养感应调节肝代谢区室化的机制。

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