生物
先天免疫系统
细胞生物学
RNA结合蛋白
下调和上调
基因表达
基因
核糖核酸
免疫系统
诱导多能干细胞
外显子
遗传学
机制(生物学)
HEK 293细胞
突变
基因表达调控
RNA编辑
生殖系
免疫沉淀
功能(生物学)
转录组
转录因子
抄写(语言学)
作者
Zohirul Islam,Ahsan Habib Polash,Colin L. Sweeney,Masataka Suzawa,Bryan Chim,Sabrina Sultana,Skyler A. Kuhn,Nicholas Cutrona,刘秀怀,Patrick T Smith,Tibor Z. Veres,Juraj Kabát,Sundar Ganesan,Amir B. K. Foroushani,Markus Hafner,Stefan Adi Muljo
标识
DOI:10.1073/pnas.2608835123
摘要
MATRIN3 (MATR3) is a broadly expressed nuclear RNA-binding protein. However, the mechanisms by which MATR3 maintains human cellular health remain poorly understood. In this study, we employed gene editing to model MATR3 deficiency in human induced pluripotent stem cells (iPSCs) and the HAP1 haploid cell line. To investigate the consequences of MATR3 loss-of-function, we profiled gene expression changes by RNA sequencing, which revealed significant upregulation of interferon-stimulated genes (ISGs) in MATR3-deficient cells, indicating activation of innate immune signaling. To elucidate the mechanism underlying ISG upregulation, we identified direct targets of MATR3 using photoactivatable ribonucleoside-enhanced crosslinking and immunoprecipitation (PAR-CLIP). In one of these targets, TDRD3 , a gene required for R-loop metabolism in conjunction with Topoisomerase III Beta ( TOP3B ), MATR3 loss induced the incorporation of a 53-nucleotide-long poison exon that triggered nonsense-mediated decay and subsequent reduction in its expression. Consistent with dysfunction of the TDRD3–TOP3B complex, MATR3 loss led to the aberrant accumulation of cytoplasmic RNA–DNA hybrids, which activated the inflammatory cGAS–STING pathway. These findings uncover a previously unrecognized role of MATR3 in maintaining RNA processing fidelity and cellular homeostasis, and establish a mechanistic link between MATR3 dysfunction and innate immune activation. This molecular cascade has significant implications, hinting at a plausible disease mechanism underlying MATR3-associated neurodegenerative diseases, and other conditions of MATR3 deficiency yet to be discovered. Furthermore, these molecular insights provide potential avenues for diagnosing and treating MATR3 loss-of-function in humans.
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