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  5. Ratiometric Imaging of the in Situ pH Distribution of Biofilms by Use of Fluorescent Mesoporous Silica Nanosensors
 
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Ratiometric Imaging of the in Situ pH Distribution of Biofilms by Use of Fluorescent Mesoporous Silica Nanosensors

Author(s)
Fulaz, Stephanie  
Hiebner, Dishon W.  
Barros, Caio H. N.  
Devlin, Henry  
Vitale, Stefania  
Quinn, Laura  
Casey, Eoin  
Uri
http://hdl.handle.net/10197/28307
Date Issued
2019-08-16
Date Available
2025-06-17T13:06:02Z
Abstract
Biofilms are communities of microorganisms enclosed in a self-generated matrix of extracellular polymeric substances. While biofilm recalcitrance and persistence are caused by several factors, a reduction in antimicrobial susceptibility has been closely associated with the generation of pH gradients within the biofilm structure. Cells embedded within the biofilm create a localized acidic microenvironment, which is unaffected by the external pH. Therefore, pH monitoring is a promising approach for understanding the complexities of a three-dimensional heterogeneous biofilm. A fluorescent pH nanosensor was designed through the synthesis of mesoporous silica nanoparticles (47 ± 5 nm diameter) conjugated to a pH-sensitive dye (fluorescein) and a pH-insensitive dye (rhodamine B) as an internal standard (dye-MSNs). The fluorescence intensity of fluorescein (IF) reduced significantly as the pH was decreased from 8.5 to 3.5. In contrast, the fluorescence intensity of rhodamine B (IR) remained constant at any pH. The ratio of IF/IR produced a sigmoidal curve with respect to the pH, in a working pH range between 4.5 and 7.5. Dye-MSNs enabled the measurement of pH gradients within Pseudomonas fluorescens WCS 365 biofilm microcolonies. The biofilms showed spatially distinct low-pH regions that were enclosed into large clusters corresponding to high-cell-density areas. Also present were small low-pH areas that spread indistinctly throughout the microcolony caused by the mass transfer effect. The lowest detected pH within the inner core of the microcolonies was 5.1, gradually increasing to a neutral pH toward the exterior of the microcolonies. The dye-MSNs were able to fully penetrate the biofilm matrix and allowed a quantitative ratiometric analysis of pH gradients and distribution throughout the biofilm, which was independent of the nanoparticle concentration.
Sponsorship
Science Foundation Ireland
Type of Material
Journal Article
Publisher
American Chemical Society
Journal
ACS Applied Materials and Interfaces
Volume
11
Issue
36
Start Page
32679
End Page
32688
Copyright (Published Version)
2019 American Chemical Society
Subjects

pH sensor

Mesoporous silica nan...

Ratiometric imaging

Bacterial biofilm

Pseudomonas fluoresce...

DOI
10.1021/acsami.9b09978
Language
English
Status of Item
Peer reviewed
ISSN
1944-8244
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by-nc-nd/3.0/ie/
File(s)
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Manuscript_pH Probes.pdf

Size

1.49 MB

Format

Adobe PDF

Checksum (MD5)

b84f349608a176e490a9d00e80b3ec01

Owning collection
Chemical and Bioprocess Engineering Research Collection
Mapped collections
UCD Biofilm Engineering Lab Research Collection

Item descriptive metadata is released under a CC-0 (public domain) license: https://creativecommons.org/public-domain/cc0/.
All other content is subject to copyright.

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