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Imaging Cleared Intact Biological Systems at a Cellular Level by 3DISCO
Published on: July 7, 2014
mTOR Modulates Methamphetamine-Induced Toxicity through Cell Clearing Systems
Gloria Lazzeri1, Francesca Biagioni2, Federica Fulceri3
1Department of Translational Research and New Technologies in Medicine and Surgery, Human Anatomy, University of Pisa, Via Roma 55, Pisa 56126, Italy.
Abstract:
Methamphetamine (METH) is abused worldwide, and it represents a threat for public health. METH exposure induces a variety of detrimental effects. In fact, METH produces a number of oxidative species, which lead to lipid peroxidation, protein misfolding, and nuclear damage. Cell clearing pathways such as ubiquitin-proteasome (UP) and autophagy (ATG) are involved in METH-induced oxidative damage. Although these pathways were traditionally considered to operate as separate metabolic systems, recent studies demonstrate their interconnection at the functional and biochemical level. Very recently, the convergence between UP and ATG was evidenced within a single organelle named autophagoproteasome (APP), which is suppressed by mTOR activation. In the present research study, the occurrence of APP during METH toxicity was analyzed. In fact, coimmunoprecipitation indicates a binding between LC3 and P20S particles, which also recruit p62 and alpha-synuclein. The amount of METH-induced toxicity correlates with APP levels. Specific markers for ATG and UP, such as LC3 and P20S in the cytosol, and within METH-induced vacuoles, were measured at different doses and time intervals following METH administration either alone or combined with mTOR modulators. Western blotting, coimmunoprecipitation, light microscopy, confocal microscopy, plain transmission electron microscopy, and immunogold staining were used to document the effects of mTOR modulation on METH toxicity and the merging of UP with ATG markers within APPs. METH-induced cell death is prevented by mTOR inhibition, while it is worsened by mTOR activation, which correlates with the amount of autophagoproteasomes. The present data, which apply to METH toxicity, are also relevant to provide a novel insight into cell clearing pathways to counteract several kinds of oxidative damage.
Insights
Methamphetamine toxicity involves the autophagoproteasome (APP), a combined cell clearing pathway. Inhibiting mTOR reduces METH-induced cell death by decreasing APP levels, offering a potential therapeutic strategy.
Area of Science:
- Cell Biology
- Neuroscience
- Toxicology
Background:
- Methamphetamine (METH) abuse causes widespread public health issues.
- METH exposure induces oxidative stress, leading to cellular damage like lipid peroxidation and protein misfolding.
- Cellular waste removal pathways, ubiquitin-proteasome (UP) and autophagy (ATG), are implicated in METH toxicity.
Purpose of the Study:
- To investigate the role of the autophagoproteasome (APP), a newly identified convergence of UP and ATG, in METH toxicity.
- To analyze how modulating the mTOR pathway affects APP formation and METH-induced cellular damage.
Main Methods:
- Coimmunoprecipitation to detect interactions between UP and ATG markers (LC3, P20S, p62, alpha-synuclein).
- Western blotting, light and confocal microscopy, and transmission electron microscopy to quantify APP and assess cellular damage.
- Administration of METH alone and with mTOR modulators in various doses and time intervals.
Main Results:
- Coimmunoprecipitation confirmed the binding of LC3 and P20S, forming APPs that also recruited p62 and alpha-synuclein.
- METH-induced toxicity levels correlated positively with the observed APP levels.
- mTOR inhibition protected against METH-induced cell death, while mTOR activation exacerbated it, correlating with APP levels.
Conclusions:
- The autophagoproteasome (APP) is a key pathway involved in methamphetamine toxicity.
- Modulating the mTOR pathway significantly impacts APP formation and METH-induced cell death.
- Targeting APP formation via mTOR modulation presents a potential therapeutic avenue for mitigating METH toxicity and other oxidative damages.
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Toxic Reactions: Overview
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...