Publication:
Rational control of combined photothermal and photodynamic therapy for effective eradication of biofilms

Thumbnail Image

School / College / Institute

Organizational Unit
Organizational Unit
SCHOOL OF MEDICINE
Upper Org Unit
Organizational Unit

Program

KU Authors

Co-Authors

Koc, Irem
Onbasli, Kubra
Kurt, Cem
Atac, Nazli
Cooper, Francis K.
Cam, Kubra
Cakir, Ece
Yagan, Rawana
Can, Fusun
Sennaroglu, Alphan

Publication Date

Language

Embargo Status

No

Journal Title

Journal ISSN

Volume Title

Alternative Title

Abstract

New therapies are essential for eliminating antibiotic-resistant bacteria and their biofilms, which are a major global health threat, causing millions of deaths annually. Here, we demonstrate a combination of photodynamic therapy (PDT) and photothermal therapy (PTT) for the inhibition of biofilms of Pseudomonas aeruginosa and Staphylococcus epidermidis using aminolevulinic acid (ALA)-loaded polyacrylic acid-coated superparamagnetic iron oxide nanoparticles (PAA-SPIONs) at 200, 600 and 1000 mu g mL-1 Fe concentrations under 640 nm (0.75 W cm-2), 808 nm (2.6 W cm-2) and 640 + 808 nm (0.75 + 2.6 W cm-2, 20 min) irradiation. PTT experiments indicate ALA/PAA-SPION concentration-dependent heating up to 10.2 degrees C for PAA-SPIONs and 9.3 degrees C for ALA/PAA-SPIONs under combined 640 + 808 nm laser excitation. Bacterial growth inhibition by ALA/PAA-SPIONs was investigated with and without laser irradiation for 10 min using 150 and 600 mu g Fe per mL or 0.5 mM and 2 mM ALA on both bacterial types. These experiments indicate a 3 to 6-log reduction in P. aeruginosa compared to control samples (without nanoparticles or a laser) with increasing Fe and ALA concentrations. Growth was completely inhibited by ALA/PAA-SPIONs under 640 + 808 nm irradiation. ALA/PAA-SPIONs caused growth inhibition of S. epidermidis between 2-log and 4-log with increasing wavelengths, Fe and ALA doses. PAA-SPIONs and a laser together inhibited the biofilms of P. aeruginosa with 3 to 11-log reductions with increasing laser wavelengths. The reduction of the biofilm with ALA/PAA-SPIONs and a laser reaches 8-log for 640 nm and 13-log for 808 nm excitation. We accurately model the wavelength, time, and nanoparticle concentration dependence of PTT for the first time. These results pave the way for effective PDT/PTT elimination of biofilms of P. aeruginosa and S. epidermidis.

Source

Publisher

Royal Soc Chemistry

Subject

Chemistry, Multidisciplinary, Nanoscience & Nanotechnology, Materials Science, Multidisciplinary, Physics, Applied

Citation

Has Part

Source

Nanoscale

Book Series Title

Edition

DOI

10.1039/d4nr03798g

item.page.datauri

Link

Rights

CC BY-NC (Attribution-NonCommercial)

Copyrights Note

Creative Commons license

Except where otherwised noted, this item's license is described as CC BY-NC (Attribution-NonCommercial)

Endorsement

Review

Supplemented By

Referenced By

0

Views

1

Downloads

View PlumX Details