Physicochemical Properties Influence the Cytotoxicity Level of Gold Nanoparticles
2025
Преузимање 🢃
Аутори
Valenta Šobot, Ana
Živković, Sanja
Momčilović, Miloš
Potkonjak, Nebojša
Butulija, Svetlana
Momić, Tatjana
Filipović Tričković, Jelena
Конференцијски прилог (Објављена верзија)
Метаподаци
Приказ свих података о документуАпстракт
Gold nanoparticles (AuNPs) can be used for a variety of biological applications, including medical treatment and drug transport [1]. A wide AuNPs application range arises the necessity to broaden studies of parameters that affect their toxicity. Their biocompatibility can differ in relation to synthesis method and the used chemical for their stabilization, but also their physicochemical properties e.g. size and shape [2]. Laser ablation of a gold target could be considered as “green” synthesis, since no chemical or toxic waste is produced [3]. Our goal was to analyze the physicochemical properties and cytotoxicity impact of two “green” AuNPs synthesized under different laser parameters. The analyzed AuNPs were characterized by UV–visible spectroscopy analysis, dynamic light scattering (DLS), and ζ-potential (ZP) measurements at two time points to additionally asses their stability. Cytotoxic concentration of AuNPs on the human cell line MRC-5 was evaluated by viability assay (XTT). Our... results indicated that cytotoxic effects arise parallel to elevation of applied concentration. AuNPs with UV spectra maximum at lower wavelengths, higher ζ-potential and hydrodynamic diameter, and higher stability displayed higher levels of cytotoxicity. A safe application depends on AuNPs' biocompatibility that relies on their unique physical and chemical properties that influence their stability. Future perspectives, which include functionalization and AuNPs coating, could additionally reduce their toxicity by altering their physicochemical properties and focus their specific applications.
Извор:
IEEE NAP-2025 : 15th International Conference “Nanomaterials: Applications & Properties” : Book of abstracts, 2025, 11nra-56-Издавач:
- Institute of Electrical and Electronics Engineers
Финансирање / пројекти:
- Министарство науке, технолошког развоја и иновација Републике Србије, институционално финансирање - 200017 (Универзитет у Београду, Институт за нуклеарне науке Винча, Београд-Винча) (RS-MESTD-inst-2020-200017)
- 2023-07-17 GentiGoldCell - Functional nanocomposite for skin tretment (RS-ScienceFundRS-DokazKoncepta-14874)
Напомена:
- 2025 IEEE 15th International Conference “Nanomaterials: Applications & Properties” (IEEE NAP-2025) : September 7–12, 2025, Bratislava, Slovakia.
- Conference Track: “Nanobiomedical Research & Applications”
- Abstract ID #NRA-1735
Колекције
Институција/група
VinčaTY - CONF AU - Valenta Šobot, Ana AU - Živković, Sanja AU - Momčilović, Miloš AU - Potkonjak, Nebojša AU - Butulija, Svetlana AU - Momić, Tatjana AU - Filipović Tričković, Jelena PY - 2025 UR - https://vinar.vin.bg.ac.rs/handle/123456789/15592 AB - Gold nanoparticles (AuNPs) can be used for a variety of biological applications, including medical treatment and drug transport [1]. A wide AuNPs application range arises the necessity to broaden studies of parameters that affect their toxicity. Their biocompatibility can differ in relation to synthesis method and the used chemical for their stabilization, but also their physicochemical properties e.g. size and shape [2]. Laser ablation of a gold target could be considered as “green” synthesis, since no chemical or toxic waste is produced [3]. Our goal was to analyze the physicochemical properties and cytotoxicity impact of two “green” AuNPs synthesized under different laser parameters. The analyzed AuNPs were characterized by UV–visible spectroscopy analysis, dynamic light scattering (DLS), and ζ-potential (ZP) measurements at two time points to additionally asses their stability. Cytotoxic concentration of AuNPs on the human cell line MRC-5 was evaluated by viability assay (XTT). Our results indicated that cytotoxic effects arise parallel to elevation of applied concentration. AuNPs with UV spectra maximum at lower wavelengths, higher