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Updated: Feb 10, 2026

Identification of Skeletal Muscle Satellite Cells by Immunofluorescence with Pax7 and Laminin Antibodies
Published on: April 19, 2018
Castration induces satellite cell activation that contributes to skeletal muscle maintenance
Alanna Klose1, Wenxuan Liu1, Nicole D Paris1
1Department of Orthopaedics and Rehabilitation, Center for Musculoskeletal Research, University of Rochester Medical Center, Rochester, NY USA.
Background:
Sarcopenia, the age-related loss of skeletal muscle, is a side effect of androgen deprivation therapy (ADT) for prostate cancer patients. Resident stem cells of skeletal muscle, satellite cells (SCs), are an essential source of progenitors for the growth and regeneration of skeletal muscle. Decreased androgen signaling and deficits in the number and function of SCs are features of aging. Although androgen signaling is known to regulate skeletal muscle, the cellular basis for ADT-induced exacerbation of sarcopenia is unknown. Furthermore, the consequences of androgen deprivation on SC fate in adult skeletal muscle remain largely unexplored.
Methods:
We examined SC fate in an androgen-deprived environment using immunofluorescence and fluorescence-activated cell sorting (FACS) with SC-specific markers in young castrated mice. To study the effects of androgen deprivation on SC function and skeletal muscle regenerative capacity, young castrated mice were subjected to experimental regenerative paradigms. SC-derived-cell contributions to skeletal muscle maintenance were examined in castrated Pax7 mice. SCs were depleted in Pax7 mice to ascertain the consequences of SC ablation in sham and castrated skeletal muscles. Confocal immunofluorescence analysis of neuromuscular junctions (NMJs), and assessment of skeletal muscle physiology, contractile properties, and integrity were conducted.
Results:
Castration led to SC activation, however this did not result in a decline in SC function or skeletal muscle regenerative capacity. Surprisingly, castration induced SC-dependent maintenance of young skeletal muscle. The functional dependence of skeletal muscles on SCs in young castrated mice was demonstrated by an increase in SC-derived-cell fusion within skeletal muscle fibers. SC depletion was associated with further atrophy and functional decline, as well as the induction of partial innervation and the loss of NMJ-associated myonuclei in skeletal muscles from castrated mice.
Conclusion:
The maintenance of skeletal muscles in young castrated mice relies on the cellular contributions of SCs. Considering the well-described age-related decline in SCs, the results in this study highlight the need to devise strategies that promote SC maintenance and activity to attenuate or reverse the progression of sarcopenia in elderly androgen-deprived individuals.
Insights
Androgen deprivation therapy (ADT) can worsen sarcopenia. This study found that satellite cells (SCs) maintain skeletal muscle in castrated mice, highlighting their importance for combating age-related muscle loss.
Area of Science:
- Muscle physiology
- Stem cell biology
- Androgen signaling
Background:
- Sarcopenia, age-related muscle loss, is exacerbated by androgen deprivation therapy (ADT) in prostate cancer patients.
- Satellite cells (SCs) are crucial for muscle regeneration, but their fate under androgen deprivation is unknown.
- Aging and ADT both impair SC number and function, contributing to sarcopenia.
Purpose of the Study:
- To investigate the cellular mechanisms underlying ADT-induced sarcopenia.
- To determine the role of SCs in maintaining skeletal muscle during androgen deprivation.
- To explore the consequences of androgen deprivation on SC fate and function.
Main Methods:
- Examined SC fate in castrated mice using immunofluorescence and FACS.
- Assessed skeletal muscle regenerative capacity and SC contributions to muscle maintenance.
- Depleted SCs in castrated mice to evaluate the effects of SC ablation on muscle integrity and neuromuscular junctions (NMJs).
Main Results:
- Castration activated SCs but did not impair their function or muscle regeneration.
- Skeletal muscle maintenance in castrated mice became dependent on SCs, evidenced by increased SC-derived cell fusion.
- SC depletion in castrated mice led to further muscle atrophy, functional decline, and NMJ abnormalities.
Conclusions:
- Satellite cells are essential for skeletal muscle maintenance in an androgen-deprived state.
- Strategies promoting SC maintenance and activity are crucial for mitigating sarcopenia in elderly individuals undergoing ADT.
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