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Synergistic Anti-Tumor Activity of LRPPRC Inhibition and Dasatinib Through Dual Oxidative Phosphorylation Disruption
Jing Chen1, Lu Gao2, Yuxin Liang2
1The Second Clinical Medical College, Zhejiang Chinese Medical University, Hangzhou 310053, China.
Abstract:
Background/Objectives: Mitochondrial Oxidative Phosphorylation (OXPHOS) is a critical metabolic dependency in many cancers. Targeting OXPHOS through Leucine-Rich PPR Motif-Containing Protein (LRPPRC) degrader-mediated OXPHOS Complex Biogenesis Inhibition (OCBI) has demonstrated promising anti-tumor activity. However, rational combination strategies to enhance therapeutic efficacy remain undefined. This study aims to identify FDA-approved drugs that synergize with LRPPRC inhibition and elucidate the underlying mechanism. Methods: We conducted a high-throughput screen of 1376 FDA-approved compounds using LRPPRC isogenic cancer cell models to identify agents that synergize with LRPPRC degrader-based OCBI therapy. The synergistic effects of the candidate compound were validated in multiple cancer cell lines with either genetic ablation or pharmacological inhibition of LRPPRC. Mechanistic studies were performed to investigate the impact on OXPHOS gene expression from both nuclear and mitochondrial genomes. Results: The clinically approved multi-kinase inhibitor Dasatinib was identified as a robust synergistic candidate, exhibiting heightened sensitivity in cancer cells with either LRPPRC knockout or pharmacological inhibition. Mechanistically, Dasatinib selectively suppressed nuclear-encoded OXPHOS genes, whereas LRPPRC inhibition preferentially impaired mitochondrial DNA-encoded OXPHOS genes, resulting in a coordinated dual-genome blockade of OXPHOS. Conclusions: This study uncovers a previously unrecognized synergistic anti-tumor effect between LRPPRC inhibition and Dasatinib, mediated by complementary suppression of nuclear- and mitochondrial genome-encoded OXPHOS pathways. These findings provide a strong mechanistic and translational rationale for combination therapies targeting LRPPRC-high tumors.
Insights
Combining Dasatinib with LRPPRC inhibition offers a novel cancer therapy. This combination targets both nuclear and mitochondrial OXPHOS genes, enhancing anti-tumor effects in LRPPRC-high cancers.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Metabolism
Background:
- Mitochondrial Oxidative Phosphorylation (OXPHOS) is crucial for cancer cell metabolism.
- Targeting OXPHOS via Leucine-Rich PPR Motif-Containing Protein (LRPPRC) inhibition shows anti-tumor potential.
- Effective combination strategies for LRPPRC inhibition are needed.
Purpose of the Study:
- Identify FDA-approved drugs that synergize with LRPPRC inhibition.
- Elucidate the mechanism of synergistic anti-tumor activity.
Main Methods:
- High-throughput screening of 1376 FDA-approved compounds against LRPPRC isogenic cancer models.
- Validation of synergistic compounds in various cancer cell lines with LRPPRC modulation.
- Mechanistic studies on OXPHOS gene expression from nuclear and mitochondrial genomes.
Main Results:
- Dasatinib, a multi-kinase inhibitor, demonstrated robust synergy with LRPPRC inhibition.
- Dasatinib suppressed nuclear-encoded OXPHOS genes.
- LRPPRC inhibition impaired mitochondrial DNA-encoded OXPHOS genes, leading to dual-genome blockade.
Conclusions:
- A novel synergistic anti-tumor effect exists between LRPPRC inhibition and Dasatinib.
- The synergy results from complementary suppression of nuclear and mitochondrial OXPHOS pathways.
- Findings support combination therapy for LRPPRC-high tumors.
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