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Updated: Jun 15, 2026

Dual CRISPR-Interference Strategy for Targeting Synthetic Lethal Interactions Between Non-Coding RNAs in Cancer Cells
Published on: May 30, 2025
Future prospect of RNA interference for cancer therapies
Eishi Ashihara1, Eri Kawata, Taira Maekawa
1Department of Transfusion Medicine and Cell Therapy, Kyoto University Hospital, Shogoin Sakyo-ku, Kyoto, 606-8507, Japan. ash0325@kuhp.kyoto-u.ac.jp
Abstract:
RNA interference (RNAi) is a phenomenon of sequence-specific gene silencing in mammalian cells and its discovery has lead to its wide application as a powerful tool in post-genomic research. Recently, short interfering RNA (siRNA), which induces RNAi, has been experimentally introduced as a cancer therapy and is expected to be developed as a nucleic acid-based medicine. Selection of appropriate gene targets is an important parameter in the potential success of siRNA cancer therapies. Candidate targets include genes associated with cell proliferation, metastasis, angiogenesis, and drug resistance. Importantly, silencing of such genes must not affect the functions of normal cells. Development of suitable drug delivery systems (DDSs) is also an important issue. Numerous methods to transfect siRNAs into cells have been developed, and the use of non-viral DDSs is preferred because it offers greater safety for clinical application than does the use of viral DDSs. Currently, atelocollagen and cationic liposomes represent the most advantageous non-viral DDSs available. In this article, we briefly review the mechanism of RNAi and non-viral DDSs. Next we discuss in detail some of the most recent findings concerning the administration of potential nucleic acid-based drugs against polo-like kinase-1 (PLK-1), which regulates the mitotic process in mammalian cells. These promising results demonstrate that PLK-1 is a suitable target for cancer therapy. Finally, several current clinical trials of RNAi therapies against cancers are discussed. Results of current studies and clinical trials demonstrate that manipulation of RNAi mechanism by use of targeted siRNA offers promising strategies for cancer therapies.
Insights
RNA interference (RNAi) therapy uses short interfering RNA (siRNA) to silence cancer-causing genes. Promising results show polo-like kinase-1 (PLK-1) is a viable target for novel cancer treatments.
Area of Science:
- Molecular Biology
- Genetics
- Biotechnology
Background:
- RNA interference (RNAi) is a natural gene silencing process.
- Short interfering RNA (siRNA) leverages RNAi for therapeutic applications.
- siRNA-based cancer therapy is a rapidly developing field.
Purpose of the Study:
- To review the mechanism of RNAi and non-viral drug delivery systems (DDSs).
- To discuss the potential of polo-like kinase-1 (PLK-1) as a cancer therapy target.
- To examine current clinical trials for RNAi cancer therapies.
Main Methods:
- Review of RNAi mechanisms and non-viral DDSs.
- Detailed analysis of recent findings on PLK-1 as a therapeutic target.
- Discussion of ongoing clinical trials for RNAi-based cancer treatments.
Main Results:
- PLK-1, a regulator of cell division, is a promising target for siRNA therapy.
- Non-viral DDSs, such as atelocollagen and cationic liposomes, are effective and safe for siRNA delivery.
- Current studies and clinical trials indicate significant potential for RNAi therapies in oncology.
Conclusions:
- Targeted siRNA delivery offers a promising strategy for cancer treatment.
- PLK-1 is a validated target for developing novel nucleic acid-based cancer medicines.
- Advancements in non-viral DDSs enhance the safety and efficacy of RNAi therapeutics.
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