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RESEARCH ARTICLE (Open Access)

Challenges to the design and testing of antimicrobial nanostructured surfaces

Denver Linklater A B C and Elena P. Ivanova A B *
+ Author Affiliations
- Author Affiliations

A School of Science, STEM College, RMIT University, Melbourne Vic. 3000, Australia.

B ARC Hub for Australian Steel Manufacturing, Wollongong, NSW, Australia.

C Department of Biomedical Engineering, The University of Melbourne, Parkville, Vic. 3010, Australia.




Dr Denver Linklater is a McKenzie Postdoctoral Fellow in Biomedical Engineering at The University of Melbourne’s Faculty of Engineering and Information Technology. Her research interests are in design and synthesis of nanomaterials for novel anti-microbial technologies, stem cell culture and tissue re-generation.



Elena Ivanova is a Distinguished Professor of RMIT University. Her research interests are in design and fabrication of biomimetic antimicrobial micro- and nano-structured surfaces, materials biointerfaces and immobilisation of biomolecules and microorganisms in micro- and nano-environments.

* Correspondence to: elena.ivanova@rmit.edu.au

Microbiology Australia 44(2) 79-82 https://doi.org/10.1071/MA23023
Submitted: 31 March 2023  Accepted: 8 May 2023   Published: 26 May 2023

© 2023 The Author(s) (or their employer(s)). Published by CSIRO Publishing on behalf of the ASM. This is an open access article distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (CC BY-NC-ND)

Abstract

Nanomaterials, specifically nano-topographies, have been explored for their antimicrobial activity toward bacteria, fungi and even viruses. A decade ago, we discovered that the nanopillar topography of insect wings such as cicadas, dragonflies and damselflies, were not repelling bacteria as previously surmised, but bacteria were attaching and consequently being killed. The nature of the bactericidal effect associated with nanostructured insect wings has been extended to include antimicrobial activity toward both to environmental and pathogenic fungi. Specifically, the antimicrobial nature is associated with the physical disintegration of attached microbes due to a mechanical stress imposed on the cell membrane, which stretches and breaks. This exciting new discovery implies that, if successfully replicated on the surface of biomaterials and implantable devices, systemic or local administration of antibiotics are no longer required to kill bacteria that attach on such surfaces.

Keywords: antibacterial surfaces, antimicrobial surfaces, biofilms, insect wing surfaces, printed antimicrobial surfaces.


References

[1]  Linklater, DP and Ivanova, EP (2022) Nanostructured antibacterial surfaces – what can be achieved? Nano Today 43, 101404.
Nanostructured antibacterial surfaces – what can be achieved?Crossref | GoogleScholarGoogle Scholar |

[2]  Ivanova, EP et al. (2020) The multi-faceted mechano-bactericidal mechanism of nanostructured surfaces. Proc Natl Acad Sci USA 117, 12598–12605.
The multi-faceted mechano-bactericidal mechanism of nanostructured surfaces.Crossref | GoogleScholarGoogle Scholar |

[3]  Le, PH et al. (2020) Nanoscale surface roughness influences Candida albicans biofilm formation. ACS Appl Bio Mater 3, 8581–8591.
Nanoscale surface roughness influences Candida albicans biofilm formation.Crossref | GoogleScholarGoogle Scholar |

[4]  Linklater, DP et al. (2020) Mechano-bactericidal actions of nanostructured surfaces. Nat Rev Microbiol 19, 8–22.
Mechano-bactericidal actions of nanostructured surfaces.Crossref | GoogleScholarGoogle Scholar |

[5]  Linklater, DP et al. (2018) Mechano-bactericidal mechanism of graphene nanomaterials. Interface Focus 8, 20170060.
Mechano-bactericidal mechanism of graphene nanomaterials.Crossref | GoogleScholarGoogle Scholar |

[6]  Linklater, DP et al. (2018) High aspect ratio nanostructures kill bacteria via storage and release of mechanical energy. ACS Nano 12, 6657–6667.
High aspect ratio nanostructures kill bacteria via storage and release of mechanical energy.Crossref | GoogleScholarGoogle Scholar |

[7]  Linklater, DP et al. (2019) Mechanical inactivation of Staphylococcus aureus and Pseudomonas aeruginosa by titanium substrata with hierarchical surface structures. Materialia 5, 100197.
Mechanical inactivation of Staphylococcus aureus and Pseudomonas aeruginosa by titanium substrata with hierarchical surface structures.Crossref | GoogleScholarGoogle Scholar |

[8]  Linklater, DP et al. (2017) Nanofabrication of mechano-bactericidal surfaces. Nanoscale 9, 16564–16585.
Nanofabrication of mechano-bactericidal surfaces.Crossref | GoogleScholarGoogle Scholar |

[9]  Linklater, DP et al. (2017) Comment on “Bactericidal effects of natural nanotopography of dragonfly wing on Escherichia coli”. ACS Appl Mater Interfaces 9, 29387–29393.
Comment on “Bactericidal effects of natural nanotopography of dragonfly wing on Escherichia coli”.Crossref | GoogleScholarGoogle Scholar |

[10]  Linklater, DP et al. (2017) Influence of nanoscale topology on bactericidal efficiency of black silicon surfaces. Nanotechnology 28, 245301.
Influence of nanoscale topology on bactericidal efficiency of black silicon surfaces.Crossref | GoogleScholarGoogle Scholar |

[11]  Linklater, DP et al. (2022) Nanopillar polymer films as antibacterial packaging materials. ACS Appl Nano Mater 5, 2578–2591.
Nanopillar polymer films as antibacterial packaging materials.Crossref | GoogleScholarGoogle Scholar |

