Menin maintains lysosomal and mitochondrial homeostasis through epigenetic mechanisms in lung cancer.

IF 9.6 1区 生物学 Q1 CELL BIOLOGY Cell Death & Disease Pub Date : 2025-03-08 DOI:10.1038/s41419-025-07489-0
Jun-Bo Yuan, Gui-Xin Gu, Bang-Ming Jin, Qing Han, Bing-Hui Li, Li Zhang, Bin Xu, Xuan Zhu, Guang-Hui Jin
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Abstract

Lysosome-mediated autophagy (including mitophagy) is crucial for cell survival and homeostasis. Although the mechanisms of lysosome activation during stress are well recognized, the epigenetic regulation of lysosomal gene expression remains largely unexplored. Menin, encoded by the MEN1 gene, is a chromatin-related protein that is widely involved in gene transcription via histone modifications. Here, we report that menin regulates the transcription of specific lysosomal genes, such as CTSB, CTSE, and TFE3, through MLL-mediated H3K4me3 reprogramming, which is necessary for maintaining lysosomal homeostasis. Menin also directly controls the expression of SQSTM1 and MAP1LC3B to maintain autophagic flux in a manner independent of AMPK/mTORC1 pathways. Furthermore, loss of menin led to mitochondrial dysfunction, elevated levels of reactive oxygen species (ROS), and genome instability. In genetically engineered mouse models, Men1 deficiency resulted in severe lysosomal and mitochondrial dysfunction and an impaired self-clearance ability, which further led to metabolite accumulation. SP2509, a histone demethylase inhibitor, effectively reversed the downregulation of lysosomal and mitochondrial genes caused by loss of Men1. Our study confirms the previously unrecognized biological and mechanistic importance of menin-mediated H3K4me3 in maintaining organelle homeostasis.

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Menin通过表观遗传机制在肺癌中维持溶酶体和线粒体的稳态。
溶酶体介导的自噬(包括有丝自噬)对细胞存活和稳态至关重要。虽然在应激条件下溶酶体激活的机制已经得到了很好的认识,但溶酶体基因表达的表观遗传调控在很大程度上仍未被探索。Menin由MEN1基因编码,是一种染色质相关蛋白,通过组蛋白修饰广泛参与基因转录。在这里,我们报道menin通过mll介导的H3K4me3重编程调节特定溶酶体基因的转录,如CTSB、CTSE和TFE3,这是维持溶酶体稳态所必需的。Menin还直接控制SQSTM1和MAP1LC3B的表达,以独立于AMPK/mTORC1途径的方式维持自噬通量。此外,menin的缺失导致线粒体功能障碍、活性氧(ROS)水平升高和基因组不稳定。在基因工程小鼠模型中,Men1缺乏导致严重的溶酶体和线粒体功能障碍以及自我清除能力受损,从而进一步导致代谢物积累。SP2509是一种组蛋白去甲基酶抑制剂,可有效逆转因Men1缺失而导致的溶酶体和线粒体基因下调。我们的研究证实了先前未被认识到的menin介导的H3K4me3在维持细胞器稳态中的生物学和机制重要性。
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来源期刊
Cell Death & Disease
Cell Death & Disease CELL BIOLOGY-
CiteScore
15.10
自引率
2.20%
发文量
935
审稿时长
2 months
期刊介绍: Brought to readers by the editorial team of Cell Death & Differentiation, Cell Death & Disease is an online peer-reviewed journal specializing in translational cell death research. It covers a wide range of topics in experimental and internal medicine, including cancer, immunity, neuroscience, and now cancer metabolism. Cell Death & Disease seeks to encompass the breadth of translational implications of cell death, and topics of particular concentration will include, but are not limited to, the following: Experimental medicine Cancer Immunity Internal medicine Neuroscience Cancer metabolism
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