Issue 34, 2024

More is different: progressive β-thiolation induced-porphyrin aggregation switches singlet oxygen photosensitization

Abstract

Incorporating sulfur atoms into photosensitizers (PSs) has been well-established to populate triplet states and increase singlet oxygen (1O2) production when exposed to light. In this work, we found that progressive thiolation of porphyrin β-periphery does promote intersystem crossing (ISC) between triplets and singlets, as seen in the excited state dynamics in dichloromethane or PS nanoparticles in water. However, in the latter case, more sulfur substitution deactivates 1O2 photosensitization, in contrast to the expected trend observed in dichloromethane. This observation was further supported by photocytotoxicity studies, where 1O2 photosensitization was switched off in living cells and multicellular spheroids despite being switched on in in vivo mice models. To understand the inconsistency, we performed molecular dynamics simulation and time-dependent density functional theory calculations to investigate possible aggregation and related excited states. We found that the extent of thiolation could regulate molecular packing inside nanoparticles, which gradually lowers the energy levels of triplet states even lower than that of 1O2 and, in turn, alters their energy dissipation pathways. Therefore, this study provides new insights into the design of metal-free PSs and sheds light on the excited state dynamics in aqueous media beyond the molecular level.

Graphical abstract: More is different: progressive β-thiolation induced-porphyrin aggregation switches singlet oxygen photosensitization

Supplementary files

Article information

Article type
Edge Article
Submitted
03 Jun 2024
Accepted
30 Jul 2024
First published
31 Jul 2024
This article is Open Access

All publication charges for this article have been paid for by the Royal Society of Chemistry
Creative Commons BY-NC license

Chem. Sci., 2024,15, 13841-13852

More is different: progressive β-thiolation induced-porphyrin aggregation switches singlet oxygen photosensitization

M. Zhu, H. Zhang, Y. Yao, M. Wen, G. Ran, Y. Yu, R. Zhang, X. Liang, J. Zhang, W. Zhang and J. Zhang, Chem. Sci., 2024, 15, 13841 DOI: 10.1039/D4SC03642E

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