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Engineering stimuli-responsive nanocarriers for CRISPR/Cas9 genome editing: next-generation cancer therapeutics
1Department of Biotechnology, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences (SIMATS), Thandalam, Chennai, Tamil Nadu 602105, India.
Objectives:
To highlight recent developments in CRISPR/Cas9 genome-editing strategies for cancer therapy and to evaluate how nanocarrier-based delivery systems enable controlled, spatiotemporal manipulation of genetic information to overcome off-target effects, cytotoxicity, and limitations in clinical translation.
Key Findings:
CRISPR/Cas9 has emerged as a simple and programmable tool for correcting cancer-associated mutations and regulating adaptive immune responses; however, challenges such as off-target effects, unintended mutations in healthy cells, and cytotoxicity hinder its clinical application. Nanocarriers address these limitations through refined spatiotemporal delivery of Cas9 nuclease and sgRNA using internal and external stimuli-responsive functional groups. These systems improve cancer-cell specificity by engineering guide RNAs, prevent premature clearance, enhance systemic circulation and intracellular delivery, enable nuclear targeting, and regulate Cas9 activity. Stimuli such as light, heat, ultrasound, magnetic fields, pH, redox conditions, glutathione, and oxygen play key roles in controlled activation and release.
Summary:
This review critically evaluates the structural design of nanocarriers, advanced spatiotemporal regulation strategies, and safety and efficacy concerns in CRISPR/Cas9-based cancer therapeutics. It discusses the role of cell-specific promoters, small-molecule stimulation, and stimuli-responsive delivery systems in improving genome-editing precision and therapeutic outcomes. The review also outlines future opportunities for exploiting CRISPR/Cas9 in advanced biomedical applications to enhance the effectiveness of next-generation cancer therapy.
Insights
Nanocarriers enhance CRISPR/Cas9 genome editing for cancer therapy by enabling precise delivery of gene-editing tools. This approach aims to improve cancer cell specificity and overcome challenges like off-target effects for safer, more effective treatments.
Area of Science:
- Biotechnology
- Genomics
- Nanomedicine
Background:
- CRISPR/Cas9 is a powerful genome-editing tool with potential in cancer therapy.
- Clinical translation is hindered by off-target effects, cytotoxicity, and delivery challenges.
Purpose of the Study:
- To review recent CRISPR/Cas9 developments for cancer therapy.
- To evaluate nanocarrier systems for controlled gene editing delivery.
- To address limitations in clinical translation of CRISPR/Cas9 cancer therapies.
Main Methods:
- Utilizing nanocarriers for spatiotemporal delivery of Cas9 nuclease and sgRNA.
- Employing internal and external stimuli-responsive functional groups for controlled release.
- Engineering guide RNAs for enhanced cancer-cell specificity and improved systemic circulation.
Main Results:
- Nanocarriers improve specificity, prevent premature clearance, and enhance intracellular delivery.
- Stimuli-responsive systems (light, heat, ultrasound, etc.) enable controlled activation and release of CRISPR/Cas9 components.
- CRISPR/Cas9 shows promise in correcting cancer mutations and regulating immune responses.
Conclusions:
- Nanocarrier design and stimuli-responsive strategies are crucial for precise CRISPR/Cas9 cancer therapeutics.
- Cell-specific promoters and small-molecule stimulation can enhance genome-editing precision.
- Future opportunities lie in leveraging CRISPR/Cas9 for next-generation cancer therapies.
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