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30 - Manipulation of Biofilms

from Part III - Interacting Bacteria and Biofilms

Published online by Cambridge University Press:  12 December 2024

Thomas Andrew Waigh
Affiliation:
University of Manchester
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Summary

Introduces methods to manipulate biofilms including magnetic nanobots.

Type
Chapter
Information
The Physics of Bacteria
From Cells to Biofilms
, pp. 343 - 347
Publisher: Cambridge University Press
Print publication year: 2024

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References

Suggested Reading

Tripathy, A., et al., Natural and bioinspired nanostructural bactericidal surfaces. Advances in Colloid and Interface Science 2017, 248, 85104.CrossRefGoogle ScholarPubMed

References

Ofek, I.; Bayer, E. A.; Abraham, S. N., Bacterial adhesion. In The Prokaryotes, Rosenberg, E., DeLong, E. F., Lory, S., Stackebrandt, E., Thompson, F., Eds., Springer: 2013; pp. 107123.CrossRefGoogle Scholar
Hetrick, E. M.; Schoenfisch, M. H., Reducing implant-related infections: Active release strategies. Chemical Society Reviews 2006, 35 (9), 780789.CrossRefGoogle ScholarPubMed
Pogodin, S.; et al., Biophysical model of bacterial cell interactions with nanopatterned cicada wing surfaces. Biophysical Journal 2013, 104 (4), 835840.CrossRefGoogle ScholarPubMed
Tripathy, A.; Sen, P.; Su, B.; Briscoe, W. H., Natural and bioinspired nanostructured bactericidal surfaces. Advances in Colloid and Interface Science 2017, 248, 85104.CrossRefGoogle ScholarPubMed
Linklater, D. P.; Baulin, V. A.; Juodkazis, S.; Crawford, R. J.; Stoodley, P.; Ivanova, E. P., Mechano-bactericidal actions of nanostructured surfaces. Nature Reviews Microbiology 2021, 19 (1), 822.CrossRefGoogle ScholarPubMed
Yang, K. H.; Lim, H. S.; Kwon, S. J., Effective bio-slime coating technique for concrete surfaces under sulfate attach. Material 2020, 13 (7), 1512.CrossRefGoogle Scholar
Sharma, S.; Lavender, S.; Woo, J.; Guo, L. H.; Shi, W. Y.; Kilpatrick-Liverman, L.; Gimzewski, J. K., Nanoscale characterization of effect of L-arginine on S. mutans biofilm adhesion by atomic force microscopy. Microbiology-SGM 2014, 160 (7), 14661473.CrossRefGoogle Scholar
Sharon, N., Carbohydrates as future anti-adhesion drugs for infectious diseases. Biochimica et Biophysica Acta 2006, 1760 (4), 527537.CrossRefGoogle ScholarPubMed
Rupel, K.; et al., Blue laser light inhibits biofilm formation in vitro and in vivo by inducing oxidative stress. npj Biofilms and Microbiomes 2019, 5 (1), 29.CrossRefGoogle ScholarPubMed
Blee, J. A.; Roberts, I. S.; Waigh, T. A., Membrane potentials, oxidative stress and the dispersal response of bacterial biofilms to 405 nm light. Physical Biology 2020, 17 (3), 036001.CrossRefGoogle ScholarPubMed
Zharov, V. P.; Mercer, K. E.; Galitovskaya, E. N.; Smeltzer, M. S., Photothermal nanotherapeutics and nanodiagnostics for selective killing of bacteria targeted with gold nanoparticles. Biophysical Journal 2006, 90 (2), 619627.CrossRefGoogle ScholarPubMed
Hwang, G.; et al., Catalytic antimicrobial robots for biofilm eradication. Science Robotics 2019, 4 (29), eaaw2388.CrossRefGoogle ScholarPubMed
Li, J.; Nickel, R.; Wu, J.; Lin, F.; Lierop, J. V.; Liu, S., A new tool to attack biofilms: Driving magnetic iron-oxide nanoparticles to disrupt the matrix. Nanoscale 2019, 11 (14), 69056915.CrossRefGoogle ScholarPubMed
Gu, H.; Lee, S. W.; Carnicelli, J.; Zhang, T.; Ren, D., Magnetically driven active topography for long-term biofilm control. Nature Communications 2020, 11 (1), 2211.CrossRefGoogle ScholarPubMed
Murata, H.; Koepsel, R. R.; Matyjaszewski, K.; Russell, A. J., Permanent, non-leaching antibacterial surfaces-2: How high density cationic surfaces kill bacterial cells. Biomaterials 2007, 28 (32), 48704879.CrossRefGoogle Scholar
Banerjee, I.; Pangule, R. C.; Kane, R. S., Antifouling coatings: Recent developments in the design of surfaces that prevent fouling by proteins, bacteria, and marine organisms. Advanced Materials 2011, 23 (6), 690718.CrossRefGoogle ScholarPubMed
Balagadde, F. K.; You, L.; Hansen, C. L.; Arnold, F. H.; Quake, S. R., Long-term monitoring of bacteria undergoing programmed population control in a microchemostat. Science 2005, 309 (5731), 137140.CrossRefGoogle Scholar

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