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neoDL: a novel neoantigen intrinsic feature-based deep learning model identifies IDH wild-type glioblastomas with the longest survival

  • Ting Sun
  • , Yufei He
  • , Wendong Li
  • , Guang Liu
  • , Lin Li
  • , Lu Wang
  • , Zixuan Xiao
  • , Xiaohan Han
  • , Hao Wen
  • , Yong Liu
  • , Yifan Chen
  • , Haoyu Wang
  • , Jing Li
  • , Yubo Fan*
  • , Wei Zhang*
  • , Jing Zhang*
  • *此作品的通讯作者
  • Beihang University
  • Capital Medical University

科研成果: 期刊稿件文章同行评审

摘要

Background: Neoantigen based personalized immune therapies achieve promising results in melanoma and lung cancer, but few neoantigen based models perform well in IDH wild-type GBM, and the association between neoantigen intrinsic features and prognosis remain unclear in IDH wild-type GBM. We presented a novel neoantigen intrinsic feature-based deep learning model (neoDL) to stratify IDH wild-type GBMs into subgroups with different survivals. Results: We first derived intrinsic features for each neoantigen associated with survival, followed by applying neoDL in TCGA data cohort(AUC = 0.988, p value < 0.0001). Leave one out cross validation (LOOCV) in TCGA demonstrated that neoDL successfully classified IDH wild-type GBMs into different prognostic subgroups, which was further validated in an independent data cohort from Asian population. Long-term survival IDH wild-type GBMs identified by neoDL were found characterized by 12 protective neoantigen intrinsic features and enriched in development and cell cycle. Conclusions: The model can be therapeutically exploited to identify IDH wild-type GBM with good prognosis who will most likely benefit from neoantigen based personalized immunetherapy. Furthermore, the prognostic intrinsic features of the neoantigens inferred from this study can be used for identifying neoantigens with high potentials of immunogenicity.

源语言英语
文章编号382
期刊BMC Bioinformatics
22
1
DOI
出版状态已出版 - 12月 2021

联合国可持续发展目标

此成果有助于实现下列可持续发展目标:

  1. 可持续发展目标 3 - 良好健康与福祉
    可持续发展目标 3 良好健康与福祉

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