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Published on: February 9, 2019
Rational design of lipid-based nanoparticles for targeted anticancer therapies
María Arenas-Moreira1, Alberto Ocaña2,3, Carlos Alonso-Moreno4
1Departamento de Química Inorgánica, Orgánica y Bioquímica, Facultad de Farmacia-Centro de Innovación en Química Avanzada (ORFEO-CINQA), Unidad nanoDrug, Universidad de Castilla-La Mancha, Albacete, 02008, Spain.
Abstract:
Targeted anticancer therapies, including monoclonal antibodies, antibody-drug conjugates, siRNA, small-molecule inhibitors, and PROTACs, offer precise treatments but face severe pharmacokinetic and biological barriers, such as poor bioavailability, limited tumor penetration, and off-target toxicity. While first-generation lipid-based nanoparticles (LBNPs) successfully utilized the enhanced permeability and retention (EPR) effect, relying exclusively on passive targeting is insufficient due to tumor heterogeneity. Therefore, this review provides an integrative analysis focused on the rational design of LBNPs. We systematically explore how the distinct structural complexities and biological barriers of each therapeutic modality strictly dictate specific LBNP design rules. The optimization of various nanocarriers-including liposomes, solid-lipid nanoparticles, and nanostructured lipid carriers-is discussed through customized lipid compositions, surface functionalization for active targeting, and the incorporation of ionizable lipids to overcome intracellular barriers like endosomal entrapment. Furthermore, these structural designs are correlated with optimal administration routes, and the impact of formulation methods is evaluated by contrasting traditional emulsification with advanced continuous platforms like microfluidics and supercritical fluid technology. Finally, the clinical landscape and translational challenges of approved and experimental nanomedicines are assessed. We conclude that the transition from bench to bedside is currently hindered less by preclinical efficacy and more by manufacturing and regulatory bottlenecks. Overcoming chemistry, manufacturing, and controls (CMC) challenges, ensuring robust industrial scalability, and establishing harmonized regulatory frameworks are critical priorities for the future clinical success of targeted nanomedicines.
Insights
Rational design of lipid-based nanoparticles (LBNPs) is crucial for targeted cancer therapies. Optimizing LBNP structure and formulation overcomes biological barriers and manufacturing challenges for clinical success.
Area of Science:
- Nanomedicine
- Drug Delivery
- Oncology
Background:
- Targeted anticancer therapies face pharmacokinetic and biological barriers like poor bioavailability and tumor penetration.
- First-generation lipid-based nanoparticles (LBNPs) utilized the EPR effect, but tumor heterogeneity necessitates improved targeting strategies.
Purpose of the Study:
- To provide an integrative analysis of rational LBNP design for targeted anticancer therapies.
- To correlate LBNP structural complexities with specific therapeutic modalities and biological barriers.
Main Methods:
- Systematic exploration of LBNP design rules based on therapeutic modality.
- Discussion of nanocarrier optimization (liposomes, SLNs, NLCs) via lipid composition, surface functionalization, and ionizable lipids.
- Evaluation of administration routes and formulation methods (emulsification, microfluidics, supercritical fluid technology).
Main Results:
- Distinct LBNP structural designs are dictated by therapeutic modalities and biological barriers.
- Customized lipid compositions, surface functionalization, and ionizable lipids enhance nanocarrier performance.
- Advanced formulation platforms offer advantages over traditional methods.
Conclusions:
- Transitioning nanomedicines to clinical use is hindered by manufacturing and regulatory bottlenecks, not preclinical efficacy.
- Addressing chemistry, manufacturing, and controls (CMC) challenges and ensuring scalability are critical.
- Harmonized regulatory frameworks are essential for the future clinical success of targeted nanomedicines.
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