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Updated: Dec 5, 2025

Using the E1A Minigene Tool to Study mRNA Splicing Changes
Published on: April 22, 2021
Replication stress signaling is a therapeutic target in myelodysplastic syndromes with splicing factor mutations
Johanna Flach1, Johann-Christoph Jann1, Antje Knaflic1
1Department of Hematology and Oncology, Medical Faculty Mannheim of the Heidelberg University, Mannheim.
Abstract:
Somatic mutations in genes coding for splicing factors, e.g. SF3B1, U2AF1, SRSF2, and others are found in approximately 50% of patients with Myelodysplastic Syndromes (MDS). These mutations have been predicted to frequently occur early in the mutational hierarchy of the disease therefore making them particularly attractive potential therapeutic targets. Recent studies in cell lines engineered to carry splicing factor mutations have revealed a strong association with elevated levels of DNA:RNA intermediates (R-loops) and a dependency on proper ATR function. However, data confirming this hypothesis in a representative cohort of primary MDS patient samples have so far been missing. Using CD34+ cells isolated from MDS patients with and without splicing factor mutations as well as healthy controls we show that splicing factor mutation-associated R-loops lead to elevated levels of replication stress and ATR pathway activation. Moreover, splicing factor mutated CD34+ cells are more susceptible to pharmacological inhibition of ATR resulting in elevated levels of DNA damage, cell cycle blockade, and cell death. This can be enhanced by combination treatment with low-dose splicing modulatory compound Pladienolide B. We further confirm the direct association of R-loops and ATR sensitivity with the presence of a splicing factor mutation using lentiviral overexpression of wild-type and mutant SRSF2 P95H in cord blood CD34+ cells. Collectively, our results from n=53 MDS patients identify replication stress and associated ATR signaling to be critical pathophysiological mechanisms in primary MDS CD34+ cells carrying splicing factor mutations, and provide a preclinical rationale for targeting ATR signaling in these patients.
Insights
Somatic mutations in splicing factors in Myelodysplastic Syndromes (MDS) cause DNA:RNA intermediates (R-loops), leading to replication stress. Targeting the ATR pathway shows promise for treating MDS patients with these mutations.
Area of Science:
- Hematology
- Molecular Biology
- Genetics
Background:
- Somatic mutations in splicing factor genes (SF3B1, U2AF1, SRSF2) occur in ~50% of Myelodysplastic Syndromes (MDS) patients.
- These mutations are early events, making them potential therapeutic targets.
- Previous studies linked splicing factor mutations to R-loops and ATR pathway dependency in engineered cell lines.
Purpose of the Study:
- To validate the association between splicing factor mutations, R-loops, and ATR pathway activation in primary MDS patient samples.
- To assess the therapeutic potential of targeting the ATR pathway in MDS with splicing factor mutations.
Main Methods:
- Analysis of CD34+ cells from 53 MDS patients and healthy controls.
- Assessment of R-loops, replication stress, and ATR pathway activation.
- Pharmacological inhibition of ATR and combination therapy with Pladienolide B.
- Lentiviral overexpression of SRSF2 P95H in cord blood CD34+ cells.
Main Results:
- Splicing factor mutations in MDS CD34+ cells correlate with increased R-loops, replication stress, and ATR pathway activation.
- MDS cells with splicing factor mutations exhibit increased sensitivity to ATR inhibition, leading to DNA damage, cell cycle arrest, and apoptosis.
- Combination therapy with Pladienolide B enhanced the effects of ATR inhibition.
- Overexpression of mutant SRSF2 confirmed the direct link between splicing factor mutations, R-loops, and ATR sensitivity.
Conclusions:
- Replication stress and ATR signaling are critical in MDS CD34+ cells with splicing factor mutations.
- Targeting ATR signaling presents a viable preclinical strategy for MDS patients harboring splicing factor mutations.
- Combination therapies may enhance treatment efficacy.
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