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Analysis of Transforming Growth Factor ß Family Cleavage Products Secreted Into the Blastocoele of Xenopus laevis Embryos
Published on: July 21, 2021
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.
Abstract:
In Xenopus, several TGF betas, including nodal-related 1 (Xnr1), derriere, and chimeric forms of Vg1, elicit cardiac and visceral organ left-right (LR) defects when ectopically targeted to right mesendoderm cell lineages, suggesting that LR axis determination may require activity of one or more TGF betas. However, it is not known which, if any, of these ligands is required for LR axis determination, nor is it known which type I TGF beta receptor(s) are involved in mediating left-side TGF beta signaling. We report here that similar to effects of ectopic TGF betas, right-side expression of constitutively active activin-like kinase (ALK) 4 results in LR organ reversals as well as altered Pitx2 expression in the lateral plate mesoderm. Moreover, left-side expression of a kinase-deficient, dominant-negative ALK4 (DN-ALK4) or an ALK4 antisense morpholino also results in abnormal embryonic body situs, demonstrating a left-side requirement for ALK4 signaling. To determine which TGF beta(s) utilize the ALK4 pathway to mediate LR development, biochemical and functional assays were performed using an Activin-Vg1 chimera (AVg), Xnr1, and derriere. Whereas ALK4 can co-immunoprecipitate all of these TGF betas, including endogenous Vg1 protein from embryo homogenates, functional assays demonstrate that not all of these ligands require an intact ALK4 signaling pathway to modulate LR asymmetry. When AVg and DN-ALK4 are co-expressed, LR defects otherwise induced by AVg alone are attenuated by DN-ALK4; however, when functional assays are performed with Xnr1 or derriere, LR defects otherwise elicited by these ligands alone still occur in the presence of DN-ALK4. Intriguingly, when any of these TGF betas is expressed at a higher concentration to elicit primary axis defects, DN-ALK4 blocks gastrulation and dorsoanterior/ventroposterior defects that otherwise occur following ligand-only expression. Together, these results suggest not only that ALK4 interacts with multiple TGF betas to generate embryonic pattern, but also that ALK4 ligands differentially utilize the ALK4 pathway to regulate distinct aspects of axial pattern, with Vg1 as a modulator of ALK4 function in LR axis determination and Vg1, Xnr1, and derriere as modulators of ALK4 function in mesoderm induction during primary axis formation.
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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