Non-leaching, Highly Biocompatible Nanocellulose Surfaces That Efficiently Resist Fouling by Bacteria in an Artificial Dermis Model
Тип публикации: Journal Article
Дата публикации: 2020-06-13
SCImago Q1
WOS Q2
БС2
SJR: 0.909
CiteScore: 8
Impact factor: 5.6
ISSN: 25766422
PubMed ID:
35025484
General Chemistry
Biomaterials
Biomedical Engineering
Biochemistry (medical)
Краткое описание
Bacterial biofilm infections incur massive costs on healthcare systems worldwide. Particularly worrisome are the infections associated with pressure ulcers and prosthetic, plastic, and reconstructive surgeries, where staphylococci are the major biofilm-forming pathogens. Non-leaching antimicrobial surfaces offer great promise for the design of bioactive coatings to be used in medical devices. However, the vast majority are cationic, which brings about undesirable toxicity. To circumvent this issue, we have developed antimicrobial nanocellulose films by direct functionalization of the surface with dehydroabietic acid derivatives. Our conceptually unique design generates non-leaching anionic surfaces that reduce the number of viable staphylococci in suspension, including drug-resistant Staphylococcus aureus, by an impressive 4-5 log units, upon contact. Moreover, the films clearly prevent bacterial colonization of the surface in a model mimicking the physiological environment in chronic wounds. Their activity is not hampered by high protein content, and they nurture fibroblast growth at the surface without causing significant hemolysis. In this work, we have generated nanocellulose films with indisputable antimicrobial activity demonstrated using state-of-the-art models that best depict an "in vivo scenario". Our approach is to use fully renewable polymers and find suitable alternatives to silver and cationic antimicrobials.
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Hassan G. et al. Non-leaching, Highly Biocompatible Nanocellulose Surfaces That Efficiently Resist Fouling by Bacteria in an Artificial Dermis Model // ACS Applied Bio Materials. 2020. Vol. 3. No. 7. pp. 4095-4108.
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Hassan G., Forsman N., Wan X., Keurulainen L., M. Bimbo L., Stehl S., Van Charante F., Chrubasik M., Prakash A. S., JOHANSSON L. M., Mullen D. C., Johnston B. F., Zimmermann R., Werner C., Yli-Kauhaluoma J. T., Coenye T., Saris P. E. J., Österberg M., Moreira V. M. Non-leaching, Highly Biocompatible Nanocellulose Surfaces That Efficiently Resist Fouling by Bacteria in an Artificial Dermis Model // ACS Applied Bio Materials. 2020. Vol. 3. No. 7. pp. 4095-4108.
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TY - JOUR
DO - 10.1021/acsabm.0c00203
UR - https://doi.org/10.1021/acsabm.0c00203
TI - Non-leaching, Highly Biocompatible Nanocellulose Surfaces That Efficiently Resist Fouling by Bacteria in an Artificial Dermis Model
T2 - ACS Applied Bio Materials
AU - Hassan, Ghada
AU - Forsman, Nina
AU - Wan, Xing
AU - Keurulainen, Leena
AU - M. Bimbo, Luis
AU - Stehl, Susanne
AU - Van Charante, Frits
AU - Chrubasik, Michael
AU - Prakash, Aruna S
AU - JOHANSSON, LEENA MARIA
AU - Mullen, Declan C
AU - Johnston, Blair F.
AU - Zimmermann, Ralf
AU - Werner, Carsten
AU - Yli-Kauhaluoma, Jari T.
AU - Coenye, Tom
AU - Saris, Per Erik Joakim
AU - Österberg, Monika
AU - Moreira, Vânia M.
PY - 2020
DA - 2020/06/13
PB - American Chemical Society (ACS)
SP - 4095-4108
IS - 7
VL - 3
PMID - 35025484
SN - 2576-6422
ER -
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@article{2020_Hassan,
author = {Ghada Hassan and Nina Forsman and Xing Wan and Leena Keurulainen and Luis M. Bimbo and Susanne Stehl and Frits Van Charante and Michael Chrubasik and Aruna S Prakash and LEENA MARIA JOHANSSON and Declan C Mullen and Blair F. Johnston and Ralf Zimmermann and Carsten Werner and Jari T. Yli-Kauhaluoma and Tom Coenye and Per Erik Joakim Saris and Monika Österberg and Vânia M. Moreira},
title = {Non-leaching, Highly Biocompatible Nanocellulose Surfaces That Efficiently Resist Fouling by Bacteria in an Artificial Dermis Model},
journal = {ACS Applied Bio Materials},
year = {2020},
volume = {3},
publisher = {American Chemical Society (ACS)},
month = {jun},
url = {https://doi.org/10.1021/acsabm.0c00203},
number = {7},
pages = {4095--4108},
doi = {10.1021/acsabm.0c00203}
}
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Hassan, Ghada, et al. “Non-leaching, Highly Biocompatible Nanocellulose Surfaces That Efficiently Resist Fouling by Bacteria in an Artificial Dermis Model.” ACS Applied Bio Materials, vol. 3, no. 7, Jun. 2020, pp. 4095-4108. https://doi.org/10.1021/acsabm.0c00203.
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