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Updated: Dec 23, 2025

Study of Protein-protein Interactions in Autophagy Research
Published on: September 9, 2017
Mechanisms of Action of Autophagy Modulators Dissected by Quantitative Systems Pharmacology Analysis
Qingya Shi1,2, Fen Pei1, Gary A Silverman3
1Department of Computational and Systems Biology, School of Medicine, University of Pittsburgh, Pittsburgh, PA 15213, USA.
Abstract:
Autophagy plays an essential role in cell survival/death and functioning. Modulation of autophagy has been recognized as a promising therapeutic strategy against diseases/disorders associated with uncontrolled growth or accumulation of biomolecular aggregates, organelles, or cells including those caused by cancer, aging, neurodegeneration, and liver diseases such as α1-antitrypsin deficiency. Numerous pharmacological agents that enhance or suppress autophagy have been discovered. However, their molecular mechanisms of action are far from clear. Here, we collected a set of 225 autophagy modulators and carried out a comprehensive quantitative systems pharmacology (QSP) analysis of their targets using both existing databases and predictions made by our machine learning algorithm. Autophagy modulators include several highly promiscuous drugs (e.g., artenimol and olanzapine acting as activators, fostamatinib as an inhibitor, or melatonin as a dual-modulator) as well as selected drugs that uniquely target specific proteins (~30% of modulators). They are mediated by three layers of regulation: (i) pathways involving core autophagy-related (ATG) proteins such as mTOR, AKT, and AMPK; (ii) upstream signaling events that regulate the activity of ATG pathways such as calcium-, cAMP-, and MAPK-signaling pathways; and (iii) transcription factors regulating the expression of ATG proteins such as TFEB, TFE3, HIF-1, FoxO, and NF-κB. Our results suggest that PKA serves as a linker, bridging various signal transduction events and autophagy. These new insights contribute to a better assessment of the mechanism of action of autophagy modulators as well as their side effects, development of novel polypharmacological strategies, and identification of drug repurposing opportunities.
Insights
This study analyzes 225 autophagy modulators, revealing complex regulatory networks. Protein kinase A (PKA) acts as a key link between signaling pathways and autophagy, offering new therapeutic strategies.
Area of Science:
- Cell Biology
- Pharmacology
- Systems Biology
Background:
- Autophagy is crucial for cell homeostasis and implicated in diseases like cancer and neurodegeneration.
- Modulating autophagy is a therapeutic target, but mechanisms of action for many drugs remain unclear.
- Understanding autophagy regulation is key for developing effective treatments.
Purpose of the Study:
- To comprehensively analyze the targets of 225 autophagy modulators.
- To elucidate the molecular mechanisms underlying autophagy modulation.
- To identify potential drug repurposing opportunities and polypharmacological strategies.
Main Methods:
- Quantitative systems pharmacology (QSP) analysis of 225 autophagy modulators.
- Integration of existing databases and machine learning predictions for target identification.
- Analysis of three layers of autophagy regulation: core ATG proteins, upstream signaling, and transcription factors.
Main Results:
- Identified both promiscuous and specific autophagy modulators.
- Revealed three regulatory layers: core ATG proteins (mTOR, AKT, AMPK), upstream signaling (calcium, cAMP, MAPK), and transcription factors (TFEB, TFE3, HIF-1, FoxO, NF-κB).
- Protein kinase A (PKA) was identified as a central linker connecting various signaling pathways to autophagy.
Conclusions:
- Autophagy modulation involves intricate multi-layered regulatory networks.
- PKA plays a pivotal role in integrating signaling events with autophagy.
- Findings facilitate better assessment of drug mechanisms, side effects, and guide novel therapeutic strategies.
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