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Updated: May 13, 2026

Defining Gene Functions in Tumorigenesis by Ex vivo Ablation of Floxed Alleles in Malignant Peripheral Nerve Sheath Tumor Cells
Published on: August 25, 2021
Interaction between DMRT1 function and genetic background modulates signaling and pluripotency to control tumor
Anthony D Krentz1, Mark W Murphy, Teng Zhang
1Department of Genetics, Cell Biology, and Development, Developmental Biology Center, and Masonic Cancer Center, University of Minnesota, 6-160 Jackson Laboratory, 321 Church St. SE, Minneapolis, MN 55455, USA.
Abstract:
Dmrt1 (doublesex and mab-3 related transcription factor (1) is a regulator of testis development in vertebrates that has been implicated in testicular germ cell tumors of mouse and human. In the fetal mouse testis Dmrt1 regulates germ cell pluripotency in a strain-dependent manner. Loss of Dmrt1 in 129Sv strain mice results in a >90% incidence of testicular teratomas, tumors consisting cells of multiple germ layers; by contrast, these tumors have never been observed in Dmrt1 mutants of C57BL/6J (B6) or mixed genetic backgrounds. To further investigate the interaction between Dmrt1 and genetic background we compared mRNA expression in wild type and Dmrt1 mutant fetal testes of 129Sv and B6 mice at embryonic day 15.5 (E15.5), prior to overt tumorigenesis. Loss of Dmrt1 caused misexpression of overlapping but distinct sets of mRNAs in the two strains. The mRNAs that were selectively affected included some that changed expression only in one strain or the other and some that changed in both strains but to a greater degree in one versus the other. In particular, loss of Dmrt1 in 129Sv testes caused a more severe failure to silence regulators of pluripotency than in B6 testes. A number of genes misregulated in 129Sv mutant testes also are misregulated in human testicular germ cell tumors (TGCTs), suggesting similar etiology between germ cell tumors in mouse and man. Expression profiling showed that DMRT1 also regulates pluripotency genes in the fetal ovary, although Dmrt1 mutant females do not develop teratomas. Pathway analysis indicated disruption of several signaling pathways in Dmrt1 mutant fetal testes, including Nodal, Notch, and GDNF. We used a Nanos3-cre knock-in allele to perform conditional gene targeting, testing the GDNF coreceptors Gfra1 and Ret for effects on teratoma susceptibility. Conditional deletion of Gfra1 but not Ret in fetal germ cells of animals outcrossed to 129Sv caused a modest but significant elevation in tumor incidence. Despite some variability in genetic background in these crosses, this result is consistent with previous genetic mapping of teratoma susceptibility loci to the region containing Gfra1. Using Nanos3-cre we also uncovered a strong genetic interaction between Dmrt1 and Nanos3, suggesting parallel functions for these two genes in fetal germ cells. Finally, we used chromatin immunoprecipitation (ChIP-seq) analysis to identify a number of potentially direct DMRT1 targets. This analysis suggested that DMRT1 controls pluripotency via transcriptional repression of Esrrb, Nr5a2/Lrh1, and Sox2. Given the strong evidence for involvement of DMRT1 in human TGCT, the downstream genes and pathways identified in this study provide potentially useful candidates for roles in the human disease.
Insights
Dmrt1 (doublesex and mab-3 related transcription factor 1) regulates germ cell pluripotency, with its loss causing testicular teratomas in specific mouse strains. This study identifies key genes and pathways involved, offering insights into human testicular germ cell tumors.
Area of Science:
- Developmental Biology
- Genetics
- Cancer Biology
Background:
- Dmrt1 (doublesex and mab-3 related transcription factor 1) is crucial for vertebrate testis development and linked to testicular germ cell tumors (TGCTs).
- Dmrt1's role in regulating germ cell pluripotency is strain-dependent, with loss leading to teratomas in 129Sv mice but not C57BL/6J mice.
- Understanding the genetic background's influence on Dmrt1 function is key to elucidating TGCT development.
Purpose of the Study:
- To investigate the interaction between Dmrt1 and genetic background in regulating germ cell pluripotency and teratoma formation.
- To identify downstream genes and pathways affected by Dmrt1 loss in fetal testes.
- To explore the role of Dmrt1 in regulating pluripotency genes in both fetal testes and ovaries.
Main Methods:
- Comparative mRNA expression profiling of wild-type and Dmrt1 mutant fetal testes from 129Sv and C57BL/6J mice at embryonic day 15.5.
- Pathway analysis to identify disrupted signaling pathways.
- Conditional gene targeting using Nanos3-cre to assess the roles of GDNF coreceptors (Gfra1, Ret) and genetic interactions.
- Chromatin immunoprecipitation sequencing (ChIP-seq) to identify direct DMRT1 targets.
Main Results:
- Loss of Dmrt1 caused distinct and overlapping misexpression of mRNAs in 129Sv and C57BL/6J fetal testes, with a more severe failure to silence pluripotency regulators in 129Sv mice.
- Genes misregulated in 129Sv Dmrt1 mutants are also implicated in human TGCTs.
- Conditional deletion of Gfra1, but not Ret, in fetal germ cells elevated teratoma incidence in a 129Sv background.
- A strong genetic interaction between Dmrt1 and Nanos3 was observed.
- DMRT1 directly represses pluripotency genes including Esrrb, Nr5a2/Lrh1, and Sox2.
Conclusions:
- Genetic background significantly modulates Dmrt1's effect on germ cell pluripotency and teratoma susceptibility.
- Dmrt1 regulates pluripotency genes in both fetal testes and ovaries, though teratomas only form in males.
- The identified downstream genes and pathways provide potential targets for understanding and treating human TGCTs.
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