Lmx1b and FoxC combinatorially regulate podocin expression in podocytes

Bing He1, Lwaki Ebarasi2, Zhe Zhao3

  • 1Department of Medical Biochemistry and Biophysics, Division of Matrix Biology, and Bing.He@ki.se Karl.Tryggvason@ki.se.

Insights

Transcription factors Lmx1b and FoxC synergistically regulate podocin (NPHS2) gene expression, crucial for kidney podocyte development and glomerular filtration barrier integrity. This discovery offers insights into renal disease mechanisms.

Area of Science:

  • Molecular Biology
  • Genetics
  • Nephrology

Background:

  • Podocin (NPHS2) is vital for kidney podocyte function and glomerular filtration.
  • NPHS2 mutations cause kidney disease by disrupting the filtration barrier.
  • Understanding NPHS2 transcriptional regulation is key to podocyte biology.

Purpose of the Study:

  • To identify regulatory elements controlling zebrafish nphs2 gene expression.
  • To investigate the roles of transcription factors Lmx1b and FoxC in podocyte development.
  • To explore combinatorial transcriptional regulation in podocytes.

Main Methods:

  • Zebrafish Tol2-mediated G0 transgenesis to define nphs2 promoter and enhancer regions.
  • Identification of cis-acting elements and transcription factor binding sites (Lmx1b, FoxC).
  • Morpholino-based knockdown and gene co-overexpression experiments in zebrafish embryos.
  • Genome-wide search for Lmx1b-FoxC motifs and in vivo functional analysis of candidate genes (CCNC, MEIS2).

Main Results:

  • A 49-bp podocyte-specific enhancer containing FLAT-E and forkhead sites was identified.
  • Lmx1b and FoxC directly bind to these sites and synergistically regulate nphs2 expression.
  • Double knockdown of Lmx1b and FoxC severely impaired zebrafish podocyte development.
  • Co-overexpression of Lmx1b and FoxC induced endogenous nphs2 expression.
  • The Lmx1b-FoxC motif is present in promoters of other podocyte-expressed genes, including CCNC and MEIS2.

Conclusions:

  • Podocin (NPHS2) expression is combinatorially regulated by Lmx1b and FoxC through a shared enhancer.
  • These transcription factors play a critical synergistic role in podocyte development and function.
  • This study reveals a novel mechanism of transcriptional control essential for maintaining kidney health and provides insights into renal pathologies.

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