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Published on: October 10, 2020
Microtubule S-glutathionylation as a potential approach for antimitotic agents
Wei Chen1, Teresa Seefeldt, Alan Young
1Zhejiang Cancer Research Institute, Zhejiang Cancer Hospital, Hangzhou, Zhejiang 310022, China.
Background:
Microtubules have been one of the most effective targets for the development of anticancer agents. Cancer cells treated by these agents are characterized by cell arrest at G2/M phase. Microtubule-targeting drugs are, therefore, referred to as antimitotic agents. However, the clinical application of the current antimitotic drugs is hampered by emerging drug resistance which is the major cause of cancer treatment failure. The clinical success of antimitotic drugs and emerging drug resistance has prompted a search for new antimitotic agents, especially those with novel mechanisms of action. The aim of this study was to determine whether microtubules can be S-glutathionylated in cancer cells and whether the glutathionylation will lead to microtubule dysfunction and cell growth inhibition. The study will determine whether microtubule S-glutathionylation can be a novel approach for antimitotic agents.
Methods:
2-Acetylamino-3-[4-(2-acetylamino-2-carboxyethylsulfanylcarbonylamino)phenyl carbamoylsulfanyl]propionic acid (2-AAPA) was used as a tool to induce microtubule S-glutathionylation. UACC-62 cells, a human melanoma cell line, were used as a cancer cell model. A pull-down assay with glutathione S-transferase (GST)-agarose beads followed by Western blot analysis was employed to confirm microtubule S-glutathionylation. Immunofluorescence microscopy using a mouse monoclonal anti-α-tubulin-FITC was used to study the effect of the S-glutathionylation on microtubule function; mainly polymerization and depolymerization. Flow cytometry was employed to examine the effect of the S-glutathionylation on cell cycle distribution and apoptosis. Cell morphological change was followed through the use of a Zeiss AXIO Observer A1 microscope. Cancer cell growth inhibition by 2-AAPA was investigated with ten human cancer cell lines.
Results:
Our investigation demonstrated that cell morphology was changed and microtubules were S-glutathionylated in the presence of 2-AAPA in UACC-62 cells. Accordingly, microtubules were found depolymerized and cells were arrested at G2/M phase. The affected cells were found to undergo apoptosis. Cancer growth inhibition experiments demonstrated that the concentrations of 2-AAPA required to produce the effects on microtubules were compatible to the concentrations producing cancer cell growth inhibition.
Conclusions:
The data from this investigation confirms that microtubule S-glutathionylation leads to microtubule dysfunction and cell growth inhibition and can be a novel approach for developing antimitotic agents.
Insights
Microtubule S-glutathionylation, induced by 2-AAPA, disrupts microtubule function, causing cancer cell cycle arrest and apoptosis. This finding suggests a novel strategy for developing new antimitotic cancer agents.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Microtubules are key targets for anticancer drugs, leading to G2/M cell cycle arrest.
- Drug resistance to current antimitotic agents is a major challenge in cancer treatment.
- Novel antimitotic agents with new mechanisms of action are urgently needed.
Purpose of the Study:
- To investigate microtubule S-glutathionylation in cancer cells.
- To determine if S-glutathionylation causes microtubule dysfunction and inhibits cancer cell growth.
- To explore microtubule S-glutathionylation as a novel antimitotic strategy.
Main Methods:
- Induction of microtubule S-glutathionylation using 2-Acetylamino-3-[4-(2-acetylamino-2-carboxyethylsulfanylcarbonylamino)phenyl carbamoylsulfanyl]propionic acid (2-AAPA) in UACC-62 melanoma cells.
- Confirmation of S-glutathionylation via pull-down assay and Western blot.
- Assessment of microtubule polymerization/depolymerization using immunofluorescence microscopy.
- Analysis of cell cycle distribution and apoptosis via flow cytometry.
- Evaluation of cancer cell growth inhibition across ten human cancer cell lines.
Main Results:
- 2-AAPA treatment induced S-glutathionylation and cell morphology changes in UACC-62 cells.
- S-glutathionylation led to microtubule depolymerization and G2/M phase cell cycle arrest.
- Affected cancer cells underwent apoptosis.
- The effective concentrations of 2-AAPA for microtubule effects correlated with cancer cell growth inhibition.
Conclusions:
- Microtubule S-glutathionylation effectively inhibits cancer cell growth.
- This modification leads to microtubule dysfunction, cell cycle arrest, and apoptosis.
- Microtubule S-glutathionylation represents a promising novel approach for developing antimitotic agents.
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