TCF3-mediated lysosomal function contributes to muscle stem cell quiescence

Abstract Muscle stem cells (MuSCs) preserve skeletal muscle homeostasis and regeneration by entering a reversible quiescent state. Importantly, quiescence is not a state of transcriptional inactivity but an actively maintained cellular state governed by specialized transcriptional programs. However, the transcription factors that coordinate these programs with intracellular homeostasis remain incompletely understood. Here, we identify the transcription factor 3 (TCF3) as a previously unrecognized regulator of MuSC quiescence and long-term regenerative potential. TCF3 was enriched in quiescent MuSCs and rapidly downregulated upon activation. TCF3 overexpression suppressed proliferation and differentiation and reinforced a quiescence-associated transcriptional program, whereas MuSC-specific TCF3 deletion increased activation propensity. Although acute TCF3 loss accelerated MuSC activation and early repair after a single injury, prolonged deficiency or repeated injury progressively depleted the stem cell pool and compromised regeneration, demonstrating that transient enhancement of activation occurs at the expense of long-term regenerative capacity. Transcriptomic, ATAC-seq, and ChIP-seq analyses further revealed that TCF3 shapes chromatin accessibility and regulates genes involved in stem cell maintenance and lysosomal function. Mechanistically, TCF3 enhanced lysosomal biogenesis and degradative activity, while pharmacological inhibition of lysosomal function partially relieved TCF3-mediated suppression of proliferation. Conversely, upregulation of lysosomal regulator TFEB reduced proliferative and activation-associated features while promoting a quiescence-associated state. Together, these findings establish a TCF3-lysosome regulatory axis that actively safeguards MuSC quiescence, prevents premature stem cell exhaustion, and sustains regenerative competence across repeated tissue injuries. This work provides a framework linking transcriptional control, chromatin state, and organelle homeostasis in quiescent adult stem cells, with potential relevance to muscle aging and regenerative medicine.

Authors

Publication Details

Journal
Cell Death and Disease
Published
2026-10-08
DOI
https://doi.org/10.1038/s41419-026-09347-z
Primary Topic
Muscle Physiology and Disorders
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

TCF3-mediated lysosomal function contributes to muscle stem cell quiescence

Junyi Chen, Heng Wang, Mengyu Wang, Yuanyuan Guo et al.
Cell Death and Disease
Muscle Physiology and Disorders
article

TCF3-mediated lysosomal function contributes to muscle stem cell quiescence

Junyi Chen, Heng Wang, Mengyu Wang, Yuanyuan Guo, Wenxiang Ma, Chao Qi, Pengxiang Zhao
article en

Abstract

Abstract Muscle stem cells (MuSCs) preserve skeletal muscle homeostasis and regeneration by entering a reversible quiescent state. Importantly, quiescence is not a state of transcriptional inactivity but an actively maintained cellular state governed by specialized transcriptional programs. However, the transcription factors that coordinate these programs with intracellular homeostasis remain incompletely understood. Here, we identify the transcription factor 3 (TCF3) as a previously unrecognized regulator of MuSC quiescence and long-term regenerative potential. TCF3 was enriched in quiescent MuSCs and rapidly downregulated upon activation. TCF3 overexpression suppressed proliferation and differentiation and reinforced a quiescence-associated transcriptional program, whereas MuSC-specific TCF3 deletion increased activation propensity. Although acute TCF3 loss accelerated MuSC activation and early repair after a single injury, prolonged deficiency or repeated injury progressively depleted the stem cell pool and compromised regeneration, demonstrating that transient enhancement of activation occurs at the expense of long-term regenerative capacity. Transcriptomic, ATAC-seq, and ChIP-seq analyses further revealed that TCF3 shapes chromatin accessibility and regulates genes involved in stem cell maintenance and lysosomal function. Mechanistically, TCF3 enhanced lysosomal biogenesis and degradative activity, while pharmacological inhibition of lysosomal function partially relieved TCF3-mediated suppression of proliferation. Conversely, upregulation of lysosomal regulator TFEB reduced proliferative and activation-associated features while promoting a quiescence-associated state. Together, these findings establish a TCF3-lysosome regulatory axis that actively safeguards MuSC quiescence, prevents premature stem cell exhaustion, and sustains regenerative competence across repeated tissue injuries. This work provides a framework linking transcriptional control, chromatin state, and organelle homeostasis in quiescent adult stem cells, with potential relevance to muscle aging and regenerative medicine.

Cell Death and Disease
Openalex Percentile: Top 23%
Muscle Physiology and Disorders
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.