Related Experiment Video
Updated: Jul 13, 2025

Analyzing Satellite Cell Function During Skeletal Muscle Regeneration by Cardiotoxin Injury and Injection of Self-delivering siRNA In Vivo
Published on: September 18, 2019
Pax7 haploinsufficiency impairs muscle stem cell function in Cre-recombinase mice and underscores the importance of
Despoina Mademtzoglou1, Perla Geara1, Philippos Mourikis1
1Univ Paris Est Creteil, INSERM, IMRB, F-94010, Creteil, France.
Abstract:
Ever since its introduction as a genetic tool, the Cre-lox system has been widely used for molecular genetic studies in vivo in the context of health and disease, as it allows time- and cell-specific gene modifications. However, insertion of the Cre-recombinase cassette in the gene of interest can alter transcription, protein expression, or function, either directly, by modifying the landscape of the locus, or indirectly, due to the lack of genetic compensation or by indirect impairment of the non-targeted allele. This is sometimes the case when Cre-lox is used for muscle stem cell studies. Muscle stem cells are required for skeletal muscle growth, regeneration and to delay muscle disease progression, hence providing an attractive model for stem cell research. Since the transcription factor Pax7 is specifically expressed in all muscle stem cells, tamoxifen-inducible Cre cassettes (CreERT2) have been inserted into this locus by different groups to allow targeted gene recombination. Here we compare the two Pax7-CreERT2 mouse lines that are mainly used to evaluate muscle regeneration and development of pathological features upon deletion of specific factors or pathways. We applied diverse commonly used tamoxifen schemes of CreERT2 activation, and we analyzed muscle repair after cardiotoxin-induced injury. We show that consistently the Pax7-CreERT2 allele targeted into the Pax7 coding sequence (knock-in/knock-out allele) produces an inherent defect in regeneration, manifested as delayed post-injury repair and reduction in muscle stem cell numbers. In genetic ablation studies lacking proper controls, this inherent defect could be misinterpreted as being provoked by the deletion of the factor of interest. Instead, using an alternative Pax7-CreERT2 allele that maintains bi-allelic Pax7 expression or including appropriate controls can prevent misinterpretation of experimental data. The findings presented here can guide researchers establish appropriate experimental design for muscle stem cell genetic studies.
Insights
The Cre-lox system can cause unintended defects in muscle stem cell regeneration when inserted into the Pax7 gene. Researchers should use alternative mouse lines or proper controls to avoid misinterpreting results in muscle regeneration studies.
Area of Science:
- Molecular Biology
- Developmental Biology
- Stem Cell Biology
Background:
- The Cre-lox system enables precise genetic modifications in vivo, crucial for studying health and disease.
- Muscle stem cells are vital for skeletal muscle repair and disease delay, making them a key research model.
- Pax7 is a specific marker for muscle stem cells, leading to the development of Pax7-CreERT2 mouse lines for targeted gene manipulation.
Discussion:
- Insertion of Cre-recombinase cassettes can inadvertently affect gene expression and function.
- Two commonly used Pax7-CreERT2 mouse lines were compared for their impact on muscle regeneration.
- The study investigated various tamoxifen induction schemes and their effects on muscle repair post-injury.
Key Insights:
- The Pax7-CreERT2 allele targeted into the Pax7 coding sequence inherently impairs muscle regeneration, causing delayed repair and reduced stem cell numbers.
- This inherent defect can be mistakenly attributed to the experimental gene deletion if proper controls are absent.
- Alternative Pax7-CreERT2 alleles maintaining bi-allelic Pax7 expression or rigorous controls are essential to prevent data misinterpretation.
Outlook:
- Findings guide the establishment of robust experimental designs for muscle stem cell genetic studies.
- Promotes accurate evaluation of gene function in muscle regeneration and disease models.
- Enhances the reliability of Cre-lox system applications in stem cell research.
Related Concept Videos
Satellite Stem Cells and Muscular Dystrophy
Abnormal Proliferation

