SDHB系统
内分泌学
副神经节瘤
内科学
生物
斑马鱼
嗜铬细胞瘤
SDHA
突变体
种系突变
癌症研究
突变
维生素C
嗜铬细胞
琥珀酸脱氢酶
基因突变
柠檬酸循环
一元羧酸盐转运体
维生素
复合杂合度
肾上腺素
分解代谢
氧化应激
氧化磷酸化
作者
Jasmijn B. Miltenburg,Niek Strijker,Marnix Gorissen,Femke ten Seldam,Lonneke van Woerkom,Jan Zethof,Benno Küsters,Mirko Peitzsch,Henri Timmers,Margo Dona
摘要
Phaeochromocytomas and paragangliomas (PPGLs) are rare neuroendocrine, chromaffin cell-derived tumours of the adrenal medulla or paraganglia. Germline pathogenic variants in succinate dehydrogenase subunit B (SDHB) are most prevalent and associated with malignancy and poor prognosis. Treatment options are limited, and therapy development is hindered by knowledge gaps concerning the pathomechanism and lack of suitable models. Previously, homozygous sdhb mutant zebrafish larvae showed disease characteristics, and adult heterozygous mutants represented human heterozygous SDHB carriers, portraying low-grade systemic succinate accumulation. Since spontaneous PPGL formation remains absent, we applied vitamin C supplementation as potential trigger to induce tumourigenesis in adult heterozygous sdhb mutant zebrafish. In addition, sdhb mutant larvae were exposed to vitamin C to investigate dose-dependent effects in an sdhb-deficient context. Twelve percent of vitamin C-supplemented adult sdhb mutants showed local proliferation of chromaffin cells with tissue-specific sdhb deficiency. Furthermore, metabolite profiling showed an increase in succinate/fumarate ratios upon vitamin C in heterozygous sdhb mutants. Gene expression analysis showed activation of the hypoxia-inducible factor pathway in larval and adult zebrafish. In addition, high dose vitamin C increased nrf2a expression, representing oxidative stress, in homozygous and heterozygous sdhb mutants. Ultimately, we have successfully employed vitamin C supplementation to initiate chromaffin cell proliferation in adult heterozygous sdhb mutant zebrafish, resembling early-stage PPGL tumourigenesis. Furthermore, we gained insights into underlying mechanisms, including HIF stabilisation, demethylation, oxidative stress, iron metabolism and glucose transport. Our model provides a unique platform to investigate possible triggers for PPGL development in the human mutation carrier state and investigate early stages of tumourigenesis.
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