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Updated: Apr 25, 2026

Modeling Neuronal Death and Degeneration in Mouse Primary Cerebellar Granule Neurons
Published on: November 6, 2017
Arginine starvation-associated atypical cellular death involves mitochondrial dysfunction, nuclear DNA leakage, and
Chun A Changou1, Yun-Ru Chen2, Li Xing3
1Department of Biochemistry and Molecular Medicine, UC Davis Comprehensive Cancer Center, Sacramento, CA 95817; NSF Center for Biophotonics Science and Technology, University of California, Davis, CA 95817; Integrated Laboratory, Center of Translational Medicine and Graduate Institute of Translational Medicine, Taipei Medical University, Taipei, Taiwan 110, Republic of China; and.
Abstract:
Autophagy is the principal catabolic prosurvival pathway during nutritional starvation. However, excessive autophagy could be cytotoxic, contributing to cell death, but its mechanism remains elusive. Arginine starvation has emerged as a potential therapy for several types of cancers, owing to their tumor-selective deficiency of the arginine metabolism. We demonstrated here that arginine depletion by arginine deiminase induces a cytotoxic autophagy in argininosuccinate synthetase (ASS1)-deficient prostate cancer cells. Advanced microscopic analyses of arginine-deprived dying cells revealed a novel phenotype with giant autophagosome formation, nucleus membrane rupture, and histone-associated DNA leakage encaptured by autophagosomes, which we shall refer to as chromatin autophagy, or chromatophagy. In addition, nuclear inner membrane (lamin A/C) underwent localized rearrangement and outer membrane (NUP98) partially fused with autophagosome membrane. Further analysis showed that prolonged arginine depletion impaired mitochondrial oxidative phosphorylation function and depolarized mitochondrial membrane potential. Thus, reactive oxygen species (ROS) production significantly increased in both cytosolic and mitochondrial fractions, presumably leading to DNA damage accumulation. Addition of ROS scavenger N-acetyl cysteine or knockdown of ATG5 or BECLIN1 attenuated the chromatophagy phenotype. Our data uncover an atypical autophagy-related death pathway and suggest that mitochondrial damage is central to linking arginine starvation and chromatophagy in two distinct cellular compartments.
Insights
Arginine starvation triggers a unique cell death pathway called chromatophagy in prostate cancer cells. This process involves giant autophagosomes engulfing nuclear DNA, driven by mitochondrial damage and reactive oxygen species.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Autophagy is a survival pathway during starvation, but excessive autophagy can cause cell death.
- Arginine starvation is a potential cancer therapy due to tumor-specific arginine metabolism deficiencies.
- The precise mechanisms of cytotoxic autophagy remain largely unknown.
Purpose of the Study:
- To investigate the mechanism of cytotoxic autophagy induced by arginine depletion in cancer cells.
- To identify and characterize a novel cell death phenotype resulting from arginine starvation.
Main Methods:
- Utilized arginine deiminase to deplete arginine in ASS1-deficient prostate cancer cells.
- Employed advanced microscopy to analyze cell death phenotypes.
- Assessed mitochondrial function, reactive oxygen species (ROS) production, and autophagy-related gene expression (ATG5, BECLIN1).
Main Results:
- Arginine depletion induced a novel cytotoxic autophagy, termed chromatophagy, characterized by giant autophagosomes engulfing nuclear DNA.
- Observed nuclear membrane rupture and DNA leakage into autophagosomes.
- Demonstrated impaired mitochondrial function, increased ROS production, and DNA damage.
- Showed that ROS scavengers and autophagy gene knockdown attenuated chromatophagy.
Conclusions:
- Uncovered an atypical autophagy-related cell death pathway (chromatophagy) linked to arginine starvation.
- Mitochondrial damage plays a central role in linking arginine starvation to chromatophagy.
- Chromatophagy represents a novel mechanism of cancer cell death induced by arginine depletion.
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