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Dehghani-Ghobadi, Z.

Publications and source records attributed to Dehghani-Ghobadi, Z..

4 recordsLinked to original sources

HNF4A maintains proximal tubule identity and limits injury-associated cell states in the adult mouse kidney

Introduction: HNF4A is required for proximal tubule maturation during kidney development, but its role in maintaining proximal tubule identity in the adult kidney has not been defined. Following acute kidney injury, Hnf4a expression is rapidly suppressed in proximal tubule cells, coinciding with loss of mature epithelial features and activation of injury-associated transcriptional programs. It remains unknown whether HNF4A loss is sufficient to drive injury-associated transcriptional changes. Methods: We conditionally deleted Hnf4a in mature proximal tubules using Slc34a1Cre in mice and analyzed the consequences of Hnf4a loss in adult kidneys. To identify genes directly regulated by HNF4A, we performed proximal tubule-specific transcriptional profiling together with genome-wide mapping of HNF4A binding sites using CUT&RUN. Results: In Hnf4a mutant kidneys, HNF4A protein initially persisted in proximal tubules but was progressively lost from convoluted proximal tubule cells. Loss of Hnf4a resulted in downregulation of proximal tubule-specific transport and metabolic genes, accompanied by reactivation of developmental and injury-associated genes. CUT&RUN analysis revealed that HNF4A directly regulates genes predominantly involved in solute transport and metabolic processes. Conclusions: These findings identify HNF4A as a key regulator of proximal tubule identity and homeostasis in the adult mouse kidney. Genetic loss of Hnf4a in mature proximal tubules leads to loss of mature proximal tubule gene expression and activation of injury-associated transcriptional programs, implicating Hnf4a suppression as a potential contributor to maladaptive repair after kidney injury.

developmental biology↗

Loss of Hnf1b in differentiated proximal tubule cells uncovers nephron segment plasticity

HNF1B is a transcription factor required for proximal tubule (PT) specification during kidney development, but whether it is also required to maintain PT identity after differentiation remains unknown. Using PT-specific genetic deletion in mice, we found that loss of Hnf1b in differentiated PT cells causes cyst formation and early postnatal lethality. PT-specific transcriptomic analysis revealed downregulation of PT-specific gene programs, including Hnf4a and PT-enriched transport and metabolic genes. Strikingly, Hnf1b-deficient PT cells ectopically activated podocyte-specific genes, including Wt1 and Nphs1, demonstrating that PT cells retain the capacity to engage alternative nephron segment programs when identity-stabilizing mechanisms are disrupted. In addition, loss of Hnf1b disrupted epithelial integrity, as evidenced by reduced epithelial adhesion gene expression and induction of mesenchymal markers. Wnt/{beta}-catenin signaling was also aberrantly activated, suggesting broader dysregulation of epithelial homeostasis. These findings establish HNF1B as a critical post-specification regulator of PT identity that sustains PT-specific transcriptional programs and actively suppresses alternative segmental identity programs.

developmental biology↗

A knock-in Six2Cre line reveals transient interstitial potential in nephron progenitors

The developmental relationship between nephron progenitors and the renal interstitium remains unresolved, in part due to limitations of existing lineage tracing tools. The widely used transgenic Six2TGC line, which is routinely employed to target the nephron lineage, exhibits mosaic recombination and altered progenitor dynamics. To overcome these shortcomings, we generate a knock-in Six2Cre mouse allele that faithfully recapitulates endogenous Six2 expression, preserves nephron endowment, and achieves near-complete, non-mosaic recombination. Side-by-side lineage tracing with Six2Cre and Six2TGC, combined with RNA velocity analysis of single-cell RNA-sequencing datasets, reveals a brief interval around embryonic day 11 during which Six2-expressing mesenchymal nephron progenitors contribute to the renal interstitium. This contribution is transient and stage-restricted. These findings reveal an early dual potential within nephron progenitors and define a precise developmental window for dissecting mechanisms that coordinate nephron-interstitium integration.

developmental biology↗

Constitutive Yap activation in distal nephron segments disrupts epithelial identity and nephron patterning

The distal nephron segments play a critical role in maintaining electrolyte balance, yet the mechanisms that preserve epithelial identity and segmental organization within this region remain poorly defined. Yes-associated protein (Yap), a key effector of Hippo signaling, is essential for kidney development, but its function in distal nephron epithelia is unknown. Using a genetic gain-of-function approach to activate Yap selectively in distal nephron segments, we found that sustained Yap activity profoundly disrupts epithelial organization and nephron patterning. Lineage tracing revealed that both distal convoluted tubule and connecting tubule cells originate from Slc12a3-expressing cells, and Yap activation in these segments led to increased proliferation, displacement of lineage-labeled cells beyond expected segment boundaries, and loss of segment-specific gene expression. These changes were accompanied by defects in apicobasal polarity and junctional integrity, consistent with epithelial plasticity. Unexpectedly, Yap activation in distal nephron segments also suppressed proximal tubule gene expression, indicating non-cell-autonomous effects on nephron differentiation. Together, these findings identify Yap as a critical regulator of epithelial identity in the distal nephron segments and reveal a previously unrecognized role for Hippo signaling in coordinating intersegmental organization during kidney development.

developmental biology↗