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A Multiplexed Luciferase-based Screening Platform for Interrogating Cancer-associated Signal Transduction in Cultured Cells
Published on: July 3, 2013
Demonstration of SLU7 as a new cancer target
Carla Rojo1, Aaron Otero1, Maria Elizalde1
1Hepatology Laboratory, Solid Tumors Program, CIMA, CCUN, University of Navarra, Pamplona, Spain.
Abstract:
Cancer treatment remains challenging due to heterogeneous responses to immunotherapy across patients and tumor types. Innovative strategies are required to overcome immune evasion. We have identified the splicing factor SLU7 as essential for the survival of cancer cells from diverse origins. SLU7 knockdown induces R-loop accumulation, transcription-dependent genomic instability, DNA damage, and replication catastrophe, together with aberrant splicing and inhibition of nonsense-mediated mRNA decay (NMD) and/or DNA methylation. These alterations lead to the expression of neoantigens, interferon B1, endogenous retroviruses, and cancer-testis antigens, which would enhance tumor immunogenicity. Therefore, we propose SLU7 targeting as a dual-action therapy, combining direct tumor suppression with immune activation. We used organoids and various murine cancer models, including orthotopic liver tumors, and multiple molecular strategies, such as inducible CRISPR/Cas9 and shRNA, systemic delivery of chimeric siSLU7-nucleolin aptamers (APTASLU), and intratumoral injection of siSLU7-loaded nanoparticles alone or in combination with the immune checkpoint inhibitor anti-PD1. We show that distinct siSLU7 sequences and delivery platforms effectively inhibit the growth of tumors including liver orthotopic and human hepatocellular carcinoma, cholangiocarcinoma and colon carcinoma subcutaneous xenografts. Furthermore, SLU7 silencing may synergize with immune checkpoint inhibitors, amplifying anti-tumor responses. Our in vivo data demonstrate that SLU7 is a promising, versatile target for possibly diverse cancers. Its multimodal mechanism offers potential to overcome tumor heterogeneity, reverse immune tolerance, and enhance immunotherapy efficacy.
Insights
Targeting the splicing factor SLU7 offers a novel cancer therapy. SLU7 inhibition suppresses tumor growth and enhances anti-tumor immunity by increasing neoantigen expression, making it a promising strategy for diverse cancers.
Area of Science:
- Oncology
- Molecular Biology
- Immunotherapy
Background:
- Cancer treatment faces challenges due to varied patient and tumor responses to immunotherapy.
- Overcoming immune evasion is crucial for developing effective cancer therapies.
Purpose of the Study:
- To identify novel therapeutic targets for cancer treatment.
- To investigate the role of splicing factor SLU7 in cancer cell survival and tumor immunogenicity.
- To evaluate SLU7 targeting as a dual-action therapy combining direct tumor suppression and immune activation.
Main Methods:
- Utilized organoids and murine cancer models (including orthotopic liver tumors).
- Employed molecular strategies: inducible CRISPR/Cas9, shRNA, chimeric siSLU7-nucleolin aptamers (APTASLU), and siSLU7-loaded nanoparticles.
- Investigated SLU7 silencing alone and in combination with anti-PD1 immune checkpoint inhibitor.
Main Results:
- SLU7 knockdown induced R-loop accumulation, genomic instability, DNA damage, and aberrant splicing.
- SLU7 inhibition led to increased expression of neoantigens, interferon B1, endogenous retroviruses, and cancer-testis antigens, enhancing tumor immunogenicity.
- SLU7 silencing effectively inhibited tumor growth in various models and showed synergistic effects with immune checkpoint inhibitors.
Conclusions:
- SLU7 is essential for cancer cell survival and represents a versatile therapeutic target for diverse cancers.
- Targeting SLU7 offers a dual mechanism of action: direct tumor suppression and immune activation.
- SLU7 inhibition has the potential to overcome tumor heterogeneity, reverse immune tolerance, and improve immunotherapy efficacy.
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