Related Experiment Video
Updated: Aug 30, 2025

Efficient Purification and LC-MS/MS-based Assay Development for Ten-Eleven Translocation-2 5-Methylcytosine Dioxygenase
Published on: October 15, 2018
Concurrent Zrsr2 mutation and Tet2 loss promote myelodysplastic neoplasm in mice
Cristian Garcia-Ruiz1, Cristina Martínez-Valiente1, Lourdes Cordón1,2
1Hematology Research Group, Instituto de Investigación Sanitaria La Fe (IISLAFE), Avda. Fernando Abril Martorell, 106, 46026, Valencia, Spain.
Abstract:
RNA splicing and epigenetic gene mutations are the most frequent genetic lesions found in patients with myelodysplastic neoplasm (MDS). About 25% of patients present concomitant mutations in such pathways, suggesting a cooperative role in MDS pathogenesis. Importantly, mutations in the splicing factor ZRSR2 frequently associate with alterations in the epigenetic regulator TET2. However, the impact of these concurrent mutations in hematopoiesis and MDS remains unclear. Using CRISPR/Cas9 genetically engineered mice, we demonstrate that Zrsr2m/mTet2-/- promote MDS with reduced penetrance. Animals presented peripheral blood cytopenia, splenomegaly, extramedullary hematopoiesis, and multi-lineage dysplasia, signs consistent with MDS. We identified a myelo-erythroid differentiation block accompanied by an expansion of LT-HSC and MPP2 progenitors. Transplanted animals presented a similar phenotype, thus indicating that alterations were cell-autonomous. Whole-transcriptome analysis in HSPC revealed key alterations in ribosome, inflammation, and migration/motility processes. Moreover, we found the MAPK pathway as the most affected target by mRNA aberrant splicing. Collectively, this study shows that concomitant Zrsr2 mutation and Tet2 loss are sufficient to initiate MDS in mice. Understanding this mechanistic interplay will be crucial for the identification of novel therapeutic targets in the spliceosome/epigenetic MDS subgroup.
Insights
Concurrent mutations in RNA splicing factor ZRSR2 and epigenetic regulator TET2 initiate myelodysplastic syndromes (MDS) in mice. This study reveals crucial insights into MDS pathogenesis and potential therapeutic targets.
Area of Science:
- Hematology
- Molecular Biology
- Genetics
Background:
- Myelodysplastic syndromes (MDS) frequently involve RNA splicing and epigenetic gene mutations.
- Concomitant mutations in splicing factor ZRSR2 and epigenetic regulator TET2 are observed in MDS patients, but their combined impact is unclear.
Purpose of the Study:
- To investigate the role of concurrent ZRSR2 and TET2 mutations in hematopoiesis and MDS pathogenesis.
- To elucidate the mechanistic interplay between splicing and epigenetic alterations in MDS initiation.
Main Methods:
- CRISPR/Cas9 genetically engineered mouse models (Zrsr2m/mTet2-/-).
- Analysis of peripheral blood, spleen, and hematopoietic stem and progenitor cells (HSPC).
- Whole-transcriptome analysis and pathway analysis (e.g., MAPK pathway).
Main Results:
- Zrsr2m/mTet2-/- mice exhibit MDS phenotypes, including cytopenia, splenomegaly, and multi-lineage dysplasia.
- A block in myelo-erythroid differentiation and expansion of specific hematopoietic stem cell populations were identified.
- Aberrant mRNA splicing affecting ribosome, inflammation, and migration pathways, with MAPK pathway dysregulation, was observed.
Conclusions:
- Concomitant ZRSR2 mutation and TET2 loss are sufficient to initiate MDS in mice.
- These findings highlight a critical mechanistic interplay relevant to the spliceosome/epigenetic MDS subgroup.
- Understanding this interaction is key for developing novel therapeutic targets for MDS.
Related Concept Videos
The Retinoblastoma Gene
The first-ever tumor suppressor gene called Rb was identified in retinoblastoma - a rare eye tumor in children. In inherited forms of the disease, a child inherits one defective copy of the Rb gene, which predisposes them to retinoblastoma. However,...
Mismatch Repair
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...

