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Differentiation of the SH-SY5Y Human Neuroblastoma Cell Line
Published on: February 17, 2016
Methamphetamine induces macropinocytosis in differentiated SH-SY5Y human neuroblastoma cells
Akina Nara1, Toshihiko Aki, Takeshi Funakoshi
1Section of Forensic Medicine, Graduate School of Medical and Dental Sciences, Tokyo Medical and Dental University, Japan. akina.legm@tmd.ac.jp
Abstract:
Acute and chronic abuses of psychostimulant drugs such as methamphetamine (METH) have been known to cause cell death. In particular, neurotoxicity caused by such drugs is one of the most serious adverse events in humans. Although various effects on neuronal cells caused by METH have been studied, the cellular and molecular mechanisms of METH-induced neurotoxicity remain to be elucidated. To investigate the mechanism of METH-induced cytotoxicity, we studied cytological as well as biochemical changes in retinoic acid (RA)-differentiated SH-SY5Y human neuroblastoma cells. Marked cell death was observed with more than 7mM METH, although caspase-dependent apoptotic cell death was not observed with any concentration of METH treatment. The most prominent cytomorphological effect by METH was the formation of large cytoplasmic vacuoles which were not colocalized with either GFP-LC3 or HSP47-GFP, autophagosome and ER markers respectively. In contrast, many of these vacuoles incorporated large molecular weight FITC-dextran and were confirmed as macropinosomes. Our results indicate that METH-induced cytomorphological effects on RA-differentiated SH-SY5Y human neuroblastoma cells involve macropinocytosis and the hyperstimulation of this process may be involved in METH-caused cytotoxicity.
Insights
Methamphetamine (METH) causes cell death by inducing macropinocytosis, a cellular uptake process. This study reveals that METH-induced neurotoxicity may stem from the overstimulation of this pathway.
Area of Science:
- Neuroscience
- Cell Biology
- Toxicology
Background:
- Psychostimulant drugs like methamphetamine (METH) can cause significant neurotoxicity.
- The precise cellular and molecular mechanisms underlying METH-induced neurotoxicity are not fully understood.
Purpose of the Study:
- To investigate the mechanisms of METH-induced cytotoxicity.
- To examine the cytological and biochemical changes in differentiated human neuroblastoma cells exposed to METH.
Main Methods:
- Utilized retinoic acid (RA)-differentiated SH-SY5Y human neuroblastoma cells.
- Assessed cell death and cytomorphological changes following METH treatment.
- Investigated the role of specific cellular markers (GFP-LC3, HSP47-GFP) and macropinocytosis (FITC-dextran uptake).
Main Results:
- METH induced significant cell death at concentrations above 7mM.
- Caspase-dependent apoptosis was not observed.
- The primary cytomorphological effect was the formation of cytoplasmic vacuoles, identified as macropinosomes.
- These vacuoles did not colocalize with autophagosome or ER markers.
Conclusions:
- METH-induced cytotoxicity in differentiated SH-SY5Y cells involves macropinocytosis.
- Hyperstimulation of macropinocytosis may be a key mechanism in METH neurotoxicity.
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