The effect of alginate oligosaccharides on the mechanical properties of Gram-negative biofilms

Влияние альгинатных олигосахаридов на механические свойства грамотрицательных биопленок
David W. Thomas, Chris J. Wright, Saira Khan, E. Onsøyen, Lydia C. Powell, Ahmed Sowedan, Karl Hawkins, Rolf Myrvold, Katja E. Hill
2013-04-01

Acinetobacter baumannii biofilmsOligoGPseudomonas aeruginosa biofilmsYoung's modulusalginate oligosaccharidesatomic force microscopyphase angle (δ)rheometry
The influence of a novel, safe antibiofilm therapy on the mechanical properties of Pseudomonas aeruginosa and Acinetobacter baumannii biofilms in vitro was characterized. A multiscale approach employing atomic force microscopy (AFM) and rheometry was used to quantify the mechanical disruption of the biofilms by a therapeutic polymer based on a low-molecular weight alginate oligosaccharide (OligoG). AFM demonstrated structural alterations in the biofilms exposed to OligoG, with significantly lower Young's moduli than the untreated biofilms, (149 MPa vs 242 MPa; p < 0.05), a decreased resistance to hydrodynamic shear and an increased surface irregularity (Ra) in the untreated controls (35.2 nm ± 7.6 vs 12.1 nm ± 5.4; p < 0.05). Rheology demonstrated that increasing clinically relevant concentrations of OligoG (<10%) were associated with an increasing phase angle (δ) over a wide range of frequencies (0.1-10 Hz). These results highlight the utility of these techniques for the study of three-dimensional biofilms and for quantifying novel disruption therapies in vitro.
1
A low-molecular weight alginate oligosaccharide (OligoG) disrupts Pseudomonas aeruginosa and Acinetobacter baumannii biofilm mechanics in vitro.
2
AFM and rheology provide a useful multiscale methodology to quantify three-dimensional biofilm disruption by therapeutic polymers in vitro.
3
AFM showed OligoG-exposed biofilms had significantly lower Young's modulus than untreated biofilms (149 MPa vs 242 MPa; p < 0.05).
4
OligoG exposure reduced biofilm resistance to hydrodynamic shear compared to untreated controls.
5
Rheometry indicated increasing clinically relevant OligoG concentrations (<10%) increased the phase angle (δ) across 0.1–10 Hz, reflecting altered viscoelastic properties.
6
Untreated controls exhibited greater surface irregularity (Ra 35.2 nm ± 7.6) than OligoG-treated biofilms (Ra 12.1 nm ± 5.4; p < 0.05).

Pseudomonas aeruginosa and Acinetobacter baumannii Gram-negative biofilms treated in vitro with an alginate oligosaccharide therapeutic (OligoG)

Mechanical properties and mechanical disruption of these biofilms (Young's modulus, resistance to hydrodynamic shear, surface roughness Ra, and viscoelastic phase angle δ) as affected by OligoG concentration

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2013-04-01
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David W. Thomas
Chris J. Wright
Saira Khan
E. Onsøyen
Lydia C. Powell
Ahmed Sowedan
Karl Hawkins
Rolf Myrvold
Katja E. Hill
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