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Ryu, Ja-Hyoung
Supramolecular Nanomaterials Lab.
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Enzyme-Instructed Intramitochondrial Polymerization for Enhanced Anticancer Treatment without the Development of Drug-Resistance

Author(s)
Kim, SangpilLee, YejiSeu, Min-SeokSim, YoujungRyu, Ja-Hyoung
Issued Date
2024-09
DOI
10.1016/j.jconrel.2024.07.029
URI
https://scholarworks.unist.ac.kr/handle/201301/85471
Citation
JOURNAL OF CONTROLLED RELEASE, v.373, pp.189 - 200
Abstract
Intracellular polymerization in living cells motivated chemists to generate polymeric structures with a multitude of possibilities to interact with biomacromolecules. However, out-of-control of the intracellular chemical reactions would be an obstacle restricting its application, providing the toxicity of non-targeted cells. Here, we reported intracellular thioesterase-mediated polymerization for selectively occurring polymerization using disulfide bonds in cancer cells. The acetylated monomers did not form disulfide bonds even under an oxidative environment, but they could polymerize into the polymeric structure after cleavage of acetyl groups only when encountered activity of thioesterase enzyme. Furthermore, acetylated monomers could be self-assembled with doxorubicin, providing doxorubicin loaded micelles for efficient intracellular delivery of drug and monomers. Since thioesterase enzymes were overexpressed in cancer cells specifically, the micelles were disrupted under activity of the enzyme and the polymerization could occur selectively in the cancer mitochondria. The resulting polymeric structures disrupted the mitochondrial membrane, thus activating the cellular death of cancer cells with high selectivity. This strategy selectively targets diverse cancer cells involving drug-resistant cells over normal cells. Moreover, the mitochondria targeting strategy overcomes the development of drug resistance even with repeated treatment. This approach provides a way for selective intracellular polymerization with desirable anticancer treatment.
Publisher
ELSEVIER
ISSN
0168-3659
Keyword (Author)
Acetyl-CoA thioesteraseMitochondria
Keyword
MITOCHONDRIAL DYSFUNCTIONDNA NANOSTRUCTURES

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