Streich, Carmen; Stein, Frederic; Jakobi, Jurij; Ingendoh-Tsakmakidis, Alexandra; Heine, Nils; Rehbock, Christoph; Winkel, Andreas; Grade, Sebastian; Kühnel, Mark; Migunov, Vadim; Kovács, András; Knura, Thomas; Stiesch, Meike; Sures, Bernd; Barcikowski, Stephan:
The Origin of the Intracellular Silver in Bacteria : A Comprehensive Study using Targeting Gold–Silver Alloy Nanoparticles
In: Advanced Healthcare Materials, Jg. 12 (2023), Heft 30, Artikel 2302084
2023Artikel/Aufsatz in ZeitschriftOA Hybrid
ChemieBiologieFakultät für Chemie » Technische ChemieFakultät für Biologie » Aquatische ÖkologieForschungszentren » Zentrum für Medizinische Biotechnologie (ZMB)
Damit verbunden: 1 Publikation(en)
Titel in Englisch:
The Origin of the Intracellular Silver in Bacteria : A Comprehensive Study using Targeting Gold–Silver Alloy Nanoparticles
Autor*in:
Streich, CarmenUDE
LSF ID
56231
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Stein, Frederic
;
Jakobi, JurijUDE
LSF ID
53232
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Ingendoh-Tsakmakidis, Alexandra
;
Heine, Nils
;
Rehbock, ChristophUDE
LSF ID
53195
ORCID
0000-0002-4708-5246ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Winkel, Andreas
;
Grade, Sebastian
;
Kühnel, Mark
;
Migunov, Vadim
;
Kovács, András
;
Knura, ThomasUDE
LSF ID
5760
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Stiesch, Meike
;
Sures, BerndUDE
GND
173045731
LSF ID
47226
ORCID
0000-0001-6865-6186ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Barcikowski, StephanUDE
GND
129006084
LSF ID
52773
ORCID
0000-0002-9739-7272ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
korrespondierende*r Autor*in
Erscheinungsjahr:
2023
Open Access?:
OA Hybrid
Web of Science ID
PubMed ID
Scopus ID
Sprache des Textes:
Englisch
Schlagwort, Thema:
AgAu ; alloy particles ; aptamers ; biomedicine ; LAL ; nano-bioconjugates
Ressourcentyp:
Text

Abstract in Englisch:

The bactericidal effects of silver nanoparticles (Ag NPs) against infectious strains of multiresistant bacteria is a well-studied phenomenon, highly relevant for many researchers and clinicians battling bacterial infections. However, little is known about the uptake of the Ag NPs into the bacteria, the related uptake mechanisms, and how they are connected to antimicrobial activity. Even less information is available on AgAu alloy NPs uptake. In this work, the interactions between colloidal silver–gold alloy nanoparticles (AgAu NPs) and Staphylococcus aureus (S. aureus) using advanced electron microscopy methods are studied. The localization of the nanoparticles is monitored on the membrane and inside the bacterial cells and the elemental compositions of intra- and extracellular nanoparticle species. The findings reveal the formation of pure silver nanoparticles with diameters smaller than 10 nm inside the bacteria, even though those particles are not present in the original colloid. This finding is explained by a local RElease PEnetration Reduction (REPER) mechanism of silver cations emitted from the AgAu nanoparticles, emphasized by the localization of the AgAu nanoparticles on the bacterial membrane by aptamer targeting ligands. These findings can deepen the understanding of the antimicrobial effect of nanosilver, where the microbes are defusing the attacking silver ions via their reduction, and aid in the development of suitable therapeutic approaches.