Erythroid Differentiation Enhances RNA Mis-Splicing in SF3B1-Mutant Myelodysplastic Syndromes with Ring Sideroblasts
Pedro L Moura1, Teresa Mortera-Blanco1, Isabel J Hofman1
1Department of Medicine Huddinge, Center for Hematology and Regenerative Medicine, Karolinska Institutet, Huddinge, Sweden.
Abstract:
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.
Insights
Myelodysplastic syndromes with ring sideroblasts (MDS-RS) result from SF3B1 mutations. This study isolated MDS-RS cells, revealing their active survival mechanisms and role in disease pathogenesis.
Area of Science:
- Hematology
- Molecular Biology
- Genetics
Background:
- Myelodysplastic syndromes with ring sideroblasts (MDS-RS) are linked to SF3B1 mutations in hematopoietic stem cells (HSC).
- Studying MDS-RS pathobiology is challenging due to limited model systems and difficulty isolating viable ring sideroblasts (RS).
Purpose of the Study:
- To investigate the impact of SF3B1 mutations (SF3B1mt) on erythropoiesis and RS accumulation.
- To characterize the biology of SF3B1mt RS and their role in MDS-RS pathogenesis.
Main Methods:
- Isolation of viable human RS from patient samples.
- High-throughput multiomics analysis of cells across the SF3B1mt stem-erythroid continuum.
- Functional assays to assess erythropoiesis and RS behavior.
Main Results:
- Isolated RS demonstrated differentiation, blood egress, and evasion of nonsense-mediated decay (NMD).
- SF3B1mt RS utilized stress-survival pathways, including pathogenic GDF15 overexpression, hindering normal hematopoiesis.
- RS were identified as contaminants in CD34+ cell enrichment, potentially skewing transcriptomic data.
- Erythroid differentiation exacerbated mis-splicing in SF3B1mt cells by accelerating RNA splicing and reducing NMD activity.
- Mis-splicing led to gene truncations and uncoupled RNA/protein expression, affecting the p53 pathway.
Conclusions:
- SF3B1mt RS possess active survival mechanisms and contribute to MDS-RS pathogenesis.
- Understanding RS biology provides insights into SF3B1mt erythropoiesis and potential therapeutic targets.
Related Concept Videos
RNA Splicing
Alternative RNA Splicing
There are five types of alternative RNA splicing that vary in the ways the pre-mRNA segments are removed or retained in the mature mRNA. The first...
Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of...
RNA Editing
Chromatin Structure Regulates pre-mRNA Processing
The chromatin structure, especially...


