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Updated: May 26, 2025

A Syngeneic Orthotopic Osteosarcoma Sprague Dawley Rat Model with Amputation to Control Metastasis Rate
Published on: May 3, 2021
CYFIP1 coordinate with RNMT to induce osteosarcoma cuproptosis via AURKAIP1 m7G modification
Zili Lin1, Ziyi Wu2, Yizhe He1
1Department of Orthopaedics, Xiangya Hospital, Central South University, Changsha, Hunan, 410008, P.R. China.
Abstract:
Osteosarcoma (OS) presents challenges due to its genomic instability and complexity, necessitating investigation into its oncogenesis and progression mechanisms. Recent studies have implicated m7G, a post-transcriptional modification, in the development of various cancers. However, research on m7G modification in OS remains limited. This study aimed to explore the impact of m7G modification in OS, focusing on the role and mechanism of CYFIP1, a member of m7G cap binding complexes. Our findings demonstrated prominent anti-OS effects of CYFIP1 in vitro and vivo. Mechanistically, CYFIP1 collaborated with RNMT to induce the m7G methylation of AURKAIP1 mRNA, which resulted in the stability and the increasing translation of AURKAIP1 mRNA. AURKAIP1, a kind of mitochondrial small ribosomal subunit protein, exhibited increased expression, leading to the dysregulation of mitochondrial translation. This, in turn, caused an increase in the expression of FDX1, eventually triggering cuproptosis in OS cells and repressing OS occurrence and progression. In summary, our study identified the CYFIP1/RNMT/AURKAIP1/FDX1 axis as a potential therapeutic target for OS. These insights contribute to OS research and may guide the development of novel treatments for this challenging disease.
Insights
This study reveals that CYFIP1 inhibits osteosarcoma (OS) by promoting m7G methylation of AURKAIP1 mRNA. This mechanism triggers cuproptosis, offering a new therapeutic target for OS treatment.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Osteosarcoma (OS) is a complex bone cancer with genomic instability.
- m7G RNA modification is implicated in various cancers, but its role in OS is understudied.
- Understanding OS oncogenesis requires investigating novel molecular mechanisms.
Purpose of the Study:
- To explore the impact of m7G modification in osteosarcoma.
- To investigate the role and mechanism of CYFIP1 in OS progression.
- To identify potential therapeutic targets for osteosarcoma.
Main Methods:
- In vitro and in vivo experiments to assess CYFIP1's anti-OS effects.
- Analysis of the m7G methylation pathway involving CYFIP1, RNMT, and AURKAIP1.
- Investigation of downstream effects on mitochondrial translation and FDX1 expression.
Main Results:
- CYFIP1 demonstrated significant anti-osteosarcoma activity.
- CYFIP1, with RNMT, methylates AURKAIP1 mRNA, enhancing its stability and translation.
- This leads to increased FDX1 expression and triggers cuproptosis in OS cells, inhibiting tumor growth.
Conclusions:
- The CYFIP1/RNMT/AURKAIP1/FDX1 axis is identified as a key pathway in osteosarcoma.
- CYFIP1-induced cuproptosis represents a novel mechanism for OS repression.
- This pathway offers a promising therapeutic target for osteosarcoma treatment.
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