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Alterations in the glycome after HDAC inhibition impact oncogenic potential in epigenetically plastic SW13 cells
McKale R Montgomery1, Elizabeth E Hull2
1College of Human Sciences, Oklahoma State University, Stillwater, OK, 74078, USA.
Background:
Defects in the type and degree of cellular glycosylation impact oncogenesis on multiple levels. Although the type of glycosylation is determined by protein sequence encoded by the genome, the extent and modifications of glycosylation depends on the activity of biosynthetic enzymes and recent data suggests that the glycome is also subject to epigenetic regulation. This study focuses on the ability of HDAC inhibition to alter glycosylation and to lead to pro-oncogenic alterations in the glycome as assessed by metastatic potential and chemoresistance.
Methods:
Epigenetically plastic SW13 adrenocortical carcinoma cells were treated with FK228, an HDAC inhibitor with high affinity for HDAC1 and, to a lesser extent, HDAC2. In comparing HDAC inhibitor treated and control cells, differential expression of glycome-related genes were assessed by microarray. Differential glycosylation was then assessed by lectin binding arrays and the ability of cellular proteins to bind to glycans was assessed by glycan binding arrays. Differential sensitivity to paclitaxel, proliferation, and MMP activity were also assessed.
Results:
Treatment with FK228 alters expression of enzymes in the biosynthetic pathways for a large number of glycome related genes including enzymes in all major glycosylation pathways and several glycan binding proteins. 84% of these differentially expressed glycome-related genes are linked to cancer, some as prognostic markers and others contributing basic oncogenic functions such as metastasis or chemoresistance. Glycan binding proteins also appear to be differentially expressed as protein extracts from treated and untreated cells show differential binding to glycan arrays. The impact of differential mRNA expression of glycosylation enzymes was documented by differential lectin binding. However, the assessment of changes in the glycome is complicated by the fact that detection of differential glycosylation through lectin binding is dependent on the methods used to prepare samples as protein-rich lysates show different binding than fixed cells in several cases. Paralleling the alterations in the glycome, treatment of SW13 cells with FK228 increases metastatic potential and reduces sensitivity to paclitaxel.
Conclusions:
The glycome is substantially altered by HDAC inhibition and these changes may have far-reaching impacts on oncogenesis.
Insights
Histone deacetylase (HDAC) inhibition alters cellular glycosylation, impacting cancer progression. This epigenetic regulation enhances metastatic potential and chemoresistance in adrenocortical carcinoma cells.
Area of Science:
- Epigenetics
- Cancer Biology
- Glycobiology
Background:
- Cellular glycosylation plays a critical role in oncogenesis.
- Glycome modifications are influenced by epigenetic regulation.
- Histone deacetylase (HDAC) inhibition is explored for its impact on glycosylation.
Purpose of the Study:
- To investigate how HDAC inhibition alters cellular glycosylation.
- To assess the pro-oncogenic effects of these glycome alterations.
- To evaluate changes in metastatic potential and chemoresistance.
Main Methods:
- SW13 adrenocortical carcinoma cells were treated with the HDAC inhibitor FK228.
- Gene expression of glycome-related genes was analyzed using microarrays.
- Differential glycosylation was assessed via lectin binding and glycan arrays.
- Metastatic potential and chemoresistance were evaluated.
Main Results:
- FK228 treatment significantly altered the expression of glycome-related genes, including those involved in major glycosylation pathways.
- 84% of differentially expressed genes are linked to cancer, affecting metastasis and chemoresistance.
- HDAC inhibition increased metastatic potential and decreased sensitivity to paclitaxel.
Conclusions:
- HDAC inhibition profoundly impacts the cellular glycome.
- These glycome alterations have significant implications for cancer development and progression.
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