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Updated: May 9, 2026

Assessing Autophagic Flux by Measuring LC3, p62, and LAMP1 Co-localization Using Multispectral Imaging Flow Cytometry
Published on: July 21, 2017
The variability of autophagy and cell death susceptibility: Unanswered questions
Ben Loos1, Anna-Mart Engelbrecht, Richard A Lockshin
1Department of Physiological Sciences; Faculty of Natural Sciences; University of Stellenbosch; Stellenbosch, South Africa.
Abstract:
Impaired autophagic machinery is implicated in a number of diseases such as heart disease, neurodegeneration and cancer. A common denominator in these pathologies is a dysregulation of autophagy that has been linked to a change in susceptibility to cell death. Although we have progressed in understanding the molecular machinery and regulation of the autophagic pathway, many unanswered questions remain. How does the metabolic contribution of autophagy connect with the cell's history and how does its current autophagic flux affect metabolic status and susceptibility to undergo cell death? How does autophagic flux operate to switch metabolic direction and what are the underlying mechanisms in metabolite and energetic sensing, metabolite substrate provision and metabolic integration during the cellular stress response? In this article we focus on unresolved questions that address issues around the role of autophagy in sensing the energetic environment and its role in actively generating metabolite substrates. We attempt to provide answers by explaining how and when a change in autophagic pathway activity such as primary stress response is able to affect cell viability and when not. By addressing the dynamic metabolic relationship between autophagy, apoptosis and necrosis we provide a new perspective on the parameters that connect autophagic activity, severity of injury and cellular history in a logical manner. Last, by evaluating the cell's condition and autophagic activity in a clear context of regulatory parameters in the intra- and extracellular environment, this review provides new concepts that set autophagy into an energetic feedback loop, that may assist in our understanding of autophagy in maintaining healthy cells or when it controls the threshold between cell death and cell survival.
Insights
Autophagy, a cellular process, is crucial for maintaining cell health and preventing diseases like cancer. Understanding its role in energy sensing and cell death pathways is key to developing new therapies.
Area of Science:
- Cellular Biology
- Metabolism
- Disease Pathogenesis
Background:
- Impaired autophagy is linked to diseases including heart disease, neurodegeneration, and cancer.
- Dysregulation of autophagy affects cell death susceptibility, but many questions remain about its precise role.
- Current understanding of autophagy's metabolic contribution and its impact on cell fate is incomplete.
Purpose of the Study:
- To explore the unresolved questions surrounding autophagy's role in sensing the cellular energetic environment.
- To investigate how autophagy actively generates metabolite substrates and influences metabolic direction.
- To clarify the mechanisms by which autophagic flux impacts cell viability and susceptibility to cell death.
Main Methods:
- Review and synthesis of existing literature on autophagy, metabolism, and cell death.
- Analysis of the dynamic metabolic relationship between autophagy, apoptosis, and necrosis.
- Evaluation of regulatory parameters influencing autophagic activity in intra- and extracellular environments.
Main Results:
- Autophagy's role in sensing energy levels and generating metabolites is crucial for cellular homeostasis.
- Changes in autophagic activity, particularly during stress responses, can significantly affect cell viability.
- The interplay between autophagy, apoptosis, and necrosis is modulated by cellular history and injury severity.
Conclusions:
- Autophagy acts as an energetic feedback loop, integrating cellular condition and environmental cues.
- Understanding autophagy's metabolic functions provides new insights into maintaining healthy cells.
- Autophagy critically controls the threshold between cell survival and cell death, offering therapeutic targets.
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