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Updated: May 17, 2026

In Situ Immunofluorescent Staining of Autophagy in Muscle Stem Cells
Published on: June 12, 2017
Regulation of autophagy in oxygen-dependent cellular stress
Stefan W Ryter1, Augustine M K Choi
1Pulmonary and Critical Care Medicine, Brigham and Women's Hospital, Harvard Medical School, 75 Francis Street, Boston, MA 02115, USA. sryter@partners.org
Abstract:
Oxidative stress caused by supraphysiological production of reactive oxygen species (ROS), can cause cellular injury associated with protein and lipid oxidation, DNA damage, and mitochondrial dysfunction. The cellular responses triggered by oxidative stress include the altered regulation of signaling pathways that culminate in the regulation of cell survival or cell death pathways. Recent studies suggest that autophagy, a cellular homeostatic process that governs the turnover of damaged organelles and proteins, may represent a general cellular and tissue response to oxidative stress. The autophagic pathway involves the encapsulation of substrates in double-membraned vesicles, which are subsequently delivered to the lysosome for enzymatic degradation and recycling of metabolic precursors. Autophagy may play multifunctional roles in cellular adaptation to stress, by maintaining mitochondrial integrity, and removing damaged proteins. Additionally, autophagy may play important roles in the regulation of inflammation and immune function. Modulation of the autophagic pathway has been reported in cell culture models of oxidative stress, including altered states of oxygen tension (i.e., hypoxia, hyperoxia), and exposure to oxidants. Furthermore, proteins that regulate autophagy may be subject to redox regulation. The heme oxygenase- 1 (HO)-1 enzyme system may have a role in the regulation of autophagy. Recent studies suggest that carbon monoxide (CO), a reaction product of HO activity which can alter mitochondrial function, may induce autophagy in cultured epithelial cells. In conclusion, current research suggests a central role for autophagy as a mammalian oxidative stress response and its interrelationship to other stress defense systems.
Insights
Autophagy, a cellular process, is a key response to oxidative stress, helping cells survive by clearing damaged components. This process is crucial for cellular defense and adaptation to harmful reactive oxygen species (ROS).
Area of Science:
- Cellular Biology
- Stress Response Mechanisms
Background:
- Oxidative stress from excessive reactive oxygen species (ROS) causes cellular damage, impacting proteins, lipids, DNA, and mitochondria.
- Cellular responses to oxidative stress involve altered signaling pathways that dictate cell survival or death.
Purpose of the Study:
- To explore the role of autophagy as a cellular and tissue response to oxidative stress.
- To investigate the relationship between autophagy, oxidative stress, and other cellular defense systems.
Main Methods:
- Review of recent studies on autophagy modulation under oxidative stress conditions (hypoxia, hyperoxia, oxidants).
- Examination of the potential role of the heme oxygenase-1 (HO-1) enzyme system and carbon monoxide (CO) in regulating autophagy.
- Analysis of redox regulation of autophagy-related proteins.
Main Results:
- Autophagy, a homeostatic process, is increasingly recognized as a general cellular response to oxidative stress.
- Autophagy contributes to cellular adaptation by maintaining mitochondrial integrity and removing damaged proteins.
- Modulation of autophagy occurs in response to various oxidative stress models, and its regulatory proteins may be redox-sensitive.
Conclusions:
- Autophagy plays a central role in mammalian oxidative stress response.
- Autophagy is interconnected with other cellular stress defense systems.
- Carbon monoxide (CO), a product of heme oxygenase-1 (HO-1) activity, may induce autophagy in epithelial cells.
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