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A Thermally Stable SO2-Releasing Mechanophore: Facile Activation, Single-Event Spectroscopy, and Molecular Dynamic Simulations.

Publication ,  Journal Article
Sun, Y; Neary, WJ; Huang, X; Kouznetsova, TB; Ouchi, T; Kevlishvili, I; Wang, K; Chen, Y; Kulik, HJ; Craig, SL; Moore, JS
Published in: Journal of the American Chemical Society
April 2024

Polymers that release small molecules in response to mechanical force are promising candidates as next-generation on-demand delivery systems. Despite advancements in the development of mechanophores for releasing diverse payloads through careful molecular design, the availability of scaffolds capable of discharging biomedically significant cargos in substantial quantities remains scarce. In this report, we detail a nonscissile mechanophore built from an 8-thiabicyclo[3.2.1]octane 8,8-dioxide (TBO) motif that releases one equivalent of sulfur dioxide (SO2) from each repeat unit. The TBO mechanophore exhibits high thermal stability but is activated mechanochemically using solution ultrasonication in either organic solvent or aqueous media with up to 63% efficiency, equating to 206 molecules of SO2 released per 143.3 kDa chain. We quantified the mechanochemical reactivity of TBO by single-molecule force spectroscopy and resolved its single-event activation. The force-coupled rate constant for TBO opening reaches ∼9.0 s-1 at ∼1520 pN, and each reaction of a single TBO domain releases a stored length of ∼0.68 nm. We investigated the mechanism of TBO activation using ab initio steered molecular dynamic simulations and rationalized the observed stereoselectivity. These comprehensive studies of the TBO mechanophore provide a mechanically coupled mechanism of multi-SO2 release from one polymer chain, facilitating the translation of polymer mechanochemistry to potential biomedical applications.

Duke Scholars

Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

April 2024

Volume

146

Issue

15

Start / End Page

10943 / 10952

Related Subject Headings

  • General Chemistry
  • 40 Engineering
  • 34 Chemical sciences
  • 03 Chemical Sciences
 

Citation

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Sun, Y., Neary, W. J., Huang, X., Kouznetsova, T. B., Ouchi, T., Kevlishvili, I., … Moore, J. S. (2024). A Thermally Stable SO2-Releasing Mechanophore: Facile Activation, Single-Event Spectroscopy, and Molecular Dynamic Simulations. Journal of the American Chemical Society, 146(15), 10943–10952. https://doi.org/10.1021/jacs.4c02139
Sun, Yunyan, William J. Neary, Xiao Huang, Tatiana B. Kouznetsova, Tetsu Ouchi, Ilia Kevlishvili, Kecheng Wang, et al. “A Thermally Stable SO2-Releasing Mechanophore: Facile Activation, Single-Event Spectroscopy, and Molecular Dynamic Simulations.Journal of the American Chemical Society 146, no. 15 (April 2024): 10943–52. https://doi.org/10.1021/jacs.4c02139.
Sun Y, Neary WJ, Huang X, Kouznetsova TB, Ouchi T, Kevlishvili I, et al. A Thermally Stable SO2-Releasing Mechanophore: Facile Activation, Single-Event Spectroscopy, and Molecular Dynamic Simulations. Journal of the American Chemical Society. 2024 Apr;146(15):10943–52.
Sun, Yunyan, et al. “A Thermally Stable SO2-Releasing Mechanophore: Facile Activation, Single-Event Spectroscopy, and Molecular Dynamic Simulations.Journal of the American Chemical Society, vol. 146, no. 15, Apr. 2024, pp. 10943–52. Epmc, doi:10.1021/jacs.4c02139.
Sun Y, Neary WJ, Huang X, Kouznetsova TB, Ouchi T, Kevlishvili I, Wang K, Chen Y, Kulik HJ, Craig SL, Moore JS. A Thermally Stable SO2-Releasing Mechanophore: Facile Activation, Single-Event Spectroscopy, and Molecular Dynamic Simulations. Journal of the American Chemical Society. 2024 Apr;146(15):10943–10952.
Journal cover image

Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

April 2024

Volume

146

Issue

15

Start / End Page

10943 / 10952

Related Subject Headings

  • General Chemistry
  • 40 Engineering
  • 34 Chemical sciences
  • 03 Chemical Sciences