Plasma Clearance of Bacteriophage Qβ Particles as a Function of Surface Charge
- 5 January 2008
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 130 (4) , 1328-1334
- https://doi.org/10.1021/ja075937f
Abstract
Self-assembled protein capsids have gained attention as a promising class of nanoparticles for biomedical applications due to their monodisperse nature and versatile genetic and chemical tailorability. To determine the plasma clearance and tissue distribution in mice of the versatile capsid of bacteriophage Qβ, the particles were decorated with gadolinium complexes using the CuI-mediated azide−alkyne cycloaddition reaction. Interior surface labeling was engineered by the introduction of an azide-containing unnatural amino acid into the coat protein for the first time. Clearance rates were conveniently monitored by quantitative detection of Gd using inductively coupled plasma optical emission spectroscopy and were found to be inversely proportional to the number of complexes attached to the exterior surface of the particle. This phenomenon was correlated to changes in exterior surface charge brought about by acylation of surface-exposed amine groups in the initial step of the bioconjugation protocol. When primary amine groups were reintroduced by azide−alkyne coupling, the circulation time increased accordingly. These results show that nanoparticle trafficking may be tailored in predictable ways by chemical and genetic modifications that modulate surface charge.Keywords
This publication has 72 references indexed in Scilit:
- Bio-distribution, toxicity and pathology of cowpea mosaic virus nanoparticles in vivoJournal of Controlled Release, 2007
- An amino acid substitution in a capsid protein enhances phage survival in mouse circulatory system more than a 1000-foldVirus Research, 2005
- Selective attachment and release of a chemotherapeutic agent from the interior of a protein cage architectureChemical Communications, 2004
- A new approach to bioconjugates for proteins and peptides (“pegylation”) utilising living radical polymerisationChemical Communications, 2004
- Pharmacokinetic and biodistribution properties of poly(ethylene glycol)–protein conjugatesAdvanced Drug Delivery Reviews, 2003
- Cell Surface Labeling of Escherichia coli via Copper(I)-Catalyzed [3+2] CycloadditionJournal of the American Chemical Society, 2003
- Virus Particle Explorer (VIPER), a Website for Virus Capsid Structures and Their Computational AnalysesJournal of Virology, 2001
- Dressing Up Adenoviruses to Modify Their TropismHuman Gene Therapy, 1999
- Mosaic Qβ coats as a new presentation modelFEBS Letters, 1998
- Effects of deuterium labeling on azido amino acid mutagenicity in Salmonella typhimuriumMutation Research - Fundamental and Molecular Mechanisms of Mutagenesis, 1994