Wt1a, Foxc1a, and the Notch mediator Rbpj physically interact and regulate the formation of podocytes in zebrafish

Lori L O'Brien1, Michael Grimaldi, Zachary Kostun

  • 1Center for Regenerative Medicine and Department of Medicine, Massachusetts General Hospital, Harvard Medical School and Harvard Stem Cell Institute, Boston, MA 02114, USA.

Developmental Biology
|August 30, 2011
PubMed

Insights

Wilms' tumor suppressor-1 (Wt1), FoxC1/2, and Notch signaling physically interact to regulate kidney podocyte development. These transcription factors converge on common genes, crucial for forming the glomerular filtration barrier and preventing renal disease.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Nephrology

Background:

  • Podocytes are vital for kidney filtration; their dysfunction causes renal disease.
  • Wt1, FoxC1/2, and Notch signaling are known regulators of podocyte development.
  • The precise interplay between these factors in podocyte fate determination remains unclear.

Purpose of the Study:

  • To investigate the functional interactions between Wt1, FoxC1/2, and Notch signaling in zebrafish podocyte development.
  • To determine if these factors act independently or as a complex on shared gene targets.
  • To elucidate the transcriptional circuitry governing podocyte formation.

Main Methods:

  • Zebrafish morpholino knockdown of wt1a, foxc1a, and rbpj.
  • Analysis of podocyte markers (wt1b, hey1, nephrin).
  • Biochemical assays: GST-pull-downs, co-immunoprecipitation, and transactivation assays.

Main Results:

  • Knockdown of individual factors reduced podocyte numbers; double knockdown resulted in complete absence.
  • Wt1a, Foxc1a, and Rbpj physically interact, with Rbpj binding to NICD.
  • Synergistic induction of Hey1 and dose-dependent effects on Podocalyxin promoter by Wt1, FoxC1/2, and NICD.

Conclusions:

  • Wt1, FoxC1/2, and Notch signaling converge on common target genes through physical interactions.
  • These factors form a transcriptional complex regulating podocyte-specific gene expression.
  • This study clarifies the molecular mechanisms underlying kidney podocyte development.