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Updated: Feb 3, 2026

Engineering Oncogenic Heterozygous Gain-of-Function Mutations in Human Hematopoietic Stem and Progenitor Cells
Published on: March 10, 2023
Loss or oncogenic mutation of DROSHA impairs kidney development and function, but is not sufficient for Wilms tumor
Philip Kruber1, Oguzhan Angay2, Anja Winkler1
1Theodor-Boveri-Institute/Biocenter, Developmental Biochemistry, Wuerzburg University, Wuerzburg, Germany.
Abstract:
Wilms tumor (WT) is the most common kidney cancer in childhood. Mutations in the microprocessor genes DROSHA and DGCR8 have been identified as putative oncogenic drivers, indicating a critical role of aberrant miRNA processing in WT formation. To characterize the in vivo role of DROSHA mutations during kidney development and their oncogenic potential, we analyzed mouse lines with either a targeted deletion of Drosha or an inducible expression of human DROSHA carrying a tumor-specific E1147K mutation that acts in a dominant negative manner. Both types of mutation induce striking changes in miRNA patterns. Six2-cre mediated deletion of Drosha in nephron progenitors led to perinatal lethality with apoptotic loss of progenitor cells and early termination of nephrogenesis. Mosaic deletions via Wt1-creERT2 resulted in a milder phenotype with viable offspring that developed proteinuria after 2-4 weeks, but no evidence of tumor formation. Activation of the DROSHA-E1147K transgene via Six2-cre, on the other hand, induced a more severe phenotype with apoptosis of progenitor cells, proteinuria and glomerular sclerosis. The severely growth retarded mice died within the first 2 months of life, confirming the predicted dominant-negative effect of DROSHA-E1147K in vivo. While our data underscores the importance of a viable self-renewing progenitor pool for kidney development, there was no evidence of tumor formation through impaired DROSHA function. This suggests that either additional alterations in mitogenic or antiapoptotic pathways are needed for malignant transformation, or premature loss of a susceptible target cell population and early lethality prevent WT formation.
Insights
Wilms tumor research shows that mutations in the microprocessor gene DROSHA disrupt kidney development and miRNA processing. However, impaired DROSHA function alone does not cause Wilms tumor in mice, suggesting other factors are involved.
Area of Science:
- Developmental Biology
- Oncology
- Molecular Genetics
Background:
- Wilms tumor (WT) is the most common pediatric kidney cancer.
- Mutations in microprocessor genes like DROSHA are implicated in WT pathogenesis.
- Aberrant microRNA (miRNA) processing is a key factor in WT formation.
Purpose of the Study:
- To investigate the in vivo role of DROSHA mutations in kidney development.
- To assess the oncogenic potential of DROSHA mutations in a mouse model.
- To understand the impact of impaired miRNA processing on nephrogenesis and WT development.
Main Methods:
- Analysis of mouse lines with targeted Drosha deletion or inducible expression of mutant DROSHA (E1147K).
- Utilized Six2-cre and Wt1-creERT2 systems for spatiotemporal control of gene deletion/expression.
- Evaluated miRNA patterns, progenitor cell apoptosis, nephrogenesis, and tumor formation.
Main Results:
- Drosha deletion in nephron progenitors caused perinatal lethality and loss of progenitor cells.
- Mosaic Drosha deletion led to proteinuria but no tumor formation.
- Expression of dominant-negative DROSHA-E1147K induced severe developmental defects, apoptosis, and early lethality, but not WT.
Conclusions:
- A viable, self-renewing progenitor pool is essential for kidney development.
- Impaired DROSHA function alone is insufficient for Wilms tumor initiation in this model.
- Malignant transformation likely requires additional genetic alterations or a different cellular context.
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