3.8 Review

Gold nanoparticles delivery in mammalian live cells: a critical review

Journal

NANO REVIEWS & EXPERIMENTS
Volume 1, Issue 1, Pages -

Publisher

TAYLOR & FRANCIS LTD
DOI: 10.3402/nano.v1i0.4889

Keywords

gold nanoparticles; cell delivery; bionanotechnology; nanomaterials; photothermal microscopy; cell imaging; intracellular fate

Funding

  1. BBSRC [BB/D020638/1] Funding Source: UKRI
  2. Biotechnology and Biological Sciences Research Council [BB/D020638/1, BB/C520471/1] Funding Source: Medline

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Functional nanomaterials have recently attracted strong interest from the biology community, not only as potential drug delivery vehicles or diagnostic tools, but also as optical nanomaterials. This is illustrated by the explosion of publications in the field with more than 2,000 publications in the last 2 years (4,000 papers since 2000; from ISI Web of Knowledge, 'nanoparticle and cell' hit). Such a publication boom in this novel interdisciplinary field has resulted in papers of unequal standard, partly because it is challenging to assemble the required expertise in chemistry, physics, and biology in a single team. As an extreme example, several papers published in physical chemistry journals claim intracellular delivery of nanoparticles, but show pictures of cells that are, to the expert biologist, evidently dead (and therefore permeable). To attain proper cellular applications using nanomaterials, it is critical not only to achieve efficient delivery in healthy cells, but also to control the intracellular availability and the fate of the nanomaterial. This is still an open challenge that will only be met by innovative delivery methods combined with rigorous and quantitative characterization of the uptake and the fate of the nanoparticles. This review mainly focuses on gold nanoparticles and discusses the various approaches to nanoparticle delivery, including surface chemical modifications and several methods used to facilitate cellular uptake and endosomal escape. We will also review the main detection methods and how their optimum use can inform about intracellular localization, efficiency of delivery, and integrity of the surface capping.

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