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Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates

Osteomyelitis is a limb- and life-threatening orthopedic infection predominantly caused by Staphylococcus aureus biofilms. Bone infections are extremely challenging to treat clinically. Therefore, we have been designing, synthesizing, and testing novel antibiotic conjugates to target bone infections...

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Autores principales: Sedghizadeh, Parish P., Cherian, Philip, Roshandel, Sahar, Tjokro, Natalia, Chen, Casey, Junka, Adam F., Hu, Eric, Neighbors, Jeffrey, Pawlak, Jacek, Russell, R. Graham G., McKenna, Charles E., Ebetino, Frank H., Sun, Shuting, Sodagar, Esmat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9915994/
https://www.ncbi.nlm.nih.gov/pubmed/36768310
http://dx.doi.org/10.3390/ijms24031985
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author Sedghizadeh, Parish P.
Cherian, Philip
Roshandel, Sahar
Tjokro, Natalia
Chen, Casey
Junka, Adam F.
Hu, Eric
Neighbors, Jeffrey
Pawlak, Jacek
Russell, R. Graham G.
McKenna, Charles E.
Ebetino, Frank H.
Sun, Shuting
Sodagar, Esmat
author_facet Sedghizadeh, Parish P.
Cherian, Philip
Roshandel, Sahar
Tjokro, Natalia
Chen, Casey
Junka, Adam F.
Hu, Eric
Neighbors, Jeffrey
Pawlak, Jacek
Russell, R. Graham G.
McKenna, Charles E.
Ebetino, Frank H.
Sun, Shuting
Sodagar, Esmat
author_sort Sedghizadeh, Parish P.
collection PubMed
description Osteomyelitis is a limb- and life-threatening orthopedic infection predominantly caused by Staphylococcus aureus biofilms. Bone infections are extremely challenging to treat clinically. Therefore, we have been designing, synthesizing, and testing novel antibiotic conjugates to target bone infections. This class of conjugates comprises bone-binding bisphosphonates as biochemical vectors for the delivery of antibiotic agents to bone minerals (hydroxyapatite). In the present study, we utilized a real-time impedance-based assay to study the growth of Staphylococcus aureus biofilms over time and to test the antimicrobial efficacy of our novel conjugates on the inhibition of biofilm growth in the presence and absence of hydroxyapatite. We tested early and newer generation quinolone antibiotics (ciprofloxacin, moxifloxacin, sitafloxacin, and nemonoxacin) and several bisphosphonate-conjugated versions of these antibiotics (bisphosphonate-carbamate-sitafloxacin (BCS), bisphosphonate-carbamate-nemonoxacin (BCN), etidronate-carbamate-ciprofloxacin (ECC), and etidronate-carbamate-moxifloxacin (ECX)) and found that they were able to inhibit Staphylococcus aureus biofilms in a dose-dependent manner. Among the conjugates, the greatest antimicrobial efficacy was observed for BCN with an MIC of 1.48 µg/mL. The conjugates demonstrated varying antimicrobial activity depending on the specific antibiotic used for conjugation, the type of bisphosphonate moiety, the chemical conjugation scheme, and the presence or absence of hydroxyapatite. The conjugates designed and tested in this study retained the bone-binding properties of the parent bisphosphonate moiety as confirmed using high-performance liquid chromatography. They also retained the antimicrobial activity of the parent antibiotic in the presence or absence of hydroxyapatite, albeit at lower levels due to the nature of their chemical modification. These findings will aid in the optimization and testing of this novel class of drugs for future applications to pharmacotherapy in osteomyelitis.
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spelling pubmed-99159942023-02-11 Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates Sedghizadeh, Parish P. Cherian, Philip Roshandel, Sahar Tjokro, Natalia Chen, Casey Junka, Adam F. Hu, Eric Neighbors, Jeffrey Pawlak, Jacek Russell, R. Graham G. McKenna, Charles E. Ebetino, Frank H. Sun, Shuting Sodagar, Esmat Int J Mol Sci Article Osteomyelitis is a limb- and life-threatening orthopedic infection predominantly caused by Staphylococcus aureus biofilms. Bone infections are extremely challenging to treat clinically. Therefore, we have been designing, synthesizing, and testing novel antibiotic conjugates to target bone infections. This class of conjugates comprises bone-binding bisphosphonates as biochemical vectors for the delivery of antibiotic agents to bone minerals (hydroxyapatite). In the present study, we utilized a real-time impedance-based assay to study the growth of Staphylococcus aureus biofilms over time and to test the antimicrobial efficacy of our novel conjugates on the inhibition of biofilm growth in the presence and absence of hydroxyapatite. We tested early and newer generation quinolone antibiotics (ciprofloxacin, moxifloxacin, sitafloxacin, and nemonoxacin) and several bisphosphonate-conjugated versions of these antibiotics (bisphosphonate-carbamate-sitafloxacin (BCS), bisphosphonate-carbamate-nemonoxacin (BCN), etidronate-carbamate-ciprofloxacin (ECC), and etidronate-carbamate-moxifloxacin (ECX)) and found that they were able to inhibit Staphylococcus aureus biofilms in a dose-dependent manner. Among the conjugates, the greatest antimicrobial efficacy was observed for BCN with an MIC of 1.48 µg/mL. The conjugates demonstrated varying antimicrobial activity depending on the specific antibiotic used for conjugation, the type of bisphosphonate moiety, the chemical conjugation scheme, and the presence or absence of hydroxyapatite. The conjugates designed and tested in this study retained the bone-binding properties of the parent bisphosphonate moiety as confirmed using high-performance liquid chromatography. They also retained the antimicrobial activity of the parent antibiotic in the presence or absence of hydroxyapatite, albeit at lower levels due to the nature of their chemical modification. These findings will aid in the optimization and testing of this novel class of drugs for future applications to pharmacotherapy in osteomyelitis. MDPI 2023-01-19 /pmc/articles/PMC9915994/ /pubmed/36768310 http://dx.doi.org/10.3390/ijms24031985 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sedghizadeh, Parish P.
Cherian, Philip
Roshandel, Sahar
Tjokro, Natalia
Chen, Casey
Junka, Adam F.
Hu, Eric
Neighbors, Jeffrey
Pawlak, Jacek
Russell, R. Graham G.
McKenna, Charles E.
Ebetino, Frank H.
Sun, Shuting
Sodagar, Esmat
Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates
title Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates
title_full Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates
title_fullStr Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates
title_full_unstemmed Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates
title_short Real-Time Impedance-Based Monitoring of the Growth and Inhibition of Osteomyelitis Biofilm Pathogen Staphylococcus aureus Treated with Novel Bisphosphonate-Fluoroquinolone Antimicrobial Conjugates
title_sort real-time impedance-based monitoring of the growth and inhibition of osteomyelitis biofilm pathogen staphylococcus aureus treated with novel bisphosphonate-fluoroquinolone antimicrobial conjugates
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9915994/
https://www.ncbi.nlm.nih.gov/pubmed/36768310
http://dx.doi.org/10.3390/ijms24031985
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