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Outeda, P.

Publications and source records attributed to Outeda, P..

3 recordsLinked to original sources

PKD2 structural destabilization drives primary cilia degeneration and ADPKD pathogenicity.

Abstract/SummaryHuman variants in renal polycystins (PKD1, PKD2) are responsible for most forms of autosomal dominant polycystic kidney disease (ADPKD), a common genetic disorder without curative drug treatment. Renal polycystins form ion channels in primary cilia, but our understanding of their molecular dysregulation caused by disease-associated variants is limited. Using cryo-electron microscopy (cryo-EM), primary cilia electrophysiology and super-resolution analysis, we investigated the mechanistic impact and pathogenic potential of the disease-associated PKD2 missense variant (D511V) located within the channels voltage sensor domain (VSD). Our findings define how this mutation neutralizes critical transmembrane charge interactions, which attenuates PKD2 protein stability resulting in abolished ciliary channel trafficking and function in membranes. To assess the pathogenic effect of this variant in vivo, we generated novel mouse strains carrying the analogous PKD2 mutation in combination with a conditional floxed allele (Pkd2D509V/fl) that exhibit renal tubule primary cilia degeneration and develop rapid renal cysts. Our results establish a clear direct correlation between the in vitro molecular dysfunction and phenotypic in vivo consequences while providing a valuable tool to evaluate ADPKD therapeutic interventions. Translational StatementADPKD is a genetic kidney disorder affecting millions of patients globally and is primarily caused by variants in renal polycystin genes (PKD1, PKD2). Polycystins function as ion channel subunits in primary cilia but the mechanistic impact and cystogenic propensity of disease-associated variants remain poorly defined. The authors employ advanced methodologies including cryo-EM to uncover distinct structurally destabilizing effects of a human PKD2 mutation, while generating a new mouse model which genetically expresses the same variant and recapitulates the human disease. The findings define primary cilia degeneration results from PKD2 hypostasis and establish new tools to assess ADPKD therapies. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=107 SRC="FIGDIR/small/734313v1_ufig1.gif" ALT="Figure 1"> View larger version (50K): org.highwire.dtl.DTLVardef@1cd02ceorg.highwire.dtl.DTLVardef@73410eorg.highwire.dtl.DTLVardef@b40691org.highwire.dtl.DTLVardef@11b5a93_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

SFPQ-TFE3 gene fusion reciprocally regulates mTORC1 activity and induces lineage plasticity in a novel mouse model of renal tumorigenesis

The MiT/TFE family gene fusion proteins, such as SFPQ-TFE3, drive both epithelial (eg, translocation renal cell carcinoma, tRCC) and mesenchymal (eg, perivascular epithelioid cell tumor, PEComa) neoplasms with aggressive behavior. However, no prior mouse models for SFPQ-TFE3-related tumors exist and the mechanisms of lineage plasticity induced by this fusion remain unclear. Here, we demonstrate that constitutive murine renal expression of human SFPQ-TFE3 using Ksp Cadherin-Cre as a driver disrupts kidney development leading to early neonatal renal failure and death. In contrast, post-natal induction of SFPQ-TFE3 in renal tubular epithelial cells using Pax8 ERT-Cre induces infiltrative epithelioid tumors, which morphologically and transcriptionally resemble human PEComas. As seen in MiT/TFE fusion-driven human tumors, SFPQ-TFE3 expression is accompanied by the strong induction of mTORC1 signaling, which is partially amino acid-sensitive and dependent on increased SFPQ-TFE3-mediated RRAGC/D transcription. Remarkably, SFPQ-TFE3 expression is sufficient to induce lineage plasticity in renal tubular epithelial cells, with rapid down-regulation of the critical PAX2/PAX8 nephric lineage factors and tubular epithelial markers, and concomitant up-regulation of PEComa differentiation markers in transgenic mice, human cell line models and human tRCC. Pharmacologic or genetic inhibition of mTOR signaling downregulates expression of the SFPQ-TFE3 fusion protein and rescues nephric lineage marker expression and transcriptional activity in vitro. These data provide evidence of a potential epithelial cell-of-origin for TFE3-driven PEComas and highlight a reciprocal role for SFPQ-TFE3 and mTOR in driving lineage plasticity in the kidney, expanding our understanding of the pathogenesis of MiT/TFE-driven tumors.

cancer biology↗

Multi-omics profiling of mouse polycystic kidney disease progression at a single cell resolution

Autosomal dominant polycystic kidney disease (ADPKD) is the most common hereditary kidney disease and causes significant morbidity, ultimately leading to end-stage kidney disease. PKD pathogenesis is characterized by complex and dynamic alterations in multiple cell types during disease progression, hampering a deeper understanding of disease mechanism and the development of therapeutic approaches. Here, we generate a single nucleus multimodal atlas of an orthologous mouse PKD model at early, mid and late timepoints, consisting of 125,434 single-nucleus transcriptomic and epigenetic multiomes. We catalogue differentially expressed genes and activated epigenetic regions in each cell type during PKD progression, characterizing cell-type-specific responses to Pkd1 deletion. We describe heterogeneous, atypical collecting duct cells as well as proximal tubular cells that constitute cyst epithelia in PKD. The transcriptional regulation of the cyst lining cell marker GPRC5A is conserved between mouse and human PKD cystic epithelia, suggesting shared gene regulatory pathways. Our single nucleus multiomic analysis of mouse PKD provides a foundation to understand the earliest changes molecular deregulation in a mouse model of PKD at a single-cell resolution.

genomics↗