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Published on: September 30, 2016
Oxaliplatin promotes siMAD2L2‑induced apoptosis in colon cancer cells
Lu Ma1, Xin Li1, Xiaopeng Zhao1
1Department of Medical Genetics and Cell Biology, School of Basic Medical Sciences, Ningxia Medical University, Yinchuan, Ningxia 750004, P.R. China.
Abstract:
The clinical efficacy of colorectal tumor treatment is restricted due to platinum agent resistance. Translesion DNA synthesis (TLS) has been shown to contribute to this resistance; however, the exact molecular mechanism remains unknown. The present study aimed to investigate the possible function of the core of the TLS polymerase mitotic arrest deficient 2 like 2 (MAD2L2) in drug sensitivity, in order to provide a treatment rationale for platinum‑based chemotherapy in colon cancer. In the present study, MAD2L2 was knocked down using MAD2L2‑specific small interfering (si)RNA. HCT116 and SW620 cells were treated with oxaliplatin and MG132; oxaliplatin is a platinum compound that induces DNA damage and MG132 is a potent proteasome inhibitor. Cell viability was determined using an MTT assay. Cell apoptosis was examined via flow cytometry and TUNEL assay. The activity of proteasome 26S subunit, non‑ATPase 13 (PSMD13) was detected using ELISA, while the expression levels of apoptotic‑related proteins were detected via western blotting. The results demonstrated that cells treated with oxaliplatin or MG132 alone had decreased viability, but a synergistic effect was not observed after co‑treatment. In addition, the knockdown of MAD2L2 caused by siMAD2L2 or oxaliplatin treatment increased the expression levels of the pro‑apoptotic proteins Bax and Bak and decreased the expression levels of the anti‑apoptotic protein Bcl‑2, compared with the negative control group. Moreover, MG132 alleviated the decrease in MAD2L2 expression, while reducing siMAD2L2‑induced cell apoptosis. These results indicate that oxaliplatin promotes siMAD2L2‑induced apoptosis in colon cancer cells. This process was associated with the Bcl‑2 and ubiquitin‑proteasome pathway. Overall, the present study provides a theoretical basis for improving the clinical efficacy of colon cancer by combining chemotherapy and gene therapy.
Insights
Platinum resistance limits colorectal cancer treatment. Mitotic arrest deficient 2 like 2 (MAD2L2) knockdown enhances oxaliplatin-induced apoptosis in colon cancer cells, suggesting combined gene and chemotherapy potential.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Platinum agent resistance restricts colorectal tumor treatment efficacy.
- Translesion DNA synthesis (TLS) contributes to platinum resistance, but the mechanism is unclear.
- Mitotic arrest deficient 2 like 2 (MAD2L2) is a core TLS polymerase with an unknown role in drug sensitivity.
Purpose of the Study:
- To investigate the function of MAD2L2 in colon cancer drug sensitivity.
- To explore MAD2L2's role in platinum-based chemotherapy resistance.
- To provide a rationale for combining chemotherapy and gene therapy in colon cancer treatment.
Main Methods:
- MAD2L2 was knocked down using small interfering RNA (siRNA).
- Colon cancer cells (HCT116, SW620) were treated with oxaliplatin and MG132.
- Cell viability, apoptosis, proteasome activity, and protein expression were analyzed.
Main Results:
- Oxaliplatin or MG132 alone decreased cell viability; no synergistic effect was observed with co-treatment.
- MAD2L2 knockdown increased pro-apoptotic proteins (Bax, Bak) and decreased anti-apoptotic protein (Bcl-2).
- MG132 reduced MAD2L2 expression decrease and siMAD2L2-induced apoptosis, indicating a role for the Bcl-2 and ubiquitin-proteasome pathways.
Conclusions:
- Oxaliplatin promotes MAD2L2 knockdown-induced apoptosis in colon cancer cells.
- The findings link MAD2L2, the Bcl-2 family, and the ubiquitin-proteasome pathway to oxaliplatin resistance.
- This study provides a theoretical basis for enhancing colon cancer chemotherapy efficacy through combined gene and drug therapy.

