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Integrated transcriptomics and machine learning reveal REN as a dual regulator of tumor stemness and NK cell evasion
Qingfei Cao1, Junyi Li1, Yunfei Zou2
1Department of Urology, The First Affiliated Hospital of Jinzhou Medical University, Jinzhou, Liaoning, China.
Introduction:
Wilms tumor (WT) is the most common pediatric kidney cancer, which presents significant therapeutic challenges, particularly in high-risk cases, due to chemotherapy resistance and immunosuppressive tumor microenvironments (TMEs). Tumor stemness and immune evasion mechanisms are implicated in poor clinical outcomes, yet the molecular drivers underpinning these processes remain inadequately understood.
Methods:
We employed an integrative approach combining single-cell RNA sequencing (scRNA-seq), spatial transcriptomics, bulk RNA-seq, and advanced machine learning techniques to uncover molecular regulators of tumor behavior in WT. A novel Cancer Stemness Prognostic Index (CSPI) was developed using machine learning algorithms to stratify WT patients by risk and histological subtype. Additionally, molecular docking simulations and in vitro functional assays were performed to validate the role of key regulators in tumor stemness and immune evasion, as well as to explore potential therapeutic strategies targeting these molecular drivers.
Results:
Renin gene (REN) emerged as a central regulator of tumor stemness and immune evasion in WT. High-CSPI tumors exhibited enhanced tumor stemness phenotypes, metabolic reprogramming (ROS/oxidative phosphorylation), and suppressed immune activity. Spatial transcriptomics revealed distinct histological subtype-specific localization of stemness-related gene expression and physical proximity between REN-expressing tumor cells and natural killer (NK) cells. At spatial and single-cell resolution, REN-expressing tumor cells promoted NK cell exhaustion via PTN-NCL and COL4A1-CD44 ligand-receptor interactions, while showing limited impact on T cell dysfunction. Molecular docking identified estrogen-based compounds as potential REN inhibitors. Functional assays validated REN knockdown as significantly impairing tumor proliferation, migration, and survival in vitro.
Discussion:
This study establishes REN as a pivotal driver of tumor stemness and immune evasion in WT, playing a dual role in promoting tumor aggressiveness and suppressing NK-mediated immune surveillance. Targeting REN offers promising therapeutic opportunities for high-risk WT cases by simultaneously inhibiting tumor progression and restoring immune function. These findings emphasize REN's potential as a transformative target for precision oncology and underscore the value of integrative transcriptomics in advancing personalized cancer treatment strategies.
Insights
Renin gene (REN) drives Wilms tumor (WT) stemness and immune evasion, promoting aggressiveness and suppressing natural killer (NK) cell surveillance. Targeting REN offers a dual therapeutic strategy for high-risk WT, inhibiting tumor growth and restoring anti-tumor immunity.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Wilms tumor (WT) is a common pediatric kidney cancer with poor outcomes in high-risk cases due to chemotherapy resistance and immunosuppressive tumor microenvironments.
- Tumor stemness and immune evasion are critical factors in WT progression, but their underlying molecular drivers are not fully understood.
Purpose of the Study:
- To identify molecular regulators of tumor stemness and immune evasion in Wilms tumor using an integrative multi-omics approach.
- To develop a prognostic index for Wilms tumor risk stratification and explore therapeutic targets.
Main Methods:
- Integrative analysis of single-cell RNA sequencing, spatial transcriptomics, and bulk RNA-seq data.
- Development of a machine learning-based Cancer Stemness Prognostic Index (CSPI).
- Molecular docking and in vitro functional assays to validate key regulators and therapeutic strategies.
Main Results:
- The renin gene (REN) was identified as a key regulator of tumor stemness and immune evasion in WT.
- High-CSPI Wilms tumors exhibited increased stemness, altered metabolism, and suppressed immune activity, particularly involving natural killer (NK) cells.
- REN-expressing tumor cells promoted NK cell exhaustion through specific ligand-receptor interactions (PTN-NCL, COL4A1-CD44).
- Estrogen-based compounds were predicted as REN inhibitors, and REN knockdown impaired tumor cell proliferation and survival in vitro.
Conclusions:
- REN is a pivotal driver of Wilms tumor aggressiveness and immune evasion, targeting NK cell surveillance.
- Targeting REN presents a promising therapeutic strategy for high-risk Wilms tumor, potentially inhibiting tumor progression and restoring anti-tumor immunity.
- Integrative transcriptomics provides valuable insights for developing precision oncology treatments for Wilms tumor.
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