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Updated: Jan 19, 2026

Activating Autophagy by Aerobic Exercise in Mice
Published on: February 3, 2017
Cathepsins Drive Anti-Inflammatory Activity by Regulating Autophagy and Mitochondrial Dynamics in Macrophage Foam
Tommy Weiss-Sadan1, David Maimoun2, Diana Oelschlagel3
1Institute for Drug Research, School of Pharmacy, Faculty of Medicine, The Hebrew University, Jerusalem, Israel.
Insights
Cathepsin activity is crucial for clearing cellular waste via autophagy. Its suppression by oxidized lipids impairs this process, leading to mitochondrial stress and vascular inflammation.
Area of Science:
- Biochemistry
- Cell Biology
- Cardiovascular Research
Background:
- Atherosclerosis is driven by persistent inflammation, with autophagy dysfunction implicated.
- The precise mechanisms causing autophagy dysfunction in this context remain unclear.
Purpose of the Study:
- To investigate the role of cysteine proteases, specifically cathepsins, in autophagy within lipid-laden macrophages.
- To elucidate how cathepsin activity influences cellular processes relevant to atherosclerosis.
Main Methods:
- Utilized an in vitro model of lipid-laden macrophages.
- Employed activity-based probes and high-throughput techniques to study cathepsin function.
- Performed shotgun proteomics and transcriptomic analysis.
Main Results:
- Cathepsin activity is inhibited by oxidized lipids, impairing autophagy-lysosomal degradation.
- Loss of cathepsin function leads to autophagy derangement, mitochondrial stress, and increased reactive oxygen species production.
- Transcriptomic analysis revealed similarities to M1 macrophages and elevated inflammatory cytokine expression.
Conclusions:
- Cathepsins are essential for maintaining mitochondrial quality control.
- Targeting cathepsins may offer a strategy to reduce vascular inflammation in atherosclerosis.
Background/Aims:
Atherosclerosis underlies the majority of cardiovascular events, consequent to non-resolving inflammation. Considerable evidence implicates autophagy dysfunction at the core of this inflammatory condition, but the basis of this dysfunction is not fully understood.
Methods:
Using an in vitro model of lipid-laden macrophages, activity-based probes and high-throughput techniques, we studied the role of the cysteine proteases cathepsins in autophagy.
Results:
We showed that cathepsin activity is suppressed by oxidized lipids and that cathepsin has an indispensable role in the autophagy-lysosomal degradation pathway. Accordingly, loss of cathepsin function resulted in autophagy derangement. Shotgun proteomics confirmed autophagy dysfunction and unveiled a pivotal role of cathepsin L in a putative cathepsin degradation network. At the physiological level, cathepsin inhibition resulted in mitochondrial stress, which translated into impaired oxidative metabolism, excessive production of reactive oxygen species and activation of the cellular stress response, driven by ATF4-CHOP transcription factors. In addition, transcriptomic analysis of these cells uncovered some genetic similarities with the inflammatory macrophage phenotype (a.k.a M1 macrophages) and increased expression of inflammatory cytokines.
Conclusion:
Our data highlight the importance of cathepsins for mitochondrial quality control mechanisms and amelioration of vascular inflammation.
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