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Multifunctional antitumor molecule 5'-triphosphate siRNA combining glutaminase silencing and RIG-I activation
1Jiangsu Key Laboratory of Molecular Medicine, Medical School of Nanjing University, Nanjing, China.
Abstract:
Resisting cell death, reprogrammed metabolism and immune escape are fundamental traits of hard-to-treat cancers. Therapeutic improvement can be expected by designing drugs targeting all three aspects. 5'-Triphosphate RNA (ppp-RNA), a specific ligand of the pattern recognition receptor retinoic acid-inducible gene I (RIG-I), has been shown to trigger intrinsic apoptosis of malignant cells and to activate antitumor immune responses via type I interferons (IFNs). In our study, we designed a ppp-modified siRNA specifically silencing glutaminase (ppp-GLS), a key enzyme of glutaminolysis that is indispensable for many cancer types. Bifunctional ppp-GLS induced more prominent antitumor responses than RNA molecules that contained either the RIG-I ligand motif or GLS silencing capability alone. The cytopathic effect was constrained to tumor cells as nonmalignant cells were not affected. We then analyzed the mechanisms leading to the profound antitumor efficacy. First, ppp-GLS effectively induced intrinsic proapoptotic signaling. In addition, GLS silencing sensitized malignant cells to RIG-I-induced apoptosis. Moreover, disturbed glutaminolysis by GLS silencing contributed to enhanced cytotoxicity. Finally, RIG-I activation blocked autophagic degradation leading to dysfunctional mitochondria and reactive oxygen species (ROS) generation, whereas GLS silencing severely impaired ROS scavenging systems, leading to a vicious circle of ROS-mediated cytotoxicity. Taken together, ppp-GLS combines cell death induction, immune activation and glutaminase inhibition in a single molecule and has high therapeutic efficacy against cancer cells.
Insights
A novel bifunctional molecule, ppp-GLS, effectively targets cancer by inducing apoptosis and activating immune responses. This single molecule inhibits glutaminase and leverages RIG-I activation for potent antitumor effects, sparing healthy cells.
Area of Science:
- Oncology
- Immunology
- Molecular Biology
Background:
- Hard-to-treat cancers exhibit resistance to cell death, altered metabolism, and immune evasion.
- Targeting these fundamental cancer traits offers a promising therapeutic strategy.
- 5'-Triphosphate RNA (ppp-RNA) activates the RIG-I pathway, inducing apoptosis and antitumor immunity.
Purpose of the Study:
- To design and evaluate a bifunctional molecule combining RIG-I activation with glutaminase inhibition for cancer therapy.
- To investigate the mechanisms underlying the antitumor efficacy of the designed molecule.
Main Methods:
- Design of a ppp-modified siRNA targeting glutaminase (ppp-GLS).
- Assessment of ppp-GLS efficacy in inducing apoptosis, immune activation, and cytotoxicity in cancer cells.
- Analysis of molecular pathways including RIG-I signaling, glutaminolysis, and reactive oxygen species (ROS) generation.
Main Results:
- Bifunctional ppp-GLS demonstrated superior antitumor responses compared to single-function RNA molecules.
- Therapeutic effects were specific to tumor cells, with no impact on nonmalignant cells.
- ppp-GLS induced apoptosis, enhanced RIG-I-mediated apoptosis, disrupted glutaminolysis, and created a ROS-mediated cytotoxicity cycle.
Conclusions:
- ppp-GLS effectively combines apoptosis induction, immune activation, and glutaminase inhibition in a single molecule.
- This novel therapeutic agent exhibits high efficacy against cancer cells.
- The findings support ppp-GLS as a promising candidate for cancer treatment.
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