Effect of metallic nanoparticles on amyloid fibrils and their influence to neural cell toxicity

被引:0
作者
Marianna Barbalinardo
Andrea Antosova
Marta Gambucci
Zuzana Bednarikova
Cristiano Albonetti
Francesco Valle
Paola Sassi
Loredana Latterini
Zuzana Gazova
Eva Bystrenova
机构
[1] C.N.R. - I.S.M.N,Institute of Experimental Physics, Department of Biophysics
[2] Slovak Academy of Science,Department of Chemistry, Biology and Biotechnology
[3] University of Perugia,Department of Medical and Clinical Biochemistry, Faculty of Medicine
[4] Consorzio Interuniversitario per lo Sviluppo dei Sistemi a Grande Interfase (CSGI),undefined
[5] ISMN-CNR,undefined
[6] Safarik University,undefined
来源
Nano Research | 2020年 / 13卷
关键词
lysozyme; amyloid fibrils; nanoparticles; spectroscopy; toxicity;
D O I
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中图分类号
学科分类号
摘要
The modification of amyloid fibrils cytotoxicity through exogenous nanomaterials is crucial to understand the processes controlling the role of protein aggregation in the related diseases. The influence of nanoparticles on amyloid stability yields great interest due to the small size and high surface area-to-volume ratio of nanoparticles. Various physico-chemical parameters play a role in the interaction of proteins and nanoparticles in solution, thus influencing the disaggregation of preformed fibrils. We have examined the influence of two kinds of metallic nanoparticles on lysozyme amyloid fibrils using a multi-technique approach and focalized their impact on cytotoxicity on human neuroblastoma cells (SH-SY5Y). In particular, fluorescence, infrared and circular dichroism spectroscopies, optical and atomic force microscopy experiments have been carried out; the results are analyzed to rationalize the effects of these complexes on neural cell viability. It is remarkable, that the fibrils in the presence of AuNPs, unlike fibrils alone or with AgNPs, do not generate a significant cytotoxic effect even at high concentration and an amyloid degradation effect is visible.
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页码:1081 / 1089
页数:8
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