» Articles » PMID: 38203711

Visualizing the 4D Impact of Gold Nanoparticles on DNA

Overview
Journal Int J Mol Sci
Publisher MDPI
Date 2024 Jan 11
PMID 38203711
Authors
Affiliations
Soon will be listed here.
Abstract

The genotoxicity of AuNPs has sparked a scientific debate, with one perspective attributing it to direct DNA damage and another to oxidative damage through reactive oxygen species (ROS) activation. This controversy poses challenges for the widespread use of AuNPs in biomedical applications. To address this debate, we employed four-dimensional atomic force microscopy (4DAFM) to examine the ability of AuNPs to damage DNA in vitro in the absence of ROS. To further examine whether the size and chemical coupling of these AuNPs are properties that control their toxicity, we exposed individual DNA molecules to three different types of AuNPs: small (average diameter = 10 nm), large (average diameter = 22 nm), and large conjugated (average diameter = 39 nm) AuNPs. We found that all types of AuNPs caused rapid (within minutes) and direct damage to the DNA molecules without the involvement of ROS. This research holds significant promise for advancing nanomedicines in diverse areas like viral therapy (including COVID-19), cancer treatment, and biosensor development for detecting DNA damage or mutations by resolving the ongoing debate regarding the genotoxicity mechanism. Moreover, it actively contributes to the continuous endeavors aimed at fully harnessing the capabilities of AuNPs across diverse biomedical fields, promising transformative healthcare solutions.

Citing Articles

Special Issue on Nanoparticles in Nanobiotechnology and Nanomedicine.

Caizer C Int J Mol Sci. 2025; 26(1.

PMID: 39796123 PMC: 11720660. DOI: 10.3390/ijms26010267.


Gold Nanoparticles (AuNPs)-Toxicity, Safety and Green Synthesis: A Critical Review.

Niznik L, Noga M, Kobylarz D, Frydrych A, Krosniak A, Kapka-Skrzypczak L Int J Mol Sci. 2024; 25(7).

PMID: 38612865 PMC: 11012566. DOI: 10.3390/ijms25074057.

References
1.
Goodman C, Chari N, Han G, Hong R, Ghosh P, Rotello V . DNA-binding by functionalized gold nanoparticles: mechanism and structural requirements. Chem Biol Drug Des. 2006; 67(4):297-304. DOI: 10.1111/j.1747-0285.2006.00372.x. View

2.
Mazur A, Maaloum M . DNA flexibility on short length scales probed by atomic force microscopy. Phys Rev Lett. 2014; 112(6):068104. DOI: 10.1103/PhysRevLett.112.068104. View

3.
Huang Y, Wu C, Aronstam R . Toxicity of Transition Metal Oxide Nanoparticles: Recent Insights from in vitro Studies. Materials (Basel). 2017; 3(10):4842-4859. PMC: 5445783. DOI: 10.3390/ma3104842. View

4.
Oh E, Delehanty J, Sapsford K, Susumu K, Goswami R, Blanco-Canosa J . Cellular uptake and fate of PEGylated gold nanoparticles is dependent on both cell-penetration peptides and particle size. ACS Nano. 2011; 5(8):6434-48. DOI: 10.1021/nn201624c. View

5.
Yu Z, Li Q, Wang J, Yu Y, Wang Y, Zhou Q . Reactive Oxygen Species-Related Nanoparticle Toxicity in the Biomedical Field. Nanoscale Res Lett. 2020; 15(1):115. PMC: 7239959. DOI: 10.1186/s11671-020-03344-7. View