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Published on: June 17, 2014
Nkd1 functions downstream of Axin2 to attenuate Wnt signaling
Ian Bell1, Haider Khan1, Nathan Stutt2
1Department of Molecular and Cellular Biology, University of Guelph, Guelph, N1G 2W1 Ontario, Canada.
Abstract:
Wnt signaling is a crucial developmental pathway involved in early development as well as stem-cell maintenance in adults and its misregulation leads to numerous diseases. Thus, understanding the regulation of this pathway becomes vitally important. Axin2 and Nkd1 are widely utilized negative feedback regulators in Wnt signaling where Axin2 functions to destabilize cytoplasmic β-catenin, and Nkd1 functions to inhibit the nuclear localization of β-catenin. Here, we set out to further understand how Axin2 and Nkd1 regulate Wnt signaling by creating axin2, nkd1 single mutants and axin2 double mutant zebrafish using sgRNA/Cas9. All three Wnt regulator mutants were viable and had impaired heart looping, neuromast migration defects, and behavior abnormalities in common, but there were no signs of synergy in the axin2 double mutants. Further, Wnt target gene expression by qRT-PCR and RNA-seq, and protein expression by mass spectrometry demonstrated that the double axin2 mutant resembled the nkd1 phenotype demonstrating that Nkd1 functions downstream of Axin2. In support of this, the data further demonstrates that Axin2 uniquely alters the properties of β-catenin-dependent transcription having novel readouts of Wnt activity compared with nkd1 or the axin2 double mutant. We also investigated the sensitivity of the Wnt regulator mutants to exacerbated Wnt signaling, where the single mutants displayed characteristic heightened Wnt sensitivity, resulting in an eyeless phenotype. Surprisingly, this phenotype was rescued in the double mutant, where we speculate that cross-talk between Wnt/β-catenin and Wnt/Planar Cell Polarity pathways could lead to altered Wnt signaling in some scenarios. Collectively, the data emphasizes both the commonality and the complexity in the feedback regulation of Wnt signaling.
Insights
This study reveals how Axin2 and Nkd1 regulate Wnt signaling. Zebrafish mutants showed Nkd1 acts downstream of Axin2, with Axin2 uniquely impacting Wnt activity and double mutants rescuing an eyeless phenotype.
Area of Science:
- Developmental Biology
- Molecular Biology
- Genetics
Background:
- Wnt signaling is vital for development and adult stem cell maintenance.
- Misregulation of Wnt signaling contributes to various diseases.
- Axin2 and Nkd1 are key negative feedback regulators of Wnt signaling.
Purpose of the Study:
- To elucidate the regulatory roles of Axin2 and Nkd1 in Wnt signaling.
- To investigate the functional relationship between Axin2 and Nkd1.
- To characterize Wnt signaling dynamics in zebrafish mutants.
Main Methods:
- Generation of axin2 and nkd1 single and double mutant zebrafish using sgRNA/Cas9.
- Phenotypic analysis including heart looping, neuromast migration, and behavior.
- Gene and protein expression analysis via qRT-PCR, RNA-seq, and mass spectrometry.
Main Results:
- All mutants exhibited common defects (heart looping, neuromast migration, behavior) without synergy in double mutants.
- Axin2 double mutants phenocopied nkd1 mutants, indicating Nkd1 acts downstream of Axin2.
- Axin2 uniquely modulated Wnt target gene transcription, distinct from nkd1 or double mutants.
- Single mutants showed heightened Wnt sensitivity (eyeless phenotype), surprisingly rescued in double mutants.
Conclusions:
- Nkd1 functions downstream of Axin2 in Wnt signaling regulation.
- Axin2 possesses unique regulatory functions on Wnt/β-catenin activity.
- Potential cross-talk between Wnt/β-catenin and Wnt/Planar Cell Polarity pathways influences Wnt signaling outcomes.
- Feedback regulation of Wnt signaling is complex and involves intricate interactions.
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