HIF1α通过协调向脂肪酸合成的代谢转变在tfe3重排肾细胞癌的发展中起关键作用。

IF 1.3 4区 生物学 Q4 CELL BIOLOGY
Genes to Cells Pub Date : 2025-01-14 DOI:10.1111/gtc.13195
Hidekazu Nishizawa, Shintaro Funasaki, Wenjuan Ma, Yoshiaki Kubota, Kazuhide Watanabe, Yuichiro Arima, Shoichiro Kuroda, Takaaki Ito, Mitsuko Furuya, Takanobu Motoshima, Akira Nishiyama, Sally Mehanna, Yorifumi Satou, Hisashi Hasumi, Ryosuke Jikuya, Kazuhide Makiyama, Tomohiko Tamura, Yuichi Oike, Yasuhito Tanaka, Toshio Suda, Laura S. Schmidt, W. Marston Linehan, Masaya Baba, Tomomi Kamba
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引用次数: 0

摘要

肿瘤的发展通常需要细胞适应一种独特的高代谢状态;然而,在tfe3重排肾细胞癌(TFE3-RCC)中驱动这种代谢变化的分子机制仍然知之甚少。TFE3-RCC是一种罕见的RCC亚型,由涉及转录因子TFE3的嵌合蛋白形成而定义。在这项研究中,我们分析了细胞系和基因工程小鼠,证明嵌合蛋白prc - tfe3的表达通过转录上调HIF1α和HIF2α诱导了缺氧相关的信号。PRCC-TFE3上调HIF1α通过增强糖酵解导致细胞ATP产生增加,这也为TCA循环提供底物,同时维持线粒体氧化磷酸化。我们将TFE3-RCC小鼠模型与Hif1α和/或Hif2α敲除小鼠杂交,发现体内肿瘤发展所必需的是Hif1α,而不是Hif2α。这些小鼠肾脏组织的RNA-seq和代谢组学分析显示,酮体的产生与肿瘤的发展呈负相关,而在TFE3-RCC中,通过依赖HIF1α/ srebp1的机制,新生脂质合成上调。我们的数据表明,通过PRCC-TFE3/HIF1α/SREBP1轴的协调代谢转移是PRCC-TFE3增强癌细胞代谢,促进TFE3-RCC肿瘤发展的关键机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

HIF1α Plays a Crucial Role in the Development of TFE3–Rearranged Renal Cell Carcinoma by Orchestrating a Metabolic Shift Toward Fatty Acid Synthesis

HIF1α Plays a Crucial Role in the Development of TFE3–Rearranged Renal Cell Carcinoma by Orchestrating a Metabolic Shift Toward Fatty Acid Synthesis

Tumor development often requires cellular adaptation to a unique, high metabolic state; however, the molecular mechanisms that drive such metabolic changes in TFE3–rearranged renal cell carcinoma (TFE3-RCC) remain poorly understood. TFE3-RCC, a rare subtype of RCC, is defined by the formation of chimeric proteins involving the transcription factor TFE3. In this study, we analyzed cell lines and genetically engineered mice, demonstrating that the expression of the chimeric protein PRCC-TFE3 induced a hypoxia-related signature by transcriptionally upregulating HIF1α and HIF2α. The upregulation of HIF1α by PRCC-TFE3 led to increased cellular ATP production by enhancing glycolysis, which also supplied substrates for the TCA cycle while maintaining mitochondrial oxidative phosphorylation. We crossed TFE3-RCC mouse models with Hif1α and/or Hif2α knockout mice and found that Hif1α, rather than Hif2α, is essential for tumor development in vivo. RNA-seq and metabolomic analyses of the kidney tissues from these mice revealed that ketone body production is inversely correlated with tumor development, whereas de novo lipid synthesis is upregulated through the HIF1α/SREBP1-dependent mechanism in TFE3-RCC. Our data suggest that the coordinated metabolic shift via the PRCC-TFE3/HIF1α/SREBP1 axis is a key mechanism by which PRCC-TFE3 enhances cancer cell metabolism, promoting tumor development in TFE3-RCC.

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来源期刊
Genes to Cells
Genes to Cells 生物-细胞生物学
CiteScore
3.40
自引率
0.00%
发文量
71
审稿时长
3 months
期刊介绍: Genes to Cells provides an international forum for the publication of papers describing important aspects of molecular and cellular biology. The journal aims to present papers that provide conceptual advance in the relevant field. Particular emphasis will be placed on work aimed at understanding the basic mechanisms underlying biological events.
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