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Generation of Cationic Nanoliposomes for the Efficient Delivery of In Vitro Transcribed Messenger RNA
Published on: February 1, 2019
Antibody-functionalized lipid nanocarriers for RNA-based cancer gene therapy: advances and challenges in targeted
Nadine Wafik Nabih1, Hatem A F M Hassan2, Eduard Preis3
1Organic and Medicinal Chemistry Department, Faculty of Pharmacy, University of Sadat City Sadat City Menoufia 32897 Egypt.
Abstract:
Despite remarkable advances in cancer therapeutics, conventional treatments still face significant hurdles, including systemic toxicity, poor tumor specificity, multidrug resistance, and suboptimal intracellular delivery. Lipid-based nanocarriers (LBNCs) have emerged as versatile platforms for delivering therapeutic RNA molecules, offering biocompatibility and tunable properties that enhance drug stability and bioavailability. Functionalizing these nanocarriers with antibodies has unlocked new potential for achieving precise tumor targeting, leveraging the overexpression of specific receptors on cancer cells. This review provides a comprehensive and focused update on recent developments in antibody-decorated LBNCs designed for RNA-based cancer gene therapy. We discuss cutting-edge advances in conjugation chemistries, including site-specific strategies such as strain-promoted click reactions and Fc-glycan engineering, as well as the integration of emerging antibody formats, including nanobodies and single-domain antibodies. Furthermore, we present studies reporting the various LBNC formulations, including liposomes, solid lipid nanoparticles, lipid nanoparticles, and hybrid systems, highlighting their physicochemical characteristics, in vitro and in vivo performance, and the critical trade-offs between targeting specificity and endosomal escape efficiency. Epidemiological data underscore the pressing need for such innovations, particularly in aggressive and hard-to-treat cancers. While promising, clinical translation remains hindered by challenges in scalable manufacturing, regulatory approval, and biological complexity. Continued interdisciplinary research is essential to transform antibody-functionalized LBNCs from experimental strategies into clinically viable solutions for next-generation, RNA-based cancer therapies.
Insights
Antibody-decorated lipid-based nanocarriers (LBNCs) offer targeted RNA delivery for cancer gene therapy, overcoming conventional treatment limitations. Further research is needed for clinical translation of these advanced nanomedicines.
Area of Science:
- Nanomedicine and Drug Delivery
- Cancer Therapeutics
- Molecular Biology
Background:
- Conventional cancer treatments face challenges like toxicity, poor tumor specificity, and drug resistance.
- Lipid-based nanocarriers (LBNCs) show promise for delivering therapeutic RNA, enhancing drug stability and bioavailability.
- Antibody functionalization of LBNCs enables precise tumor targeting via specific receptor interactions.
Purpose of the Study:
- To provide a comprehensive review of recent advancements in antibody-decorated LBNCs for RNA-based cancer gene therapy.
- To discuss novel conjugation chemistries, antibody formats, and LBNC formulations.
- To highlight challenges and future directions for clinical translation.
Main Methods:
- Review of recent literature on antibody-functionalized LBNCs for cancer therapy.
- Discussion of conjugation strategies: site-specific methods (e.g., click reactions, Fc-glycan engineering).
- Analysis of various LBNC formulations (liposomes, SLNs, LNPs, hybrids) and their performance.
Main Results:
- Emerging antibody formats (nanobodies, single-domain antibodies) enhance targeting capabilities.
- LBNC formulations exhibit diverse physicochemical properties and varying in vitro/in vivo efficacy.
- Trade-offs exist between targeting specificity and endosomal escape efficiency.
Conclusions:
- Antibody-decorated LBNCs represent a promising strategy for next-generation RNA-based cancer therapies.
- Clinical translation is impeded by manufacturing, regulatory, and biological complexities.
- Interdisciplinary research is crucial to advance these nanomedicines into clinical practice.

