甲状腺
斑马鱼
生物
Notch信号通路
转录组
先天性甲状腺功能减退
基因
遗传学
癌症研究
基因表达
作者
Fengyao Wu,Ruimeng Yang,Haiyang Zhang,Ming Zhan,Ping-Hui Tu,Ya Fang,Cao-Xu Zhang,Shiyang Song,Mei Dong,Renjie Cui,Xiaoyu Liu,Yang Liu,Chen‐Yan Yan,Feng Sun,Ruijia Zhang,Zheng Wang,Jun Liang,Huai‐Dong Song,Feng Cheng,Shuang‐Xia Zhao
标识
DOI:10.1136/jmg-2022-108866
摘要
In several countries, thyroid dyshormonogenesis is more common than thyroid dysgenesis in patients with congenital hypothyroidism (CH). However, known pathogenic genes are limited to those directly involved in hormone biosynthesis. The aetiology and pathogenesis of thyroid dyshormonogenesis remain unknown in many patients.To identify additional candidate pathogenetic genes, we performed next-generation sequencing in 538 patients with CH and then confirmed the functions of the identified genes in vitro using HEK293T and Nthy-ori 3.1 cells, and in vivo using zebrafish and mouse model organisms.We identified one pathogenic MAML2 variant and two pathogenic MAMLD1 variants that downregulated canonical Notch signalling in three patients with CH. Zebrafish and mice treated with N-[N-(3,5-difluorophenacetyl)-l-alanyl]-S-phenylglycine t-butylester, a γ-secretase inhibitor exhibited clinical manifestations of hypothyroidism and thyroid dyshormonogenesis. Through organoid culture of primary mouse thyroid cells and transcriptome sequencing, we demonstrated that Notch signalling within thyroid cells directly affects thyroid hormone biosynthesis rather than follicular formation. Additionally, these three variants blocked the expression of genes associated with thyroid hormone biosynthesis, which was restored by HES1 expression. The MAML2 variant exerted a dominant-negative effect on both the canonical pathway and thyroid hormone biosynthesis. MAMLD1 also regulated hormone biosynthesis through the expression of HES3, the target gene of the non-canonical pathway.This study identified three mastermind-like family gene variants in CH and revealed that both canonical and non-canonical Notch signalling affected thyroid hormone biosynthesis.
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