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Published on: August 2, 2024
Chromatin remodeling-driven autophagy activation induces cisplatin resistance in oral squamous cell carcinoma
Su Young Oh1, Jinkyung Kim1, Kah Young Lee1
1Department of Microbiology and Immunology, School of Dentistry, Kyungpook National University, Daegu, South Korea.
Abstract:
It is still challenging to predict the efficacy of cisplatin-based therapy, particularly in relation to the activation of macroautophagy/autophagy in oral squamous cell carcinoma (OSCC). We studied the effect of selected chromatin remodeling genes on the cisplatin resistance and their interplay with autophagy in 3-dimensional tumor model and xenografts. We analyzed gene expression patterns in the cisplatin-sensitive UMSCC1, and a paired cisplatin-resistant UM-Cis cells. Many histone protein gene clusters involved in nucleosome assembly showed significant difference of expression. Gain- and loss-of-function analyses revealed an inverse correlation between cisplatin resistance and HIST1H3D expression, while a positive correlation was observed with HIST3H2A or HIST3H2B expression. In UM-Cis, HIST3H2A- and HIST3H2B-mediated chromatin remodeling upregulates autophagy status, which results in cisplatin resistance. Additionally, knockdown of HIST3H2A or HIST3H2B downregulated autophagy-activating genes via chromatin compaction of their promoter regions. MiTF, one of the key autophagy regulators upregulated in UM-Cis, negatively regulated transcription of HIST1H3D, suggesting an interplay between chromatin remodeling-dependent cisplatin resistance and autophagy. On comparing the staining intensity between cisplatin-sensitive and -insensitive tissues from OSCC patients, protein expression pattern of the selected histone protein genes were matched with the in vitro data. By examining the relationship between autophagy and chromatin remodeling genes, we identified a set of candidate genes with potential use as markers predicting chemoresistance in OSCC biopsy samples.
Insights
Histone gene expression impacts oral cancer chemoresistance. Specific histone genes (HIST3H2A/B) promote autophagy and cisplatin resistance, while others (HIST1H3D) are inversely correlated, offering potential predictive markers.
Area of Science:
- Molecular Oncology
- Cancer Genetics
- Cellular Biology
Background:
- Predicting cisplatin efficacy in oral squamous cell carcinoma (OSCC) is challenging, especially concerning autophagy.
- Chromatin remodeling genes' role in chemoresistance and autophagy is not fully understood.
Purpose of the Study:
- To investigate the influence of chromatin remodeling genes on cisplatin resistance in OSCC.
- To explore the interplay between these genes and autophagy.
- To identify potential biomarkers for chemoresistance in OSCC.
Main Methods:
- Analysis of gene expression in cisplatin-sensitive (UMSCC1) and resistant (UM-Cis) OSCC cells.
- Gain- and loss-of-function studies of selected histone genes (HIST1H3D, HIST3H2A, HIST3H2B).
- Assessment of autophagy markers and MiTF expression.
- Comparison of protein expression in patient tissues.
Main Results:
- Significant differences in histone gene expression, particularly those involved in nucleosome assembly.
- HIST3H2A and HIST3H2B positively correlated with cisplatin resistance by upregulating autophagy.
- HIST1H3D showed an inverse correlation with cisplatin resistance.
- MiTF negatively regulated HIST1H3D transcription, indicating a complex interplay.
- In vitro findings were validated in patient OSCC tissues.
Conclusions:
- Chromatin remodeling via HIST3H2A/HIST3H2B promotes autophagy and cisplatin resistance in OSCC.
- A set of chromatin remodeling genes show potential as predictive markers for chemoresistance in OSCC biopsies.
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