| Literature DB >> 25771013 |
Samir V Jenkins1, Haiou Qu2, Thilak Mudalige2, Taylor M Ingle3, Rongrong Wang4, Feng Wang5, Paul C Howard3, Jingyi Chen5, Yongbin Zhang6.
Abstract
Plasmonic nanomaterials as drug delivery or bio-imaging agents are typically introduced to biological systems through intravenous administration. However, the potential for agglomeration of nanoparticles in biological systems could dramatically affect their pharmacokinetic profile and toxic potential. Development of rapid screening methods to evaluate agglomeration is urgently needed to monitor the physical nature of nanoparticles as they are introduced into blood. Here, we establish novel methods using darkfield microscopy with hyperspectral detection (hsDFM), single particle inductively-coupled plasma mass spectrometry (spICP-MS), and confocal Raman microscopy (cRM) to discriminate gold nanoparticles (AuNPs) and their agglomerates in blood. Rich information about nanoparticle agglomeration in situ is provided by hsDFM monitoring of the plasmon resonance of primary nanoparticles and their agglomerates in whole blood; cRM is an effective complement to hsDFM to detect AuNP agglomerates in minimally manipulated samples. The AuNPs and the particle agglomerates were further distinguished in blood for the first time by quantification of particle mass using spICP-MS with excellent sensitivity and specificity. Furthermore, the agglomeration status of synthesized and commercial NPs incubated in blood was successfully assessed using the developed methods. Together, these complementary methods enable rapid determination of the agglomeration status of plasmonic nanomaterials in biological systems, specifically blood. Published by Elsevier Ltd.Entities:
Keywords: Blood; Darkfield microscopy; Gold; Nanoparticles; Silver; Single particle ICP-MS
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Year: 2015 PMID: 25771013 PMCID: PMC4369056 DOI: 10.1016/j.biomaterials.2015.01.072
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479