Advances in RNA-based cancer therapeutics: pre-clinical and clinical implications
Yubo Yan1, Shuang Liu2, Jie Wen3
1Department of Thoracic Surgery, Harbin Medical University Cancer Hospital, Harbin, China.
Abstract:
Cancer therapy has been revolutionised by the emergence of RNA-based therapeutics, providing several strategies and mechanisms to regulate gene expression via messenger RNA (mRNA), small interfering RNA (siRNA), microRNAs (miRNA), antisense oligonucleotides (ASOs), and RNA aptamers. The present review highlights the recent advances in the preclinical development and clinical applications of RNA-based therapeutics, focusing on the delivery strategies, biological targets, and pharmacological optimisation, together with key clinical data. mRNA therapeutics, especially those adapted from vaccine platforms are being developed for the cancer immunotherapy and protein replacement, while siRNAs and ASOs enable highly specific gene silencing and splice correction. miRNA therapies show potential for diverse oncogenic pathway control, despite ongoing challenges in the delivery and specificity. RNA aptamers are obtaining attention as tumor-targeting agents in the drug delivery systems. Progress in lipid nanoparticles, chemical modifications, and tissue-specific delivery has improved the stability and efficacy of these agents. Early-phase clinical trials report encouraging outcomes in both solid tumours and haematologic malignancies, particularly in overcoming resistance and modulating the tumor microenvironment (TME). Although challenges remain in scalability, immune activation, and deep-tumour penetration, RNA-based strategies are advancing towards integration into clinical oncology. Continued refinement of delivery technologies and targeted trial designs will be critical for translating these therapies into effective, personalized cancer treatments.
Insights
RNA therapeutics, including mRNA and siRNA, are revolutionizing cancer treatment by regulating gene expression. Advances in delivery and targeting show promise in clinical trials for various cancers, overcoming resistance and improving outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- RNA-based therapeutics offer novel strategies for cancer treatment by modulating gene expression.
- Key RNA types include messenger RNA (mRNA), small interfering RNA (siRNA), microRNAs (miRNA), antisense oligonucleotides (ASOs), and RNA aptamers.
Purpose of the Study:
- To review recent advances in preclinical and clinical applications of RNA-based therapeutics for cancer.
- To focus on delivery strategies, biological targets, and pharmacological optimization of these agents.
Main Methods:
- Review of preclinical developments and clinical trial data for various RNA-based therapeutics.
- Analysis of delivery systems such as lipid nanoparticles and chemical modifications.
- Examination of biological targets and pharmacological optimization strategies.
Main Results:
- mRNA therapeutics show potential in cancer immunotherapy and protein replacement.
- siRNA and ASOs enable precise gene silencing and splice correction.
- miRNA therapies offer oncogenic pathway control, while RNA aptamers serve as tumor-targeting agents.
- Progress in delivery technologies has enhanced RNA agent stability and efficacy.
- Early clinical trials report positive outcomes in solid tumors and hematologic malignancies, including overcoming resistance and modulating the tumor microenvironment (TME).
Conclusions:
- RNA-based strategies are advancing towards clinical oncology integration, with promising results in early-phase trials.
- Challenges in scalability, immune activation, and tumor penetration need to be addressed.
- Continued refinement of delivery technologies and trial designs is crucial for personalized cancer treatments.
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