[12]  Wandiyanto, JV et al. (2020) Tunable morphological changes of asymmetric titanium nanosheets with bactericidal properties. J Colloid Interface Sci 560, 572–580.
Tunable morphological changes of asymmetric titanium nanosheets with bactericidal properties.Crossref | GoogleScholarGoogle Scholar |

[13]  Ivanova, EP et al. (2012) Natural bactericidal surfaces: mechanical rupture of Pseudomonas aeruginosa cells by cicada wings. Small 8, 2489–2494.
Natural bactericidal surfaces: mechanical rupture of Pseudomonas aeruginosa cells by cicada wings.Crossref | GoogleScholarGoogle Scholar |

[14]  Linklater, DP et al. (2023) Biomimetic nanopillar silicon surfaces rupture fungal spores. Int J Mol Sci 24, 1298.
Biomimetic nanopillar silicon surfaces rupture fungal spores.Crossref | GoogleScholarGoogle Scholar |

[15]  Ivanova, EP et al. (2021) Antifungal versus antibacterial defence of insect wings. J Colloid Interface Sci 603, 886–897.
Antifungal versus antibacterial defence of insect wings.Crossref | GoogleScholarGoogle Scholar |

[16]  Clainche, TL et al. (2020) Mechano-bactericidal titanium surfaces for bone tissue engineering. ACS Appl Mater Interfaces 12, 48272–48283.
Mechano-bactericidal titanium surfaces for bone tissue engineering.Crossref | GoogleScholarGoogle Scholar |

[17]  Pogodin, S et al. (2013) Biophysical model of bacterial cell interactions with nanopatterned cicada wing surfaces. Biophys J 104, 835–840.
Biophysical model of bacterial cell interactions with nanopatterned cicada wing surfaces.Crossref | GoogleScholarGoogle Scholar |

[18]  Hasan, J et al. (2013) Antibacterial surfaces: the quest for a new generation of biomaterials. Trends Biotechnol 31, 295–304.
Antibacterial surfaces: the quest for a new generation of biomaterials.Crossref | GoogleScholarGoogle Scholar |

[19]  Bhadra, CM et al. (2018) Subtle variations in surface properties of black silicon surfaces influence the degree of bactericidal efficiency. Nanomicro Lett 10, 36.
Subtle variations in surface properties of black silicon surfaces influence the degree of bactericidal efficiency.Crossref | GoogleScholarGoogle Scholar |

[20]  Zhao, S et al. (2022) Programmed death of injured Pseudomonas aeruginosa on mechano-bactericidal surfaces. Nano Lett 22, 1129–1137.
Programmed death of injured Pseudomonas aeruginosa on mechano-bactericidal surfaces.Crossref | GoogleScholarGoogle Scholar |

[21]  Daimon, M et al. (2023) Fluorescence intensity of liposomes and E. coli attached to nanopillar arrays: implications for bacterial death on nanostructures. ACS Appl Nano Mater 6, 1610–1619.
Fluorescence intensity of liposomes and E. coli attached to nanopillar arrays: implications for bacterial death on nanostructures.Crossref | GoogleScholarGoogle Scholar |

[22]  Wenzel, RN (1949) Surface roughness and contact angle. J Phys Colloid Chem 53, 1466–1467.
Surface roughness and contact angle.Crossref | GoogleScholarGoogle Scholar |

[23]  Crawford, RJ et al. (2012) Surface topographical factors influencing bacterial attachment. Adv Colloid Interface Sci 179–182, 142–149.
Surface topographical factors influencing bacterial attachment.Crossref | GoogleScholarGoogle Scholar |

[24]  Michalska, M et al. (2018) Tuning antimicrobial properties of biomimetic nanopatterned surfaces. Nanoscale 10, 6639–6650.
Tuning antimicrobial properties of biomimetic nanopatterned surfaces.Crossref | GoogleScholarGoogle Scholar |

[25]  Ishak, MI et al. (2021) Insights into complex nanopillar–bacteria interactions: roles of nanotopography and bacterial surface proteins. J Colloid Interface Sci 604, 91–103.
Insights into complex nanopillar–bacteria interactions: roles of nanotopography and bacterial surface proteins.Crossref | GoogleScholarGoogle Scholar |

[26]  Wang, M et al. (2015) Influence of surface chemistry on the release of an antibacterial drug from nanostructured porous silicon. Langmuir 31, 6179–6185.
Influence of surface chemistry on the release of an antibacterial drug from nanostructured porous silicon.Crossref | GoogleScholarGoogle Scholar |

[27]  Michalska, M et al. (2021) Antimicrobial properties of nanostructured surfaces – demonstrating the need for a standard testing methodology. Nanoscale 13, 17603–17614.
Antimicrobial properties of nanostructured surfaces – demonstrating the need for a standard testing methodology.Crossref | GoogleScholarGoogle Scholar |

[28]  Valiei, A et al. (2020) Hydrophilic mechano-bactericidal nanopillars require external forces to rapidly kill bacteria. Nano Lett 20, 5720–5727.
Hydrophilic mechano-bactericidal nanopillars require external forces to rapidly kill bacteria.Crossref | GoogleScholarGoogle Scholar |

[29]  Maher, S et al. (2022) Advancing of 3D-printed titanium implants with combined antibacterial protection using ultrasharp nanostructured surface and gallium-releasing agents. ACS Biomater Sci Eng 8, 314–327.
Advancing of 3D-printed titanium implants with combined antibacterial protection using ultrasharp nanostructured surface and gallium-releasing agents.Crossref | GoogleScholarGoogle Scholar |