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The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro

Porphyrinoid-based photodynamic inactivation (PDI) provides a promising approach to treating multidrug-resistant infections. However, available agents for PDI still have optimization potential with regard to effectiveness, toxicology, chemical stability, and solubility. The currently available photo...

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Autores principales: Schulz, Sebastian, Ziganshyna, Svitlana, Lippmann, Norman, Glass, Sarah, Eulenburg, Volker, Habermann, Natalia, Schwarz, Ulrich T., Voigt, Alexander, Heilmann, Claudia, Rüffer, Tobias, Werdehausen, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9143678/
https://www.ncbi.nlm.nih.gov/pubmed/35630304
http://dx.doi.org/10.3390/microorganisms10050858
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author Schulz, Sebastian
Ziganshyna, Svitlana
Lippmann, Norman
Glass, Sarah
Eulenburg, Volker
Habermann, Natalia
Schwarz, Ulrich T.
Voigt, Alexander
Heilmann, Claudia
Rüffer, Tobias
Werdehausen, Robert
author_facet Schulz, Sebastian
Ziganshyna, Svitlana
Lippmann, Norman
Glass, Sarah
Eulenburg, Volker
Habermann, Natalia
Schwarz, Ulrich T.
Voigt, Alexander
Heilmann, Claudia
Rüffer, Tobias
Werdehausen, Robert
author_sort Schulz, Sebastian
collection PubMed
description Porphyrinoid-based photodynamic inactivation (PDI) provides a promising approach to treating multidrug-resistant infections. However, available agents for PDI still have optimization potential with regard to effectiveness, toxicology, chemical stability, and solubility. The currently available photosensitizer TMPyP is provided with a para substitution pattern (para-TMPyP) of the pyridinium groups and has been demonstrated to be effective for PDI of multidrug-resistant bacteria. To further improve its properties, we synthetized a structural variant of TMPyP with an isomeric substitution pattern in a meta configuration (meta-TMPyP), confirmed the correct structure by crystallographic analysis and performed a characterization with NMR-, UV/Vis-, and IR spectroscopy, photostability, and singlet oxygen generation assay. Meta-TMPyP had a hypochromic shift in absorbance (4 nm) with a 55% higher extinction coefficient and slightly improved photostability (+6.9%) compared to para-TMPyP. Despite these superior molecular properties, singlet oxygen generation was increased by only 5.4%. In contrast, PDI, based on meta-TMPyP, reduced the density of extended spectrum β-lactamase-producing and fluoroquinolone-resistant Escherichia coli by several orders of magnitude, whereby a sterilizing effect was observed after 48 min of illumination, while para-TMPyP was less effective (p < 0.01). These findings demonstrate that structural modification with meta substitution increases antibacterial properties of TMPyP in PDI.
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spelling pubmed-91436782022-05-29 The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro Schulz, Sebastian Ziganshyna, Svitlana Lippmann, Norman Glass, Sarah Eulenburg, Volker Habermann, Natalia Schwarz, Ulrich T. Voigt, Alexander Heilmann, Claudia Rüffer, Tobias Werdehausen, Robert Microorganisms Article Porphyrinoid-based photodynamic inactivation (PDI) provides a promising approach to treating multidrug-resistant infections. However, available agents for PDI still have optimization potential with regard to effectiveness, toxicology, chemical stability, and solubility. The currently available photosensitizer TMPyP is provided with a para substitution pattern (para-TMPyP) of the pyridinium groups and has been demonstrated to be effective for PDI of multidrug-resistant bacteria. To further improve its properties, we synthetized a structural variant of TMPyP with an isomeric substitution pattern in a meta configuration (meta-TMPyP), confirmed the correct structure by crystallographic analysis and performed a characterization with NMR-, UV/Vis-, and IR spectroscopy, photostability, and singlet oxygen generation assay. Meta-TMPyP had a hypochromic shift in absorbance (4 nm) with a 55% higher extinction coefficient and slightly improved photostability (+6.9%) compared to para-TMPyP. Despite these superior molecular properties, singlet oxygen generation was increased by only 5.4%. In contrast, PDI, based on meta-TMPyP, reduced the density of extended spectrum β-lactamase-producing and fluoroquinolone-resistant Escherichia coli by several orders of magnitude, whereby a sterilizing effect was observed after 48 min of illumination, while para-TMPyP was less effective (p < 0.01). These findings demonstrate that structural modification with meta substitution increases antibacterial properties of TMPyP in PDI. MDPI 2022-04-21 /pmc/articles/PMC9143678/ /pubmed/35630304 http://dx.doi.org/10.3390/microorganisms10050858 Text en © 2022 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
Schulz, Sebastian
Ziganshyna, Svitlana
Lippmann, Norman
Glass, Sarah
Eulenburg, Volker
Habermann, Natalia
Schwarz, Ulrich T.
Voigt, Alexander
Heilmann, Claudia
Rüffer, Tobias
Werdehausen, Robert
The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro
title The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro
title_full The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro
title_fullStr The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro
title_full_unstemmed The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro
title_short The Meta-Substituted Isomer of TMPyP Enables More Effective Photodynamic Bacterial Inactivation than Para-TMPyP In Vitro
title_sort meta-substituted isomer of tmpyp enables more effective photodynamic bacterial inactivation than para-tmpyp in vitro
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9143678/
https://www.ncbi.nlm.nih.gov/pubmed/35630304
http://dx.doi.org/10.3390/microorganisms10050858
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