RNA剪接
生物
红细胞生成
造血
干细胞
细胞生物学
转录组
无意义介导的衰变
拼接因子
核糖核酸
选择性拼接
RNA结合蛋白
基因
癌症研究
遗传学
基因表达
信使核糖核酸
贫血
内科学
医学
作者
Pedro Luís Moura,Teresa Mortera‐Blanco,Isabel Juliana Hofman,Gabriele Todisco,Warren W. Kretzschmar,Ann-Charlotte Björklund,Maria Creignou,Michael Hagemann-Jensen,Christoph Ziegenhain,David Cabrerizo Granados,Indira Barbosa,Gunilla Walldin,Monika Jansson,Neil Ashley,Adam J. Mead,Vanessa Lundin,Marios Dimitriou,Tetsuichi Yoshizato,Petter Woll,Seishi Ogawa
出处
期刊:Cancer Research
[American Association for Cancer Research]
日期:2023-11-03
卷期号:84 (2): 211-225
被引量:13
标识
DOI:10.1158/0008-5472.can-23-3038
摘要
Myelodysplastic syndromes with ring sideroblasts (MDS-RS) commonly develop from hematopoietic stem cells (HSC) bearing mutations in the splicing factor SF3B1 (SF3B1mt). Direct studies into MDS-RS pathobiology have been limited by a lack of model systems that fully recapitulate erythroid biology and RS development and the inability to isolate viable human RS. Here, we combined successful direct RS isolation from patient samples, high-throughput multiomics analysis of cells encompassing the SF3B1mt stem-erythroid continuum, and functional assays to investigate the impact of SF3B1mt on erythropoiesis and RS accumulation. The isolated RS differentiated, egressed into the blood, escaped traditional nonsense-mediated decay (NMD) mechanisms, and leveraged stress-survival pathways that hinder wild-type hematopoiesis through pathogenic GDF15 overexpression. Importantly, RS constituted a contaminant of magnetically enriched CD34+ cells, skewing bulk transcriptomic data. Mis-splicing in SF3B1mt cells was intensified by erythroid differentiation through accelerated RNA splicing and decreased NMD activity, and SF3B1mt led to truncations in several MDS-implicated genes. Finally, RNA mis-splicing induced an uncoupling of RNA and protein expression, leading to critical abnormalities in proapoptotic p53 pathway genes. Overall, this characterization of erythropoiesis in SF3B1mt RS provides a resource for studying MDS-RS and uncovers insights into the unexpectedly active biology of the "dead-end" RS. SIGNIFICANCE: Ring sideroblast isolation combined with state-of-the-art multiomics identifies survival mechanisms underlying SF3B1-mutant erythropoiesis and establishes an active role for erythroid differentiation and ring sideroblasts themselves in SF3B1-mutant myelodysplastic syndrome pathogenesis.
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