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mA-driven NAT10 translation facilitates fatty acid metabolic rewiring to suppress ferroptosis and promote ovarian tumorigenesis through enhancing ACOT7 mRNA acetylation. | LitMetric

AI Article Synopsis

  • RNA modifications influence cancer growth, and our research focuses on NAT10, which is found to be increased in ovarian cancer and linked to poorer outcomes for patients.
  • We discovered that IGF2BP1 boosts NAT10 mRNA translation, and NAT10 increases the stability of ACOT7 mRNA through specific modifications, promoting tumor growth by affecting fatty acid metabolism and reducing a type of cell death called ferroptosis.
  • Our findings suggest that the drug fludarabine can effectively inhibit NAT10, reduce ACOT7 levels, and suppress ovarian cancer growth in lab models, pointing towards a possible new treatment approach targeting NAT10 modifications.

Article Abstract

RNA epigenetic modifications have been implicated in cancer progression. However, the interplay between distinct RNA modifications and its role in cancer metabolism remain largely unexplored. Our study demonstrates that N-acetyltransferase 10 (NAT10) is notably upregulated in ovarian cancer (OC), correlating with poor patient prognosis. IGF2BP1 enhances the translation of NAT10 mRNA in an mA-dependent manner in OC cells. NAT10 drives tumorigenesis by mediating N4-acetylcytidine (acC) modification of ACOT7 mRNA, thereby augmenting its stability and translation. This NAT10-ACOT7 axis modulates fatty acid metabolism in cancer cells and promotes tumor progression by suppressing ferroptosis. Additionally, our research identifies fludarabine as a small molecule inhibitor targeting NAT10, inhibits the acC modification and expression of ACOT7 mRNA. By using cell derived xenograft model and patient derived organoid model, we show that fludarabine effectively suppresses ovarian tumorigenesis. Overall, our study highlights the pivotal role of the NAT10-ACOT7 axis in the malignant cancer progression, underscoring the potential of targeting NAT10-mediated acC modification as a viable therapeutic strategy for this disease.

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Source
http://dx.doi.org/10.1038/s41388-024-03185-zDOI Listing

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