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Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization

[Image: see text] The intrinsic challenge of large molecules to cross the cell membrane and reach intracellular targets is a major obstacle for the development of new medicines. We report how rotation along a single C–C bond, between atropisomers of a drug in clinical trials, improves cell uptake an...

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Autores principales: Donohoe, Claire, Schaberle, Fábio A., Rodrigues, Fábio M. S., Gonçalves, Nuno P. F., Kingsbury, Christopher J., Pereira, Mariette M., Senge, Mathias O., Gomes-da-Silva, Lígia C., Arnaut, Luis G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9446767/
https://www.ncbi.nlm.nih.gov/pubmed/35960892
http://dx.doi.org/10.1021/jacs.2c05844
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author Donohoe, Claire
Schaberle, Fábio A.
Rodrigues, Fábio M. S.
Gonçalves, Nuno P. F.
Kingsbury, Christopher J.
Pereira, Mariette M.
Senge, Mathias O.
Gomes-da-Silva, Lígia C.
Arnaut, Luis G.
author_facet Donohoe, Claire
Schaberle, Fábio A.
Rodrigues, Fábio M. S.
Gonçalves, Nuno P. F.
Kingsbury, Christopher J.
Pereira, Mariette M.
Senge, Mathias O.
Gomes-da-Silva, Lígia C.
Arnaut, Luis G.
author_sort Donohoe, Claire
collection PubMed
description [Image: see text] The intrinsic challenge of large molecules to cross the cell membrane and reach intracellular targets is a major obstacle for the development of new medicines. We report how rotation along a single C–C bond, between atropisomers of a drug in clinical trials, improves cell uptake and therapeutic efficacy. The atropisomers of redaporfin (a fluorinated sulfonamide bacteriochlorin photosensitizer of 1135 Da) are separable and display orders of magnitude differences in photodynamic efficacy that are directly related to their differential cellular uptake. We show that redaporfin atropisomer uptake is passive and only marginally affected by ATP depletion, plasma proteins, or formulation in micelles. The α(4) atropisomer, where meso-phenyl sulfonamide substituents are on the same side of the tetrapyrrole macrocycle, exhibits the highest cellular uptake and phototoxicity. This is the most amphipathic atropisomer with a conformation that optimizes hydrogen bonding (H-bonding) with polar head groups of membrane phospholipids. Consequently, α(4) binds to the phospholipids on the surface of the membrane, flips into the membrane to adopt the orientation of a surfactant, and eventually diffuses to the interior of the cell (bind-flip mechanism). We observed increased α(4) internalization by cells of the tumor microenvironment in vivo and correlated this to the response of photodynamic therapy when tumor illumination was performed 24 h after α(4) administration. These results show that properly orientated aryl sulfonamide groups can be incorporated into drug design as efficient cell-penetrating motifs in vivo and reveal the unexpected biological consequences of atropisomerism.
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spelling pubmed-94467672022-09-07 Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization Donohoe, Claire Schaberle, Fábio A. Rodrigues, Fábio M. S. Gonçalves, Nuno P. F. Kingsbury, Christopher J. Pereira, Mariette M. Senge, Mathias O. Gomes-da-Silva, Lígia C. Arnaut, Luis G. J Am Chem Soc [Image: see text] The intrinsic challenge of large molecules to cross the cell membrane and reach intracellular targets is a major obstacle for the development of new medicines. We report how rotation along a single C–C bond, between atropisomers of a drug in clinical trials, improves cell uptake and therapeutic efficacy. The atropisomers of redaporfin (a fluorinated sulfonamide bacteriochlorin photosensitizer of 1135 Da) are separable and display orders of magnitude differences in photodynamic efficacy that are directly related to their differential cellular uptake. We show that redaporfin atropisomer uptake is passive and only marginally affected by ATP depletion, plasma proteins, or formulation in micelles. The α(4) atropisomer, where meso-phenyl sulfonamide substituents are on the same side of the tetrapyrrole macrocycle, exhibits the highest cellular uptake and phototoxicity. This is the most amphipathic atropisomer with a conformation that optimizes hydrogen bonding (H-bonding) with polar head groups of membrane phospholipids. Consequently, α(4) binds to the phospholipids on the surface of the membrane, flips into the membrane to adopt the orientation of a surfactant, and eventually diffuses to the interior of the cell (bind-flip mechanism). We observed increased α(4) internalization by cells of the tumor microenvironment in vivo and correlated this to the response of photodynamic therapy when tumor illumination was performed 24 h after α(4) administration. These results show that properly orientated aryl sulfonamide groups can be incorporated into drug design as efficient cell-penetrating motifs in vivo and reveal the unexpected biological consequences of atropisomerism. American Chemical Society 2022-08-12 2022-08-24 /pmc/articles/PMC9446767/ /pubmed/35960892 http://dx.doi.org/10.1021/jacs.2c05844 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Donohoe, Claire
Schaberle, Fábio A.
Rodrigues, Fábio M. S.
Gonçalves, Nuno P. F.
Kingsbury, Christopher J.
Pereira, Mariette M.
Senge, Mathias O.
Gomes-da-Silva, Lígia C.
Arnaut, Luis G.
Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization
title Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization
title_full Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization
title_fullStr Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization
title_full_unstemmed Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization
title_short Unraveling the Pivotal Role of Atropisomerism for Cellular Internalization
title_sort unraveling the pivotal role of atropisomerism for cellular internalization
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9446767/
https://www.ncbi.nlm.nih.gov/pubmed/35960892
http://dx.doi.org/10.1021/jacs.2c05844
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