Gong Siyuan, Tetti Martina, Reincke Martin, Williams Tracy Ann
Medizinische Klinik und Poliklinik IV, Klinikum der Universität München, Ludwig-Maximilians-Universität München, 80336 Munich, Germany.
Department of Medical Sciences, Division of Internal Medicine and Hypertension, University of Turin, 10126 Turin, Italy.
Cancers (Basel). 2021 Jul 23;13(15):3716. doi: 10.3390/cancers13153716.
Aldosterone-producing adenomas (APAs) are characterized by aldosterone hypersecretion and deregulated adrenocortical cell growth. Increased energy consumption required to maintain cellular tumorigenic properties triggers metabolic alterations that shape the tumor microenvironment to acquire necessary nutrients, yet our knowledge of this adaptation in APAs is limited. Here, we investigated adrenocortical cell-intrinsic metabolism and the tumor immune microenvironment of APAs and their potential roles in mediating aldosterone production and growth of adrenocortical cells. Using multiple advanced bioinformatics methods, we analyzed gene expression datasets to generate distinct metabolic and immune cell profiles of APAs versus paired adjacent cortex. APAs displayed activation of lipid metabolism, especially fatty acid β-oxidation regulated by PPARα, and glycolysis. We identified an immunosuppressive microenvironment in APAs, with reduced infiltration of CD45 immune cells compared with adjacent cortex, validated by CD45 immunohistochemistry (3.45-fold, < 0.001). APAs also displayed an association of lipid metabolism with ferroptosis and upregulation of antioxidant systems. In conclusion, APAs exhibit metabolic reprogramming towards fatty acid β-oxidation and glycolysis. Increased lipid metabolism via PPARα may serve as a key mechanism to modulate lipid peroxidation, a hallmark of regulated cell death by ferroptosis. These findings highlight survival advantages for APA tumor cells with metabolic reprogramming properties.
醛固酮分泌性腺瘤(APAs)的特征是醛固酮分泌过多和肾上腺皮质细胞生长失调。维持细胞致瘤特性所需的能量消耗增加会引发代谢改变,从而塑造肿瘤微环境以获取必要的营养物质,然而我们对APAs中这种适应性的了解有限。在此,我们研究了APAs的肾上腺皮质细胞内在代谢和肿瘤免疫微环境,以及它们在介导醛固酮产生和肾上腺皮质细胞生长中的潜在作用。我们使用多种先进的生物信息学方法,分析基因表达数据集,以生成APAs与配对的相邻皮质的不同代谢和免疫细胞图谱。APAs表现出脂质代谢的激活,尤其是由PPARα调节的脂肪酸β-氧化和糖酵解。我们在APAs中鉴定出一种免疫抑制微环境,与相邻皮质相比,CD45免疫细胞浸润减少,通过CD45免疫组织化学得到验证(3.45倍,<0.001)。APAs还显示脂质代谢与铁死亡以及抗氧化系统上调之间存在关联。总之,APAs表现出向脂肪酸β-氧化和糖酵解的代谢重编程。通过PPARα增加脂质代谢可能是调节脂质过氧化的关键机制,脂质过氧化是铁死亡调节的细胞死亡的一个标志。这些发现突出了具有代谢重编程特性的APA肿瘤细胞的生存优势。