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Hydrogen Sulfide-Induced Activatable Photodynamic Therapy Adjunct to Disruption of Subcellular Glycolysis in Cancer Cells by a Fluorescence-SERS Bimodal Iridium Metal–Organic Hybrid

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dc.contributor.author Shamjith, S
dc.contributor.author Murali, V P
dc.contributor.author Joseph, M M
dc.contributor.author Fathima, T S
dc.contributor.author Chandana, R
dc.contributor.author Jayarajan, R O
dc.contributor.author Maiti, K K
dc.date.accessioned 2025-11-20T08:09:13Z
dc.date.available 2025-11-20T08:09:13Z
dc.date.issued 2024-05-15
dc.identifier.citation ACS Applied Materials & Interfaces; 16(21):27114–27126 en_US
dc.identifier.uri https://pubs.acs.org/doi/10.1021/acsami.4c02761
dc.identifier.uri http://localhost:8080/xmlui/handle/123456789/5086
dc.description.abstract The practical application of photodynamic therapy (PDT) demands targeted and activatable photosensitizers to mitigate off-target phototoxicity common in “always on” photosensitizers during light exposure. Herein, a cyclometalated iridium complex-based activatable photodynamic molecular hybrid, Cy-Ir-7-nitrobenzofurazan (NBD), is demonstrated as a biomedicine for molecular precision. This design integrates a hydrogen sulfide (H2S)-responsive NBD unit with a hydroxy-appended iridium complex, Cy–Ir–OH. In normal physiological conditions, the electron-rich Ir metal center exerts electron transfer to the NBD unit, quenches the excited state dynamics, and establishes a PDT-off state. Upon exposure to H2S, Cy-Ir-NBD activates into the potent photosensitizer Cy–Ir–OH through nucleophilic substitution. This mechanism ensures exceptional specificity, enabling targeted phototherapy in H2S-rich cancer cells. Additionally, we observed that Cy-Ir-NBD-induced H2S depletion disrupts S-sulfhydration of the glyceraldehyde-3-phosphate dehydrogenase enzyme, impairing glycolysis and ATP production in the cellular milieu. This sequential therapeutic process of Cy-Ir-NBD is governed by the positively charged central iridium ion that ensures mitochondria-mediated apoptosis in cancer cells. Dual-modality SERS and fluorescence imaging validate apoptotic events, highlighting Cy-Ir-NBD as an advanced theranostic molecular entity for activatable PDT. Finally, as a proof of concept, clinical assessment is evaluated with the blood samples of breast cancer patients and healthy volunteers, based on their H2S overexpression capability through SERS and fluorescence, revealing Cy-Ir-NBD to be a promising predictor for PDT activation in advanced cancer phototherapy. en_US
dc.language.iso en en_US
dc.publisher American Chemical Society en_US
dc.subject activatable PDT en_US
dc.subject stimuli-responsive activation en_US
dc.subject H2S depletion en_US
dc.subject disrupting glycolysis en_US
dc.subject ATP reduction en_US
dc.subject enhanced apoptosis en_US
dc.subject clinical validation en_US
dc.title Hydrogen Sulfide-Induced Activatable Photodynamic Therapy Adjunct to Disruption of Subcellular Glycolysis in Cancer Cells by a Fluorescence-SERS Bimodal Iridium Metal–Organic Hybrid en_US
dc.type Article en_US


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  • 2024
    Research articles authored by NIIST researchers published in 2024

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