ζ-potential and hydrodynamic diameter, and higher stability displayed higher levels of cytotoxicity. A safe application depends on AuNPs' biocompatibility that relies on their unique physical and chemical properties that influence their stability. Future perspectives, which include functionalization and AuNPs coating, could additionally reduce their toxicity by altering their physicochemical properties and focus their specific applications. PB - Institute of Electrical and Electronics Engineers C3 - IEEE NAP-2025 : 15th International Conference “Nanomaterials: Applications & Properties” : Book of abstracts T1 - Physicochemical Properties Influence the Cytotoxicity Level of Gold Nanoparticles SP - 11nra-56 UR - https://hdl.handle.net/21.15107/rcub_vinar_15592 ER -
@conference{
author = "Valenta Šobot, Ana and Živković, Sanja and Momčilović, Miloš and Potkonjak, Nebojša and Butulija, Svetlana and Momić, Tatjana and Filipović Tričković, Jelena",
year = "2025",
abstract = "Gold nanoparticles (AuNPs) can be used for a variety of biological applications, including medical treatment and drug transport [1]. A wide AuNPs application range arises the necessity to broaden studies of parameters that affect their toxicity. Their biocompatibility can differ in relation to synthesis method and the used chemical for their stabilization, but also their physicochemical properties e.g. size and shape [2]. Laser ablation of a gold target could be considered as “green” synthesis, since no chemical or toxic waste is produced [3]. Our goal was to analyze the physicochemical properties and cytotoxicity impact of two “green” AuNPs synthesized under different laser parameters. The analyzed AuNPs were characterized by UV–visible spectroscopy analysis, dynamic light scattering (DLS), and ζ-potential (ZP) measurements at two time points to additionally asses their stability. Cytotoxic concentration of AuNPs on the human cell line MRC-5 was evaluated by viability assay (XTT). Our results indicated that cytotoxic effects arise parallel to elevation of applied concentration. AuNPs with UV spectra maximum at lower wavelengths, higher ζ-potential and hydrodynamic diameter, and higher stability displayed higher levels of cytotoxicity. A safe application depends on AuNPs' biocompatibility that relies on their unique physical and chemical properties that influence their stability. Future perspectives, which include functionalization and AuNPs coating, could additionally reduce their toxicity by altering their physicochemical properties and focus their specific applications.",
publisher = "Institute of Electrical and Electronics Engineers",
journal = "IEEE NAP-2025 : 15th International Conference “Nanomaterials: Applications & Properties” : Book of abstracts",
title = "Physicochemical Properties Influence the Cytotoxicity Level of Gold Nanoparticles",
pages = "11nra-56",
url = "https://hdl.handle.net/21.15107/rcub_vinar_15592"
}
Valenta Šobot, A., Živković, S., Momčilović, M., Potkonjak, N., Butulija, S., Momić, T.,& Filipović Tričković, J.. (2025). Physicochemical Properties Influence the Cytotoxicity Level of Gold Nanoparticles. in IEEE NAP-2025 : 15th International Conference “Nanomaterials: Applications & Properties” : Book of abstracts Institute of Electrical and Electronics Engineers., 11nra-56. https://hdl.handle.net/21.15107/rcub_vinar_15592
Valenta Šobot A, Živković S, Momčilović M, Potkonjak N, Butulija S, Momić T, Filipović Tričković J. Physicochemical Properties Influence the Cytotoxicity Level of Gold Nanoparticles. in IEEE NAP-2025 : 15th International Conference “Nanomaterials: Applications & Properties” : Book of abstracts. 2025;:11nra-56. https://hdl.handle.net/21.15107/rcub_vinar_15592 .
Valenta Šobot, Ana, Živković, Sanja, Momčilović, Miloš, Potkonjak, Nebojša, Butulija, Svetlana, Momić, Tatjana, Filipović Tričković, Jelena, "Physicochemical Properties Influence the Cytotoxicity Level of Gold Nanoparticles" in IEEE NAP-2025 : 15th International Conference “Nanomaterials: Applications & Properties” : Book of abstracts (2025):11nra-56, https://hdl.handle.net/21.15107/rcub_vinar_15592 .


