PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 3, 2007Proceedings of the National Academy of Sciences3,247 citationsOpen Access

Understanding the nanoparticle–protein corona using methods to quantify exchange rates and affinities of proteins for nanoparticles

View Full Paper
TCTommy CedervallLund UniversityILIseult LynchBirmingham City UniversitySLStina LindmanUniversity College Dublin

Key Points

  • To develop and validate experimental approaches for measuring the binding affinities, exchange rates, and stoichiometries of proteins forming the nanoparticle corona.
  • Evaluated interactions between copolymer nanoparticles of varying size and hydrophobicity with human plasma, albumin, and fibrinogen.
  • Applied isothermal titration calorimetry to measure binding affinity and stoichiometry, surface plasmon resonance with thiol-linked gold nanoparticles to determine kinetic rates, and size exclusion chromatography for non-perturbing protein isolation.
  • Isothermal titration calorimetry effectively quantified equilibrium binding parameters and stoichiometric ratios of protein association on nanoparticle surfaces.
  • Surface plasmon resonance and size exclusion chromatography resolved kinetic association and dissociation rates, showing that binding properties depend directly on protein identity, particle surface hydrophobicity, and particle size.

Abstract

Due to their small size, nanoparticles have distinct properties compared with the bulk form of the same materials. These properties are rapidly revolutionizing many areas of medicine and technology. Despite the remarkable speed of development of nanoscience, relatively little is known about the interaction of nanoscale objects with living systems. In a biological fluid, proteins associate with nanoparticles, and the amount and presentation of the proteins on the surface of the particles leads to an in vivo response. Proteins compete for the nanoparticle "surface," leading to a protein "corona" that largely defines the biological identity of the particle. Thus, knowledge of rates, affinities, and stoichiometries of protein association with, and dissociation from, nanoparticles is important for understanding the nature of the particle surface seen by the functional machinery of cells. Here we develop approaches to study these parameters and apply them to plasma and simple model systems, albumin and fibrinogen. A series of copolymer nanoparticles are used with variation of size and composition (hydrophobicity). We show that isothermal titration calorimetry is suitable for studying the affinity and stoichiometry of protein binding to nanoparticles. We determine the rates of protein association and dissociation using surface plasmon resonance technology with nanoparticles that are thiol-linked to gold, and through size exclusion chromatography of protein-nanoparticle mixtures. This method is less perturbing than centrifugation, and is developed into a systematic methodology to isolate nanoparticle-associated proteins. The kinetic and equilibrium binding properties depend on protein identity as well as particle surface characteristics and size.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Cedervall et al. (2007) studied this question.

synapsesocial.com/papers/69d7c63333ca018b39ae2bc3https://doi.org/10.1073/pnas.0608582104
Ask AI
Helpful
Bookmark
Share
View Full Paper