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Precision Engineering of Targeted Nanocarriers

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Specialty Biotechnology
Date 2018 Feb 14
PMID 29436157
Citations 12
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Abstract

Since their introduction in 1980, the number of advanced targeted nanocarrier systems has grown considerably. Nanocarriers capable of targeting single receptors, multiple receptors, or multiple epitopes have all been used to enhance delivery efficiency and selectivity. Despite tremendous progress, preclinical studies and clinically translatable nanotechnology remain disconnected. The disconnect in targeting efficacy may stem from poorly-understood factors such as receptor clustering, spatial control of targeting ligands, ligand mobility, and ligand architecture. Further, the relationship between receptor distribution and ligand architecture remains elusive. Traditionally, targeted nanocarriers were engineered assuming a "static" target. However, it is becoming increasingly clear that receptor expression patterns change in response to external stimuli and disease progression. Here, we discuss how cutting-edge technologies will enable a better characterization of the spatiotemporal distribution of membrane receptors and their clustering. We further describe how this will enable the design of new nanocarriers that selectively target the site of disease. Ultimately, we explore how the precision engineering of targeted nanocarriers that adapt to receptor dynamics will have the potential to drive nanotechnology to the forefront of therapy and make targeted nanomedicine a clinical reality. This article is categorized under: Therapeutic Approaches and Drug Discovery > Emerging Technologies Nanotechnology Approaches to Biology > Nanoscale Systems in Biology Biology-Inspired Nanomaterials > Lipid-Based Structures Biology-Inspired Nanomaterials > Protein and Virus-Based Structures.

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References
1.
Soman N, Baldwin S, Hu G, Marsh J, Lanza G, Heuser J . Molecularly targeted nanocarriers deliver the cytolytic peptide melittin specifically to tumor cells in mice, reducing tumor growth. J Clin Invest. 2009; 119(9):2830-42. PMC: 2735896. DOI: 10.1172/JCI38842. View

2.
Ricard I, Payet M, Dupuis G . VCAM-1 is internalized by a clathrin-related pathway in human endothelial cells but its alpha 4 beta 1 integrin counter-receptor remains associated with the plasma membrane in human T lymphocytes. Eur J Immunol. 1998; 28(5):1708-18. DOI: 10.1002/(SICI)1521-4141(199805)28:05<1708::AID-IMMU1708>3.0.CO;2-Y. View

3.
Lhoumeau A, Martinez S, Boher J, Monges G, Castellano R, Goubard A . Overexpression of the Promigratory and Prometastatic PTK7 Receptor Is Associated with an Adverse Clinical Outcome in Colorectal Cancer. PLoS One. 2015; 10(5):e0123768. PMC: 4427440. DOI: 10.1371/journal.pone.0123768. View

4.
Srebnik , Chakraborty , Shakhnovich . Adsorption-Freezing Transition for Random Heteropolymers near Disordered 2D Manifolds due to "Pattern Matching". Phys Rev Lett. 1996; 77(15):3157-3160. DOI: 10.1103/PhysRevLett.77.3157. View

5.
Rodal S, Skretting G, Garred O, Vilhardt F, van Deurs B, Sandvig K . Extraction of cholesterol with methyl-beta-cyclodextrin perturbs formation of clathrin-coated endocytic vesicles. Mol Biol Cell. 1999; 10(4):961-74. PMC: 25220. DOI: 10.1091/mbc.10.4.961. View