ALK4 functions as a receptor for multiple TGF beta-related ligands to regulate left-right axis determination and

Yumei Chen1, Ekaterina Mironova, Lisha L Whitaker

  • 1Department of Cell Biology and Anatomy, Medical University of South Carolina, Charleston, SC 29425, USA.

Developmental Biology
|April 6, 2004
PubMed

Insights

Activin-like kinase 4 (ALK4) signaling is crucial for left-right (LR) axis determination in Xenopus embryos. While Vg1, Xnr1, and derriere TGF-betas interact with ALK4, only Vg1 requires it for LR asymmetry, revealing distinct pathway uses.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Transforming growth factor-beta (TGF-β) signaling pathways play critical roles in embryonic development.
  • Left-right (LR) axis determination is a fundamental process ensuring proper organ positioning.
  • Previous studies in Xenopus suggested TGF-β ligands might be involved in LR axis determination, but the specific ligands and receptors were unknown.

Purpose of the Study:

  • To investigate the role of activin-like kinase 4 (ALK4) in Xenopus left-right (LR) axis determination.
  • To identify which TGF-β ligands utilize the ALK4 pathway for LR development.
  • To elucidate the differential roles of ALK4 and its ligands in embryonic patterning.

Main Methods:

  • Ectopic expression of constitutively active ALK4 and dominant-negative ALK4 (DN-ALK4) in Xenopus embryos.
  • Utilizing antisense morpholinos to inhibit ALK4 function.
  • Biochemical assays (co-immunoprecipitation) to assess ligand-receptor interactions.
  • Functional assays to evaluate the impact of ALK4 signaling on LR organ situs and Pitx2 expression.

Main Results:

  • Right-side expression of active ALK4 caused LR organ reversals and altered Pitx2 expression.
  • Left-side inhibition of ALK4 signaling (DN-ALK4 or morpholino) resulted in abnormal embryonic situs.
  • ALK4 interacted with Vg1, Xnr1, and derriere, but only Vg1-mediated LR asymmetry required functional ALK4.
  • DN-ALK4 attenuated AVg-induced LR defects but not those induced by Xnr1 or derriere.
  • At high concentrations, TGF-β ligands induced primary axis defects, which were blocked by DN-ALK4, indicating a role in mesoderm induction.

Conclusions:

  • ALK4 signaling is essential for establishing the left-right axis in Xenopus embryos.
  • Vg1 differentially utilizes the ALK4 pathway for LR axis determination compared to Xnr1 and derriere.
  • ALK4 and its ligands play distinct roles in both LR axis determination and mesoderm induction during early embryonic patterning.

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