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MARCH8/NSUN6/ROS-mediated DNA damage positive feedback loop regulates cisplatin resistance in osteosarcoma
Mingyu He1,2, Tao Li2, Ao Wang2
1Department of Pharmacy (The University Key Laboratory of Drug Research, Heilongjiang Province), The Second Affiliated Hospital of Harbin Medical University, State Key Laboratory of Frigid Zone Cardiovascular Diseases (SKLFZCD), Harbin, China.
Abstract:
Osteosarcoma is the most common primary malignant bone tumor in children and adolescents and is often characterized by resistance to chemotherapy. Although RNA 5‑methylcytosine (m5C) modification is known to contribute to tumor progression, its exact role in osteosarcoma drug resistance remains poorly understood. Here, we identify NOP2/Sun RNA methyltransferase family member 6 (NSUN6) as an m5C methyltransferase that positively correlates with osteosarcoma progression. Mechanistically, the E3 ubiquitin ligase membrane‑associated RING‑CH‑type finger 8 (MARCH8) ubiquitinates NSUN6 at Lys271 and Lys462, leading to its proteasomal degradation. Reduced NSUN6 expression lowers m5C modification on peroxisomal biogenesis factor 1 (PEX1) and peroxisomal biogenesis factor 3 (PEX3) mRNAs, destabilizing them through loss of binding by the m5C reader YBX1. In turn, this downregulates peroxisome synthesis and catalase (CAT) protein production, causing increased intracellular reactive oxygen species (ROS), DNA damage, and heightened sensitivity of osteosarcoma cells to cisplatin. Furthermore, elevated ROS levels reinforce NSUN6 ubiquitination and degradation by enhancing the NSUN6-MARCH8 interaction, establishing a positive feedback loop. Collectively, these findings highlight an intricate NSUN6-m5C-YBX1-PEXs signaling axis that governs peroxisome biogenesis, ROS accumulation, and cisplatin responsiveness in osteosarcoma. Our work not only clarifies the role of m5C in osteosarcoma drug resistance but also offers a potential therapeutic angle for targeting NSUN6 and its peroxisome‑regulating network to overcome chemoresistance.
Insights
Researchers found that NSUN6 protein levels impact osteosarcoma progression and drug resistance by regulating peroxisome synthesis. Lower NSUN6 leads to increased sensitivity to cisplatin chemotherapy in osteosarcoma cells.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Osteosarcoma, a common childhood bone cancer, often exhibits chemotherapy resistance.
- The role of RNA 5-methylcytosine (m5C) modification in osteosarcoma drug resistance is not well understood.
Purpose of the Study:
- To investigate the function of NSUN6 (NOP2/Sun RNA methyltransferase family member 6) in osteosarcoma progression and chemoresistance.
- To elucidate the molecular mechanisms underlying NSUN6's role in osteosarcoma.
Main Methods:
- Identified NSUN6 as an m5C methyltransferase correlated with osteosarcoma progression.
- Investigated the ubiquitination and degradation of NSUN6 by MARCH8.
- Analyzed the impact of NSUN6 on PEX1 and PEX3 mRNA stability and peroxisome biogenesis.
- Assessed the effect on reactive oxygen species (ROS) levels and cisplatin sensitivity.
Main Results:
- NSUN6 positively correlates with osteosarcoma progression.
- MARCH8-mediated ubiquitination leads to NSUN6 proteasomal degradation.
- Reduced NSUN6 impairs m5C modification on PEX1/PEX3 mRNAs, decreasing peroxisome synthesis and catalase production.
- This results in increased ROS, DNA damage, and enhanced osteosarcoma cell sensitivity to cisplatin.
- A positive feedback loop exists where elevated ROS enhances NSUN6 degradation.
Conclusions:
- An NSUN6-m5C-YBX1-PEXs signaling axis regulates peroxisome biogenesis, ROS accumulation, and cisplatin response in osteosarcoma.
- This pathway clarifies the role of m5C in osteosarcoma chemoresistance.
- Targeting NSUN6 and its associated network offers a potential strategy to overcome chemoresistance.
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