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Updated: Jun 11, 2026

Analyzing Starvation-Induced Autophagy in the Drosophila melanogaster Larval Fat Body
Published on: August 4, 2022
2-Deoxy-D-glucose activates autophagy via endoplasmic reticulum stress rather than ATP depletion
Haibin Xi1, Metin Kurtoglu, Huaping Liu
1Sylvester Comprehensive Cancer Center, University of Miami Miller School of Medicine, PAP Building, Room 115, 1550 NW 10th Ave, Miami, FL 33136, USA.
Purpose:
The glucose analog and glycolytic inhibitor 2-deoxy-D-glucose (2-DG), which is currently under clinical evaluation for targeting cancer cells, not only blocks glycolysis thereby reducing cellular ATP, but also interferes with N-linked glycosylation, which leads to endoplasmic reticulum (ER) stress and an unfolded protein response (UPR). Both bioenergetic challenge and ER stress have been shown to activate autophagy, a bulk cellular degradation process that plays either a pro- or anti-death role. Here, we investigate which pathway 2-DG interferes with that activates autophagy and the role of this process in modulating 2-DG-induced toxicity.
Methods:
Pancreatic cancer cell line 1420, melanoma cell line MDA-MB-435 and breast cancer cell line SKBR3 were used to investigate the relationship between induction by 2-DG treatment of ER stress/UPR, ATP reduction and activation of autophagy. ER stress/UPR (Grp78 and CHOP) and autophagy (LC3B II) markers were assayed by immunoblotting, while ATP levels were measured using the CellTiter-Glo Luminescent Cell Viability Assay. Autophagy was also measured by immunofluorescence utilizing LC3B antibody. Cell death was detected with a Vi-Cell cell viability analyzer using trypan blue exclusion.
Results:
In the three different cancer cell lines described earlier, we find that 2-DG upregulates autophagy, increases ER stress and lowers ATP levels. Addition of exogenous mannose reverses 2-DG-induced autophagy and ER stress but does not recover the lowered levels of ATP. Moreover, under anaerobic conditions where 2-DG severely depletes ATP, autophagy is diminished rather than activated, which correlates with lowered levels of the ER stress marker Grp78. Additionally, when autophagy is blocked by siRNA, cell sensitivity to 2-DG is increased corresponding with upregulation of ER stress-mediated apoptosis. Similar increased toxicity is observed with 3-methyladenine, a known autophagy inhibitor. In contrast, rapamycin which enhances autophagy reduces 2-DG-induced toxicity.
Conclusions:
Overall, these results indicate that the major mechanism by which 2-DG stimulates autophagy is through ER stress/UPR and not by lowering ATP levels. Furthermore, autophagy plays a protective role against 2-DG-elicited cell death apparently by relieving ER stress. These data suggest that combining autophagy inhibitors with 2-DG may be useful clinically.
Insights
2-deoxy-D-glucose (2-DG) activates autophagy via endoplasmic reticulum (ER) stress, not ATP reduction. Autophagy protects cancer cells from 2-DG toxicity by relieving ER stress, suggesting combined therapy with autophagy inhibitors.
Area of Science:
- Cancer Biology
- Cellular Stress Response
- Metabolic Pathways
Background:
- 2-deoxy-D-glucose (2-DG) is a glucose analog and glycolytic inhibitor evaluated for cancer therapy.
- 2-DG induces bioenergetic challenge and endoplasmic reticulum (ER) stress, activating autophagy.
- Autophagy's role in 2-DG-induced toxicity is unclear, potentially acting pro- or anti-death.
Purpose of the Study:
- Investigate the mechanism by which 2-DG activates autophagy.
- Determine if ER stress or ATP reduction is the primary trigger for autophagy induction by 2-DG.
- Elucidate the role of autophagy in modulating 2-DG-induced cancer cell death.
Main Methods:
- Utilized pancreatic, melanoma, and breast cancer cell lines.
- Assayed ER stress/UPR (Grp78, CHOP) and autophagy (LC3B II) markers via immunoblotting.
- Measured ATP levels, autophagy by immunofluorescence, and cell death using trypan blue exclusion.
Main Results:
- 2-DG upregulated autophagy, increased ER stress, and lowered ATP levels across cancer cell lines.
- Exogenous mannose reversed 2-DG-induced autophagy and ER stress but not ATP reduction.
- Blocking autophagy increased sensitivity to 2-DG, correlating with ER stress-mediated apoptosis, while rapamycin reduced toxicity.
Conclusions:
- ER stress/UPR, not ATP depletion, is the primary mechanism for 2-DG-stimulated autophagy.
- Autophagy confers a protective role against 2-DG-induced cell death by alleviating ER stress.
- Combining autophagy inhibitors with 2-DG may offer a promising clinical strategy for cancer treatment.
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