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Updated: Mar 12, 2026

In Situ Immunofluorescent Staining of Autophagy in Muscle Stem Cells
Published on: June 12, 2017
Activation of the Keap1/Nrf2 stress response pathway in autophagic vacuolar myopathies
Steve Duleh1, Xianhong Wang2, Allison Komirenko3
1School of Medicine, University of California, San Francisco, CA, USA.
Abstract:
Nrf2 (nuclear factor [erythroid-derived 2]-like 2; the transcriptional master regulator of the antioxidant stress response) is regulated through interaction with its cytoplasmic inhibitor Keap1 (Kelch-like ECH-associated protein 1), which under basal conditions targets Nrf2 for proteasomal degradation. Sequestosome 1 (SQSTM1)/p62-a multifunctional adapter protein that accumulates following autophagy inhibition and can serve as a diagnostic marker for human autophagic vacuolar myopathies (AVMs)-was recently shown to compete with Nrf2 for Keap1 binding, resulting in activation of the Nrf2 pathway. In this study, we used 55 human muscle biopsies divided into five groups [normal control, hydroxychloroquine- or colchicine-treated non-AVM control, hydroxychloroquine- or colchicine-induced toxic AVM, polymyositis, and inclusion body myositis (IBM)] to evaluate whether Keap1-SQSTM1 interaction led to increased Nrf2 signaling in human AVMs. In toxic AVMs and IBM, but not in control muscle groups or polymyositis, Keap1 antibody labeled sarcoplasmic protein aggregates that can be used as an alternate diagnostic marker for both AVM types; these Keap1-positive aggregates were co-labeled with the antibody against SQSTM1 but not with the antibody against autophagosome marker LC3 (microtubule-associated protein 1 light chain 3). In human AVM muscle, sequestration of Keap1 into the SQSTM1-positive protein aggregates was accompanied by an increase in mRNA and protein levels of Nrf2 target genes; similarly, treatment of differentiated C2C12 myotubes with autophagy inhibitor chloroquine led to an increase in the nuclear Nrf2 protein level and an increase in expression of the Nrf2-regulated genes. Taken together, our findings demonstrate that Nrf2 signaling is upregulated in autophagic muscle disorders and raise the possibility that autophagy disruption in skeletal muscle leads to dysregulation of cellular redox homeostasis.
Insights
Autophagy disruption in muscle disorders leads to increased Nrf2 signaling. This involves Keap1 sequestration by SQSTM1, upregulating antioxidant responses and potentially impacting cellular redox homeostasis in conditions like AVMs and IBM.
Area of Science:
- Muscle biology and disease
- Cellular signaling pathways
- Redox homeostasis
Background:
- Nrf2 (nuclear factor erythroid-derived 2-like 2) regulates antioxidant response, inhibited by Keap1 (Kelch-like ECH-associated protein 1).
- SQSTM1/p62 competes with Nrf2 for Keap1 binding, activating Nrf2 signaling.
- SQSTM1 accumulation is a marker for autophagic vacuolar myopathies (AVMs).
Purpose of the Study:
- To investigate Keap1-SQSTM1 interaction and Nrf2 pathway activation in human autophagic muscle disorders.
- To evaluate Keap1 aggregates as a potential diagnostic marker for AVMs and IBM.
- To explore the link between autophagy disruption and Nrf2 signaling in skeletal muscle.
Main Methods:
- Analysis of 55 human muscle biopsies from various control and patient groups (AVM, polymyositis, IBM).
- Immunohistochemical labeling for Keap1, SQSTM1, and LC3.
- Assessment of Nrf2 target gene expression (mRNA and protein) in muscle tissues and C2C12 myotubes.
Main Results:
- Keap1-positive protein aggregates, co-labeled with SQSTM1, were found in toxic AVMs and IBM, but not in controls or polymyositis.
- Sequestration of Keap1 in SQSTM1 aggregates correlated with increased Nrf2 target gene expression in AVM muscle.
- Autophagy inhibition in C2C12 myotubes increased nuclear Nrf2 levels and Nrf2-regulated gene expression.
Conclusions:
- Nrf2 signaling is upregulated in autophagic muscle disorders.
- Keap1-SQSTM1 interaction and subsequent Nrf2 activation occur in specific myopathies.
- Autophagy disruption in skeletal muscle may lead to dysregulated cellular redox homeostasis.
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