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An In Vitro Protocol for Evaluating MicroRNA Levels, Functions, and Associated Target Genes in Tumor Cells
Published on: May 21, 2019
Enhancing targeted strategies for cancer immunotherapy by elucidating mRNA processing mechanisms
Xiao Lu1, Wenwen Gan2, Jiang Yuan2
1Geriatric Diseases Institute of Chengdu/Cancer Prevention and Treatment Institute of Chengdu, Department of General Surgery, Chengdu Fifth People's Hospital(The Second Clinical Medical College, Affiliated Fifth People's Hospital of Chengdu University of Traditional Chinese Medicine), Chengdu, China.
Abstract:
Immune checkpoint inhibitors have transformed the landscape of cancer therapy; however, the challenge that most patients do not achieve durable benefits urgently necessitates the development of new strategies that extend beyond mere T-cell activation. mRNA processing-comprising alternative splicing, RNA modifications, and RNA editing-establishes a dynamically regulated connection between the intrinsic characteristics of tumors and anti-tumor immunity. This review systematically summarizes how mechanistic insights into these processes can be translated into concrete approaches that enhance the precision of immunotherapy. We first outline how the widely dysregulated splicing events in tumor cells produce abundant neoantigens at a frequency that significantly exceeds that of gene mutations. A subset of these splice isoforms is shared among patients, offering a unique antigen resource for the development of 'off-the-shelf' mRNA vaccines, thereby circumventing the manufacturing bottleneck associated with personalized vaccines. Concurrently, RNA modifications driven by N6-methyladenosine (m6A) create an immunosuppressive network at the epitranscriptomics level by bidirectionally modulating the stability of immune checkpoint molecules, e.g., Programmed Death-Ligand 1 (PD-L1), and the functional polarization of macrophages and dendritic cells. In parallel, Adenosine Deaminase Acting on RNA 1 (ADAR1)-mediated Adenosine-to-Inosine (A-to-I) editing designates endogenous double-stranded RNA as 'self,' allowing tumors to evade innate immune surveillance and conceal 'non-self' signals. This includes the exploitation of splicing-derived neoantigens for designing personalized or shared mRNA vaccines, the deployment of small-molecule inhibitors targeting FTO, Methyltransferase Like 3 (METTL3), and YTH Domain Family Member 2 (YTHDF2) to alleviate immunosuppression, and the utilization of antisense oligonucleotides to precisely modulate splicing factor activity, thereby reversing T-cell exhaustion. Building on this foundation, the combination of these strategies with immune checkpoint blockade has already demonstrated clear synergistic effects in preclinical models and early-phase trials. Additionally, biomarkers based on splicing signatures and expression levels of modification enzymes show promise for accurately stratifying benefiting populations. Despite challenges such as off-target toxicity, intratumoral heterogeneity, and delivery technologies, cutting-edge tools like single-cell and long-read sequencing are rapidly bridging the translational gap. Strategies targeting mRNA processing are advancing cancer immunotherapy from a model of "broad-spectrum activation" to a new paradigm of "precision modulation."
Insights
Harnessing mRNA processing, including splicing and RNA modifications, offers new cancer immunotherapy strategies beyond T-cell activation. These approaches enhance precision by targeting tumor neoantigens and modulating the immune microenvironment for better patient outcomes.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Immune checkpoint inhibitors (ICIs) have revolutionized cancer therapy, but many patients lack durable responses.
- Developing novel strategies beyond T-cell activation is crucial for improving immunotherapy efficacy.
- mRNA processing is a key regulator connecting tumor characteristics and anti-tumor immunity.
Purpose of the Study:
- To systematically review how insights into mRNA processing can enhance precision immunotherapy.
- To explore the potential of splicing, RNA modifications, and editing in cancer treatment.
- To highlight strategies for overcoming immunotherapy resistance.
Main Methods:
- Review of current literature on mRNA processing in cancer and immunity.
- Analysis of splicing events, RNA modifications (m6A), and RNA editing (A-to-I) in tumor cells.
- Examination of therapeutic strategies targeting mRNA processing pathways.
Main Results:
- Dysregulated splicing in tumors generates abundant neoantigens, some shared, enabling 'off-the-shelf' mRNA vaccines.
- N6-methyladenosine (m6A) modifications create an immunosuppressive epitranscriptomic network.
- Adenosine Deaminase Acting on RNA 1 (ADAR1)-mediated editing helps tumors evade immune surveillance.
- Targeting mRNA processing (e.g., FTO, METTL3, YTHDF2 inhibitors, antisense oligonucleotides) shows synergistic effects with ICIs.
- Biomarkers based on splicing signatures and modification enzymes can stratify patient populations.
Conclusions:
- mRNA processing offers a new paradigm for precision cancer immunotherapy, moving beyond broad T-cell activation.
- Strategies targeting splicing, RNA modifications, and editing hold significant promise for enhancing immunotherapy efficacy.
- Combination therapies and advanced sequencing technologies are key to overcoming challenges and advancing cancer treatment.
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