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Updated: Jan 28, 2026

FACS-Isolation and Culture of Fibro-Adipogenic Progenitors and Muscle Stem Cells from Unperturbed and Injured Mouse Skeletal Muscle
Published on: June 8, 2022
Coordinated action of Axin1 and Axin2 suppresses β-catenin to regulate muscle stem cell function
Nicolas Figeac1, Peter S Zammit1
1King's College London, Randall Division of Cell & Molecular Biophysics, New Hunt's House, Guy's Campus, United Kingdom.
Abstract:
The resident stem cells of skeletal muscle are satellite cells, which are regulated by both canonical and non-canonical Wnt pathways. Canonical Wnt signalling promotes differentiation, and is controlled at many levels, including via Axin1 and Axin2-mediated β-catenin degradation. Axin1 and Axin2 are thought equivalent suppressors of canonical Wnt signalling, although Axin2 is also a Wnt target gene. We show that Axin1 expression was higher in proliferating satellite cells, while Axin2 was up-regulated during differentiation. siRNA-mediated Axin1 knockdown changed cell morphology, suppressed proliferation and promoted myogenic differentiation. Simultaneous knockdown of both Axin1 and β-catenin rescued proliferation and partially, premature differentiation. Surprisingly, retroviral-mediated overexpression of Axin2 was unable to compensate for knockdown of Axin1 in satellite cells, indicating that Axin1 and Axin2 are not fully redundant. Isolated satellite cells from Axin2-null mice also had no major phenotype. However, siRNA-mediated knockdown of Axin1 in Axin2-null cells strongly inhibited proliferation, while inducing differentiation, clear nuclear localisation of β-catenin, up-regulation of canonical Wnt target genes (Axin2, Lef1, Tcf4, Pitx2c and Lgr5) and activation of a TCF reporter construct. Again, concomitant knockdown of Axin1 and β-catenin in Axin2-null satellite cells rescued morphology and proliferation, but only partially prevented precocious differentiation. Thus, Axin1 and Axin2 do not have equivalent functions in satellite cells, but are both involved in repression of Wnt/β-catenin signalling to maintain proliferation and contribute to controlling timely myogenic differentiation.
Insights
Axin1 and Axin2 are key regulators of skeletal muscle satellite cells. This study reveals Axin1, not Axin2, is crucial for maintaining satellite cell proliferation and timely differentiation via Wnt/β-catenin signaling.
Area of Science:
- Muscle stem cell biology
- Cell signaling pathways
- Developmental biology
Background:
- Skeletal muscle satellite cells are resident stem cells crucial for muscle regeneration.
- Canonical Wnt signaling pathways regulate satellite cell differentiation.
- Axin1 and Axin2 are known regulators of β-catenin degradation in Wnt signaling.
Purpose of the Study:
- To investigate the distinct roles of Axin1 and Axin2 in regulating skeletal muscle satellite cell function.
- To determine if Axin1 and Axin2 have redundant functions in satellite cells.
- To elucidate the impact of Axin1 and Axin2 on satellite cell proliferation and differentiation.
Main Methods:
- ব্যবহার of siRNA-mediated knockdown to reduce Axin1 and Axin2 expression.
- Utilizing Axin2-null mice to study Axin1 function in the absence of Axin2.
- Overexpression studies using retroviral vectors.
- Analysis of β-catenin localization, cell morphology, proliferation, and myogenic differentiation markers.
Main Results:
- Axin1 expression is higher in proliferating satellite cells, while Axin2 increases during differentiation.
- Axin1 knockdown inhibits proliferation and promotes differentiation, while Axin2 overexpression cannot rescue Axin1 loss.
- Axin1 plays a critical, non-redundant role in repressing Wnt/β-catenin signaling to maintain satellite cell proliferation and control differentiation timing.
Conclusions:
- Axin1 and Axin2 possess distinct, non-redundant functions in skeletal muscle satellite cells.
- Axin1 is essential for maintaining satellite cell proliferation and regulating the timing of myogenic differentiation.
- Both Axin1 and Axin2 contribute to the repression of Wnt/β-catenin signaling, but Axin1 has a dominant role in proliferation maintenance.
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