Research map: Role of m6A RNA Methylation in T Cell Biology and Immunotherapy
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Papers in this map
- Topology of the human and mouse m6A RNA methylomes revealed by m6A-seq · Dan Dominissini · 2012 · 5175 citations · Cited by this paper
- Neurotoxic Effects of Metal and Metal Oxide Nanoparticles and the Protective Role of Natural Bioactive Compounds · 2026 · Related
- Comprehensive Analysis of mRNA Methylation Reveals Enrichment in 3′ UTRs and near Stop Codons · Kate D. Meyer · 2012 · 4442 citations · Cited by this paper
- Immune Evasion in Pancreatic Ductal Adenocarcinoma: Mechanistic Insights and Emerging Strategies to Reinvigorate Anti-Cancer Immunity · 2026 · Related
- N6-Methyladenosine in nuclear RNA is a major substrate of the obesity-associated FTO · Guifang Jia · 2011 · 4234 citations · Cited by this paper
- Nanobiotechnology-Based Strategies for Targeting Neuroinflammation and Neural Tissue Engineering · 2026 · Related
- Dynamic RNA Modifications in Gene Expression Regulation · Ian A. Roundtree · 2017 · 3701 citations · Cited by this paper
- Identification and Prioritization of Neoantigens Derived from Non-Synonymous Mutations in Melanoma Through HLA Class I Binding Prediction · 2026 · Related
- The role of m6A modification in the biological functions and diseases · Xiulin Jiang · 2021 · 2473 citations · Cited by this paper
- Immune Responses to Filarial Nematodes: A Mechanistic Evaluation of Evasion and Modulation Strategies · 2025 · Related
- Where, When, and How: Context-Dependent Functions of RNA Methylation Writers, Readers, and Erasers · Hailing Shi · 2019 · 2112 citations · Cited by this paper
- Harnessing Living Therapies: The Role of CAR-T Cells, Oncolytic Viruses, and Bacteria in Cancer Treatment · 2026 · Related
- Dynamic transcriptomic m6A decoration: writers, erasers, readers and functions in RNA metabolism · Ying Yang · 2018 · 1835 citations · Cited by this paper
- Cytokine Release Syndrome-like Reactions Following Exposure to Iodinated Contrast Media: A Case Series · 2026 · Related
- Single-nucleotide-resolution mapping of m6A and m6Am throughout the transcriptome · Bastian Linder · 2015 · 1676 citations · Cited by this paper
- Complement at the Nano–Neuroimmune Interface: A Hypothesis-Driven Perspective on Opioid Use Disorder · 2026 · Related
- m6A mRNA methylation controls T cell homeostasis by targeting the IL-7/STAT5/SOCS pathways · Huabing Li · 2017 · 1072 citations · Cited by this paper
- Development of a Multiplexed Fluorescent Pseudovirus Neutralization Test for Simultaneous Assessment of Immunity to Three SARS-CoV-2 Variants · 2026 · Related
- RNA-Methylation-Dependent RNA Processing Controls the Speed of the Circadian Clock · Jean‐Michel Fustin · 2013 · 1022 citations · Cited by this paper
- Potential Target Line, FGFR3, EGFR and Immune Checkpoint Axis for Bladder Cancer Therapy · 2026 · Related
- Anti-tumour immunity controlled through mRNA m6A methylation and YTHDF1 in dendritic cells · Dali Han · 2019 · 1011 citations · Cited by this paper
- RNA N 6 -methyladenosine methylation in post-transcriptional gene expression regulation · Yanan Yue · 2015 · 991 citations · Cited by this paper
- A Unified Model for the Function of YTHDF Proteins in Regulating m6A-Modified mRNA · Sara Zaccara · 2020 · 896 citations · Cited by this paper
- MODOMICS: a database of RNA modification pathways. 2021 update · Pietro Boccaletto · 2021 · 856 citations · Cited by this paper
- m6A RNA methylation: from mechanisms to therapeutic potential · P. Cody He · 2021 · 841 citations · Cited by this paper
- m6A mRNA demethylase FTO regulates melanoma tumorigenicity and response to anti-PD-1 blockade · Seungwon Yang · 2019 · 830 citations · Cited by this paper
- The epitranscriptome beyond m6A · David Wiener · 2020 · 761 citations · Cited by this paper
- The RNA modification landscape in human disease · Nicky Jonkhout · 2017 · 651 citations · Cited by this paper
- ALKBH5 regulates anti–PD-1 therapy response by modulating lactate and suppressive immune cell accumulation in tumor microenvironment · Na Li · 2020 · 618 citations · Cited by this paper
- m6A RNA Methylation Is Regulated by MicroRNAs and Promotes Reprogramming to Pluripotency · Tong Chen · 2015 · 567 citations · Cited by this paper
- Interferon-Regulatory Factor 4 Is Essential for the Developmental Program of T Helper 9 Cells · Valérie Staudt · 2010 · 559 citations · Cited by this paper
- N6-methyladenosine-modified circIGF2BP3 inhibits CD8+ T-cell responses to facilitate tumor immune evasion by promoting the deubiquitination of PD-L1 in non-small cell lung cancer · Zhenchuan Liu · 2021 · 528 citations · Cited by this paper
- Nanopore direct RNA sequencing maps the complexity of Arabidopsis mRNA processing and m6A modification · Matthew T Parker · 2020 · 526 citations · Cited by this paper
- METTL3/IGF2BP3 axis inhibits tumor immune surveillance by upregulating N6-methyladenosine modification of PD-L1 mRNA in breast cancer · Weijun Wan · 2022 · 524 citations · Cited by this paper
- CD8+ T cells in the cancer-immunity cycle · Josephine Ruth Giles · 2023 · 450 citations · Cited by this paper
- m6A RNA methyltransferases METTL3/14 regulate immune responses to anti‐PD‐1 therapy · Lingling Wang · 2020 · 434 citations · Cited by this paper
- RNA m6A methylation across the transcriptome · Erdem Sendinc · 2023 · 424 citations · Cited by this paper
- Methylation of Structured RNA by the m6A Writer METTL16 Is Essential for Mouse Embryonic Development · Mateusz Mendel · 2018 · 414 citations · Cited by this paper
- RNA modifications: importance in immune cell biology and related diseases · Lian Cui · 2022 · 411 citations · Cited by this paper
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