An autophagy-inducing stapled peptide induces mitochondria dysfunction and triggers autotic cell death in
Xiaozhe Zhang1, Gao Shan1, Na Li2
1Department of Applied Biology and Chemical Technology, State Key Laboratory of Chemical Biology and Drug Discovery, The Hong Kong Polytechnic University, Hung Hom, Kowloon, 999077, Hong Kong, P. R. China.
Abstract:
Autophagy is a lysosome-dependent bulk degradation process essential for cell viability but excessive autophagy leads to a unique form of cell death termed autosis. Triple-negative breast cancer (TNBC) is a highly aggressive subtype of breast cancer with notable defect in its autophagy process. In previous studies, we developed stapled peptides that specifically targeted the essential autophagy protein Beclin 1 to induce autophagy and promote endolysosomal trafficking. Here we show that one lead peptide Tat-SP4 induced mild increase of autophagy in TNBC cells but showed potent anti-proliferative effect that could not be rescued by inhibitors of programmed cell death pathways. The cell death induced by Tat-SP4 showed typical features of autosis including sustained adherence to the substrate surface, rupture of plasma membrane and effective rescue by digoxin, a cardioglycoside that blocks the Na+/K+ ATPase. Tat-SP4 also induced prominent mitochondria dysfunction including loss of mitochondria membrane potential, elevated mitochondria reactive oxygen species and reduced oxidative phosphorylation. The anti-proliferative effect of Tat-SP4 was confirmed in a TNBC xenograft model. Our study uncovers three notable aspects of autosis. Firstly, autosis can be triggered by moderate increase in autophagy if such increase exceeds the endogenous capacity of the host cells. Secondly, mitochondria may play an essential role in autosis with dysregulated autophagy leading to mitochondria dysfunction to trigger autosis. Lastly, intrinsic autophagy deficiency and quiescent mitochondria bioenergetic profile likely render TNBC cells particularly susceptible to autosis. Our designed peptides like Tat-SP4 may serve as potential therapeutic candidates against TNBC by targeting this vulnerability.
Insights
A novel peptide, Tat-SP4, induces autosis (a unique cell death) in triple-negative breast cancer (TNBC) by disrupting autophagy and mitochondria function. This peptide shows therapeutic potential against aggressive TNBC by exploiting its cellular vulnerabilities.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Therapeutics
Background:
- Autophagy is crucial for cell survival, but excessive levels cause autosis, a distinct cell death.
- Triple-negative breast cancer (TNBC) exhibits impaired autophagy.
- Targeting autophagy is a potential therapeutic strategy for TNBC.
Purpose of the Study:
- To investigate the effect of a novel stapled peptide, Tat-SP4, on TNBC cells.
- To determine the mechanism of cell death induced by Tat-SP4.
- To evaluate Tat-SP4 as a potential therapeutic agent for TNBC.
Main Methods:
- Treatment of TNBC cells with Tat-SP4 peptide.
- Assessment of autophagy levels and cell death pathways.
- Analysis of mitochondrial function (membrane potential, ROS, oxidative phosphorylation).
- Evaluation of Tat-SP4 efficacy in a TNBC xenograft model.
Main Results:
- Tat-SP4 induced mild autophagy increase but potent anti-proliferative effects in TNBC cells.
- The cell death induced by Tat-SP4 exhibited characteristics of autosis, independent of programmed cell death pathways.
- Tat-SP4 caused significant mitochondrial dysfunction in TNBC cells.
- Tat-SP4 demonstrated anti-proliferative effects in a TNBC xenograft model.
Conclusions:
- Autosis can be triggered by autophagy levels exceeding cellular capacity, implicating mitochondrial dysfunction.
- TNBC cells' intrinsic autophagy deficiency and mitochondrial profile make them susceptible to Tat-SP4-induced autosis.
- Tat-SP4 represents a promising therapeutic candidate for TNBC by targeting this specific vulnerability.
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