2023
DOI: 10.3390/ijms24097878
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m6Aminer: Predicting the m6Am Sites on mRNA by Fusing Multiple Sequence-Derived Features into a CatBoost-Based Classifier

Abstract: As one of the most important post-transcriptional modifications, m6Am plays a fairly important role in conferring the m6Am stability and in the progression of cancers. The accurate identification of m6Am sites is critical for explaining its biological significance and developing its application in the medical field. However, conventional experimental approaches are time-consuming and expensive, making them unsuitable for the large-scale identification of the m6Am sites. To address this challenge, we exploit a … Show more

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Cited by 4 publications
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References 49 publications
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