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Hsueh, T.-Y.

Publications and source records attributed to Hsueh, T.-Y..

2 recordsLinked to original sources

Somatic DDX41 mutations confer neomorphic splicing activity in the pathogenesis of myelodysplastic neoplasms

Germline mutations in the RNA helicase DDX41 are the most common genetic predisposition to myelodysplastic syndromes (MDS) and acute myeloid leukemia (AML), representing 5-7% of AML. Over 70% of patients acquire a somatic mutation at specific hotspots (R525H/G530D) in the helicase domain of DDX41 in trans, which is linked to disease progression. DDX41 has diverse cellular functions, including RNA splicing, ribosome biogenesis, R-loop resolution and inflammation. However, the mechanisms by which somatic DDX41 mutations drive MDS/AML pathogenesis are yet to be determined. Here, we systematically evaluated the function of pathogenic, missense germline and somatic DDX41 mutations. We report that DDX41 somatic mutations are gain of function alleles and fail to rescue AML cell growth, distinct from germline DDX41 mutations. DDX41 somatic mutations R525H and G530D drive widespread splicing changes in isogenic AML cell lines, consistent in genetically engineered murine bone marrow HSPCs and CD34+ cells from DDX41-mutant MDS/AML patients. Mechanistically, DDX41-R525H exhibits increased RNA binding affinity compared to wildtype, with aberrantly spliced RNA targets overlapping with enriched binding. Strikingly, aberrant splicing of SEPTIN7 is enriched exclusively in CD34+ HSPCs of patients harboring both germline and somatic DDX41 mutations but absent in samples with germline mutation alone or lacking DDX41 mutations altogether. SEPTIN7 mis-splicing introduces a premature stop codon resulting in its downregulation at the protein level. SEPTIN7 is a known regulator of cytokinesis, HSC polarity and repopulation capacity. Our results identify a novel mis-spliced candidate, SEPTIN7, whose deregulation implicates a mechanism by which the DDX41 somatic mutations promote dysplastic hematopoiesis.

cancer biology↗

MDS-associated SF3B1 mutations promote aberrant fate choice of hematopoietic stem cell via mis-splicing of mediator kinase module component CDK8

Mutations in RNA splicing factor SF3B1 are among the most common in MDS and are strongly associated with MDS with ring sideroblasts (MDS-RS). While aberrant splicing of terminal erythroid regulators has been implicated in MDS pathogenesis, the impact of SF3B1 mutations on early hematopoietic progenitor function remains unclear. Here, we identify CDK8, a key kinase of the mediator complex involved in transcriptional regulation, as a recurrent mis-spliced target in SF3B1-mutant MDS. Mutant SF3B1 induces cryptic 3' splice site selection in CDK8, leading to loss of CDK8 mRNA and protein. Using primary human HSPCs, our study identifies CDK8 as an important regulator of HSPC homeostasis and cell fate determination. CDK8 depletion results in expansion of HSPCs and shifts differentiation toward the erythroid and myeloid lineages, mirroring phenotypes observed in SF3B1-mutant MDS. Lastly, functional restoration of CDK8 rescues early erythroid phenotypes in SF3B1-mutant cells. These findings implicate CDK8 mis-splicing as a mechanistic driver of altered progenitor fate and dysplasia in SF3B1-mutant MDS, linking aberrant splicing to transcriptional dysregulation and hematopoietic lineage commitment.

cancer biology↗