Related Experiment Video
Updated: Sep 23, 2025

Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
Functional, structural, and molecular characterizations of the leukemogenic driver MEF2D-HNRNPUL1 fusion
Ming Zhang1, Hao Zhang1, Zhihui Li1
1Shanghai Institute of Hematology, State Key Laboratory of Medical Genomics, National Research Center for Translational Medicine at Shanghai, Ruijin Hospital, Shanghai JiaoTong University School of Medicine and School of Life Sciences and Biotechnology, Shanghai JiaoTong University, Shanghai, China.
Abstract:
Recurrent MEF2D fusions with poor prognosis have been identified in B-cell precursor ALL (BCP-ALL). The molecular mechanisms underlying the pathogenic function of MEF2D fusions are poorly understood. Here, we show that MEF2D-HNRNPUL1 (MH) knock-in mice developed a progressive disease from impaired B-cell development at the pre-pro-B stage to pre-leukemia over 10 to 12 months. When cooperating with NRASG12D, MH drove an outbreak of BCP-ALL, with a more aggressive phenotype than the NRASG12D-induced leukemia. RNA-sequencing identified key networks involved in disease mechanisms. In chromatin immunoprecipitation-sequencing experiments, MH acquired increased chromatin-binding ability, mostly through MEF2D-responsive element (MRE) motifs in target genes, compared with wild-type MEF2D. Using X-ray crystallography, the MEF2D-MRE complex was characterized in atomic resolution, whereas disrupting the MH-DNA interaction alleviated the aberrant target gene expression and the B-cell differentiation arrest. The C-terminal moiety (HNRNPUL1 part) of MH was proven to contribute to the fusion protein's trans-regulatory activity, cofactor recruitment, and homodimerization. Furthermore, targeting MH-driven transactivation of the HDAC family by using the histone deacetylase inhibitor panobinostat in combination with chemotherapy improved the overall survival of MH/NRASG12D BCP-ALL mice. Altogether, these results not only highlight MH as an important driver in leukemogenesis but also provoke targeted intervention against BCP-ALL with MEF2D fusions.
Insights
MEF2D-HNRNPUL1 fusions drive B-cell precursor acute lymphoblastic leukemia (BCP-ALL) by altering gene expression and B-cell development. Targeting these fusions with therapies like panobinostat shows promise for treating this aggressive leukemia.
Area of Science:
- Hematology
- Molecular Biology
- Oncology
Background:
- Recurrent MEF2D fusions are linked to poor prognosis in B-cell precursor acute lymphoblastic leukemia (BCP-ALL).
- The pathogenic mechanisms of MEF2D fusions in BCP-ALL remain largely unknown.
Purpose of the Study:
- To elucidate the molecular mechanisms of MEF2D-HNRNPUL1 (MH) fusion in BCP-ALL pathogenesis.
- To investigate therapeutic strategies targeting MH-driven BCP-ALL.
Main Methods:
- Generation of MEF2D-HNRNPUL1 (MH) knock-in mouse models.
- RNA-sequencing and chromatin immunoprecipitation-sequencing (ChIP-seq) for molecular profiling.
- X-ray crystallography to determine protein-DNA complex structure.
- In vivo therapeutic intervention using panobinostat and chemotherapy.
Main Results:
- MH knock-in mice developed progressive B-cell developmental impairment and pre-leukemia.
- MH cooperated with NRASG12D to drive aggressive BCP-ALL, surpassing NRASG12D-induced leukemia.
- MH demonstrated enhanced chromatin binding via MEF2D-responsive elements (MREs), disrupting B-cell differentiation.
- Disrupting the MH-DNA interaction and targeting HDACs with panobinostat improved survival in MH/NRASG12D BCP-ALL mice.
Conclusions:
- MEF2D-HNRNPUL1 is a key driver in BCP-ALL leukemogenesis.
- MH fusion protein's aberrant transactivation and DNA binding are critical for disease progression.
- Targeting MEF2D fusions, particularly through HDAC inhibition, offers a potential therapeutic avenue for BCP-ALL.
More Related Videos
Related Concept Videos
Master Transcription Regulators
Abnormal Proliferation

