4.8 Article

IOBR: Multi-Omics Immuno-Oncology Biological Research to Decode Tumor Microenvironment and Signatures

Journal

FRONTIERS IN IMMUNOLOGY
Volume 12, Issue -, Pages -

Publisher

FRONTIERS MEDIA SA
DOI: 10.3389/fimmu.2021.687975

Keywords

tumor microenvironment; multi-omics; gene signatures; immune-tumor interaction; metabolism

Categories

Funding

  1. National Natural Science Foundation of China [81772580, 81472594, 81770781]
  2. Guangzhou Planned Project of Science and Technology [201803010070]
  3. Guangdong-Macao Science and Technology Innovation Joint Fund Project
  4. Hong Kong-Macao Science and Technology Achievement Transformation Project in Guangdong [2020A0505090007]

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Recent advances in next-generation sequencing technologies have led to a rapid accumulation of publicly available multi-omics datasets. The development of IOBR as a computational tool aims to comprehensively interpret multi-omics data and facilitate immuno-oncology exploration for precision immunotherapy.
Recent advances in next-generation sequencing (NGS) technologies have triggered the rapid accumulation of publicly available multi-omics datasets. The application of integrated omics to explore robust signatures for clinical translation is increasingly emphasized, and this is attributed to the clinical success of immune checkpoint blockades in diverse malignancies. However, effective tools for comprehensively interpreting multi-omics data are still warranted to provide increased granularity into the intrinsic mechanism of oncogenesis and immunotherapeutic sensitivity. Therefore, we developed a computational tool for effective Immuno-Oncology Biological Research (IOBR), providing a comprehensive investigation of the estimation of reported or user-built signatures, TME deconvolution, and signature construction based on multi-omics data. Notably, IOBR offers batch analyses of these signatures and their correlations with clinical phenotypes, long non-coding RNA (lncRNA) profiling, genomic characteristics, and signatures generated from single-cell RNA sequencing (scRNA-seq) data in different cancer settings. Additionally, IOBR integrates multiple existing microenvironmental deconvolution methodologies and signature construction tools for convenient comparison and selection. Collectively, IOBR is a user-friendly tool for leveraging multi-omics data to facilitate immuno-oncology exploration and to unveil tumor-immune interactions and accelerating precision immunotherapy.

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