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Integrative analyses of the RNA modification machinery reveal tissue- And cancer-specific signatures

Title: Integrative analyses of the RNA modification machinery reveal tissue- And cancer-specific signatures
Authors: Begik, O; Lucas, MC; Liu, H; Ramirez, JM; Mattick, JS; Novoa, EM
Source: urn:ISSN:1474-7596 ; urn:ISSN:1474-760X ; Genome Biology, 21, 1, 97
Publisher Information: Springer Nature
Publication Year: 2020
Collection: UNSW Sydney (The University of New South Wales): UNSWorks
Subject Terms: 31 Biological Sciences; 3102 Bioinformatics and Computational Biology; 32 Biomedical and Clinical Sciences; 3105 Genetics; Cancer; Human Genome; Genetics; 2.1 Biological and endogenous factors; Animals; Carrier Proteins; Epididymis; Evolution; Molecular; Humans; Male; Meiosis; Methyltransferases; Mice; Molecular Sequence Annotation; Neoplasms; Organ Specificity; RNA Processing; Post-Transcriptional; Spermatogenesis; Dysregulation in cancer; Epitranscriptomics; RNA modifications; Tissue specificity; anzsrc-for: 31 Biological Sciences; anzsrc-for: 3102 Bioinformatics and Computational Biology
Description: Background: RNA modifications play central roles in cellular fate and differentiation. However, the machinery responsible for placing, removing, and recognizing more than 170 RNA modifications remains largely uncharacterized and poorly annotated, and we currently lack integrative studies that identify which RNA modification-related proteins (RMPs) may be dysregulated in each cancer type. Results: Here, we perform a comprehensive annotation and evolutionary analysis of human RMPs, as well as an integrative analysis of their expression patterns across 32 tissues, 10 species, and 13,358 paired tumor-normal human samples. Our analysis reveals an unanticipated heterogeneity of RMP expression patterns across mammalian tissues, with a vast proportion of duplicated enzymes displaying testis-specific expression, suggesting a key role for RNA modifications in sperm formation and possibly intergenerational inheritance. We uncover many RMPs that are dysregulated in various types of cancer, and whose expression levels are predictive of cancer progression. Surprisingly, we find that several commonly studied RNA modification enzymes such as METTL3 or FTO are not significantly upregulated in most cancer types, whereas several less-characterized RMPs, such as LAGE3 and HENMT1, are dysregulated in many cancers. Conclusions: Our analyses reveal an unanticipated heterogeneity in the expression patterns of RMPs across mammalian tissues and uncover a large proportion of dysregulated RMPs in multiple cancer types. We provide novel targets for future cancer research studies targeting the human epitranscriptome, as well as foundations to understand cell type-specific behaviors that are orchestrated by RNA modifications.
Document Type: article in journal/newspaper
File Description: application/pdf
Language: unknown
Relation: https://hdl.handle.net/1959.4/unsworks_67553
DOI: 10.1186/s13059-020-02009-z
Availability: https://hdl.handle.net/1959.4/unsworks_67553; https://unsworks.unsw.edu.au/bitstreams/2a19c506-6d57-4fbe-a335-8936ac0ee5c5/download; https://doi.org/10.1186/s13059-020-02009-z
Rights: open access ; https://purl.org/coar/access_right/c_abf2 ; CC BY ; https://creativecommons.org/licenses/by/4.0/ ; free_to_read
Accession Number: edsbas.36AAC511
Database: BASE