Repository logo


Illuminating the biochemical interaction of antimicrobial few-layer black phosphorus with microbial cells using synchrotron macro-ATR-FTIR

dc.contributor.authorShaw, ZLen_AU
dc.contributor.authorCheeseman, Sen_AU
dc.contributor.authorHuang, LZYen_AU
dc.contributor.authorPenman, Ren_AU
dc.contributor.authorAhmed, Ten_AU
dc.contributor.authorBryant, SJen_AU
dc.contributor.authorBryant, Gen_AU
dc.contributor.authorChristofferson, AJen_AU
dc.contributor.authorOrrell-Trigg, Ren_AU
dc.contributor.authorDekiwadia, Cen_AU
dc.contributor.authorTruong, ViKen_AU
dc.contributor.authorVongsvivut, JPen_AU
dc.contributor.authorWalia, Sen_AU
dc.contributor.authorElbourne, Aen_AU
dc.date.accessioned2026-07-28T00:04:57Zen_AU
dc.date.issued2021-12-20en_AU
dc.date.statistics2026-03-11en_AU
dc.description.abstractIn the fight against drug-resistant pathogenic bacterial and fungal cells, low-dimensional materials are emerging as a promising alternative treatment method. Specifically, few-layer black phosphorus (BP) has demonstrated its effectiveness against a wide range of pathogenic bacterial and fungal cells with studies suggesting low cytotoxicity towards healthy mammalian cells. However, the antimicrobial mechanism of action of BP is not well understood. Before new applications for this material can be realised, further in-depth investigations are required. In this work, the biochemical interaction between BP and a series of microbial cells is investigated using a variety of microscopy and spectroscopy techniques to provide a greater understanding of the antimicrobial mechanism. Synchrotron macro-attenuated total reflection-Fourier transform infrared (ATR-FTIR) micro-spectroscopy is used to elucidate the chemical changes occurring outside and within the cell of interest after exposure to BP nanoflakes. The ATR-FTIR data, coupled with high-resolution microscopy, reveals major physical and bio-chemical changes to the phospholipids and amide I and II proteins, as well as minor chemical changes to the structural polysaccharides and nucleic acids when compared to untreated cells. These changes can be attributed to the physical interaction of the BP nanoflakes with the cell membranes, combined with the oxidative stress induced by the degradation of the BP nanoflakes. This study provides insight into the biochemical interaction of BP nanoflakes with microbial cells, allowing for a better understanding of the antimicrobial mechanism of action that will be important for the next generation of applications such as implant coatings, wound dressings, or medical surfaces. © 2022 The Author(s). Published by the Royal Society of Chemistry.en_AU
dc.description.sponsorshipThis work was performed in part at the Micro Nano Research Facility at RMIT University in the Victorian Node of the Australian National Fabrication Facility (ANFF). Facilities and technical support from the RMIT Microscopy and Microanalysis Facility, a node of Microscopy Australia, is acknowledged. This research was undertaken in part on the Infrared microscopy beamline at the Australian Synchrotron, part of ANSTO. Scholarship support from the Australian Postgraduate Award (APA)/Research Training Program (RTP) scheme of the Australian government is acknowledged. We acknowledge equipment funding from the Australian Research Council through LE150100001. The authors would like to acknowledge the kind support on fungal strains from Dr Sarah Kidd from SA Pathology Laboratory. A. E. acknowledges support from the Jack Brockhoff Foundation (JBF Grant number 4655–2019). The Cypher ES AFM instrument was funded in part by Grant LE170100096 from the Australian Research Council (ARC). A. E. acknowledges funding received from the ARC (DE220100511).en_AU
dc.format.mediumElectronicen_AU
dc.identifier.citationShaw, Z. L., Cheeseman, S., Huang, L. Z. Y., Penman, R., Ahmed, T., Bryant, S. J., Bryant, G., Christofferson, A. J., Orrell-Trigg, R., Dekiwadia, C., Truong, V. K., Vongsvivut, J. P., Walia, S., & Elbourne, A. (2022). Illuminating the biochemical interaction of antimicrobial few-layer black phosphorus with microbial cells using synchrotron macro-ATR-FTIR. Journal of Materials Chemistry B, 10(37), 7527–7539. doi:10.1039/D1TB02575Aen_AU
dc.identifier.issn2050-750Xen_AU
dc.identifier.issn2050-7518en_AU
dc.identifier.issue37en_AU
dc.identifier.journaltitleJournal of Materials Chemistry Ben_AU
dc.identifier.pagination7527-7539en_AU
dc.identifier.urihttps://doi.org/10.1039/d1tb02575aen_AU
dc.identifier.urihttps://apo.ansto.gov.au/handle/10238/17287en_AU
dc.identifier.volume10en_AU
dc.languageEnglishen_AU
dc.language.isoenen_AU
dc.publisherRoyal Society of Chemistryen_AU
dc.subjectSynchrotronsen_AU
dc.subjectPhosphorusen_AU
dc.subjectBacteriaen_AU
dc.subjectMicroscopyen_AU
dc.subjectFungien_AU
dc.subjectAntimicrobial agentsen_AU
dc.subjectMicrobial drug resistanceen_AU
dc.titleIlluminating the biochemical interaction of antimicrobial few-layer black phosphorus with microbial cells using synchrotron macro-ATR-FTIRen_AU
dc.typeJournal Articleen_AU

Files

License bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
license.txt
Size:
1.66 KB
Format:
Plain Text
Description:

Collections