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Published on: September 11, 2013
Deciphering the Impact of AKT1 Pathogenic Variants in Juvenile Granulosa Cell Tumors Using a Drosophila Model
Reiner A Veitia1, Laetitia Herman2, Bérangère Legois2
1Université Paris Cité, CNRS, Institut Jacques Monod, Paris, France; UniversitéParis Saclay, Saclay, France; Institut de Biologie François Jacob, CEA, Fontenay-aux-Roses, France.
Abstract:
Juvenile-type granulosa cell tumors (JGCTs) manifest during the prepubertal period as precocious pseudo-puberty and/or dysmenorrhea. We have previously identified pathogenic variants in AKT1 in JGCTs. This study aims to understand how these variants affect cellular function at the phenotypic and molecular levels using a Drosophila model. Transgenic Drosophila models expressing WT AKT1 and four pathogenic variants were created under the control of tissue-specific promoters. Phenotypic effects were studied by assessing Drosophila wings for cell division and growth using wing surface and trichome density and ovarian follicular cells were examined for subcellular localization and morphology. Molecular analyses included mass spectrometry to identify differentially expressed proteins (DEPs) and phospho-peptides, along with RNA-Seq to characterize transcriptomic changes. Wings expressing mutated AKT1 showed increased surface area and reduced trichome density, indicating larger cells. In ovarian follicular cells, WT AKT1 localized primarily to the cytoplasm, while mutated AKT1 variants were associated with the plasma membrane, leading to morphological abnormalities and increased cell size. Mass spectrometry revealed numerous DEPs and phospho-peptides, highlighting changes in pathways such as glycolysis and Rho GTPase signaling. Transcriptomics demonstrated a clear gain of function for mutated AKT1 in activating a subset of genes. However, several genes upregulated by WT AKT1 were less effectively activated by the mutants, indicating a potential loss-of-function in transcriptional regulation for this subset, revealing an unexpected mechanistic complexity. Network analysis of interactions involving DEPs, phosphorylated proteins, and transcription factors suggests these elements mediate the observed proteomic and transcriptional alterations. Taken together, the results underscore the utility of Drosophila models in unraveling the biological relevance of AKT1 pathogenic variants in cancer.
Insights
Pathogenic AKT1 variants drive juvenile-type granulosa cell tumors (JGCTs) by altering cell growth and localization. A Drosophila model revealed complex AKT1 gain- and loss-of-function effects impacting cellular pathways.
Area of Science:
- Oncology
- Genetics
- Cell Biology
Background:
- Juvenile-type granulosa cell tumors (JGCTs) are linked to pathogenic variants in AKT1.
- Understanding AKT1 variant effects is crucial for cancer research.
Purpose of the Study:
- To investigate the phenotypic and molecular impact of AKT1 variants in JGCTs using a Drosophila model.
- To elucidate the cellular mechanisms underlying AKT1-driven tumorigenesis.
Main Methods:
- Generated transgenic Drosophila expressing wild-type (WT) and mutant AKT1.
- Assessed wing cell size and morphology.
- Analyzed ovarian follicular cell localization and abnormalities.
- Performed mass spectrometry for proteomic analysis (DEPs, phospho-peptides).
- Conducted RNA-Seq for transcriptomic profiling.
Main Results:
- Mutant AKT1 wings showed increased cell size and reduced trichome density.
- Mutant AKT1 localized to the plasma membrane in ovarian cells, causing abnormalities.
- Proteomic analysis identified altered glycolysis and Rho GTPase signaling pathways.
- Transcriptomic analysis revealed both gain-of-function and unexpected loss-of-function effects of mutant AKT1.
Conclusions:
- Drosophila models effectively reveal the biological relevance of AKT1 pathogenic variants in cancer.
- AKT1 variants exhibit complex functional alterations impacting cellular processes and gene expression.
- These findings provide insights into the molecular basis of JGCTs.

