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Updated: Mar 26, 2026

DNA Vector-based RNA Interference to Study Gene Function in Cancer
Published on: June 4, 2012
Imaging-guided delivery of RNAi for anticancer treatment
Junqing Wang1, Peng Mi2, Gan Lin3
1State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics and Center for Molecular Imaging and Translational Medicine, School of Public Health, Xiamen University, Xiamen 361102, China; Department of Imaging and Interventional Radiology, Faculty of Medicine, Prince of Wales Hospital, The Chinese University of Hong Kong, Shatin, Hong Kong, China.
Abstract:
The RNA interference (RNAi) technique is a new modality for cancer therapy, and several candidates are being tested clinically. In the development of RNAi-based therapeutics, imaging methods can provide a visible and quantitative way to investigate the therapeutic effect at anatomical, cellular, and molecular level; to noninvasively trace the distribution; to and study the biological processes in preclinical and clinical stages. Their abilities are important not only for therapeutic optimization and evaluation but also for shortening of the time of drug development to market. Typically, imaging-functionalized RNAi therapeutics delivery that combines nanovehicles and imaging techniques to study and improve their biodistribution and accumulation in tumor site has been progressively integrated into anticancer drug discovery and development processes. This review presents an overview of the current status of translating the RNAi cancer therapeutics in the clinic, a brief description of the biological barriers in drug delivery, and the roles of imaging in aspects of administration route, systemic circulation, and cellular barriers for the clinical translation of RNAi cancer therapeutics, and with partial content for discussing the safety concerns. Finally, we focus on imaging-guided delivery of RNAi therapeutics in preclinical development, including the basic principles of different imaging modalities, and their advantages and limitations for biological imaging. With growing number of RNAi therapeutics entering the clinic, various imaging methods will play an important role in facilitating the translation of RNAi cancer therapeutics from bench to bedside.
Insights
RNA interference (RNAi) cancer therapy is advancing, with imaging methods crucial for tracking drug delivery and efficacy. This review highlights imaging
Area of Science:
- Biomedical Engineering
- Molecular Biology
- Oncology
Background:
- RNA interference (RNAi) represents a novel therapeutic strategy for cancer treatment, with ongoing clinical investigations.
- Effective delivery and biodistribution of RNAi therapeutics are critical challenges in clinical translation.
- Imaging techniques offer noninvasive visualization and quantification of therapeutic processes.
Purpose of the Study:
- To review the clinical translation status of RNAi cancer therapeutics.
- To elucidate the role of imaging in overcoming biological barriers for RNAi drug delivery.
- To discuss the principles, advantages, and limitations of various imaging modalities in preclinical development.
Main Methods:
- Comprehensive literature review of RNAi cancer therapeutics and imaging applications.
- Analysis of biological barriers affecting drug delivery, including administration, circulation, and cellular uptake.
- Overview of preclinical imaging-guided delivery strategies for RNAi therapeutics.
Main Results:
- Imaging enables detailed investigation of therapeutic effects at anatomical, cellular, and molecular levels.
- Functionalized RNAi therapeutics combined with nanovehicles and imaging improve tumor site biodistribution and accumulation.
- Imaging plays a vital role in optimizing therapeutic strategies and shortening drug development timelines.
Conclusions:
- Imaging is indispensable for the optimization, evaluation, and clinical translation of RNAi cancer therapeutics.
- Imaging-guided delivery enhances the preclinical development of RNAi-based cancer treatments.
- Continued integration of advanced imaging modalities will accelerate the bench-to-bedside transition of RNAi therapies.
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