Structural parameters of nanoparticles affecting their toxicity for biomedical applications: a review
Структурные параметры наночастиц, влияющие на их токсичность при применении в биомедицине: обзор
2023-02-27
SCID: 54.1/sbkuupwb
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biomedical applicationsmetallic nanoparticlesnanoparticle toxicityphysicochemical parameterstargeted drug delivery
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Abstract (AI)
Rapidly growing interest in using nanoparticles (NPs) for biomedical applications has increased concerns about their safety and toxicity. In comparison with bulk materials, NPs are more chemically active and toxic due to the greater surface area and small size. Understanding the NPs' mechanism of toxicity, together with the factors influencing their behavior in biological environments, can help researchers to design NPs with reduced side effects and improved performance. After overviewing the classification and properties of NPs, this review article discusses their biomedical applications in molecular imaging and cell therapy, gene transfer, tissue engineering, targeted drug delivery, Anti-SARS-CoV-2 vaccines, cancer treatment, wound healing, and anti-bacterial applications. There are different mechanisms of toxicity of NPs, and their toxicity and behaviors depend on various factors, which are elaborated on in this article. More specifically, the mechanism of toxicity and their interactions with living components are discussed by considering the impact of different physiochemical parameters such as size, shape, structure, agglomeration state, surface charge, wettability, dose, and substance type. The toxicity of polymeric, silica-based, carbon-based, and metallic-based NPs (including plasmonic alloy NPs) have been considered separately.
Key Findings
1
Nanoparticle toxicity and biological behavior are influenced by physicochemical parameters including size, shape, structure, agglomeration state, surface charge, wettability, dose, and material type.
2
Nanoparticles generally exhibit greater chemical activity and toxicity than bulk materials because of their smaller size and larger surface area.
3
Nanoparticles have broad biomedical applications, including imaging, cell therapy, gene transfer, tissue engineering, targeted drug delivery, vaccines, cancer treatment, wound healing, and antibacterial use.
4
The review links nanoparticle toxicity to interactions with living components and discusses multiple toxicity mechanisms relevant to biomedical environments.
5
Toxicity is examined separately for polymeric, silica-based, carbon-based, metallic, and plasmonic alloy nanoparticles to support safer nanoparticle design.
Research Object
nanoparticles used in biomedical applications
Research Subject
the effects of physicochemical structural parameters on nanoparticle toxicity, behavior, and interactions with living components
Publication Details
Publication Date
2023-02-27
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