Encapsulation of a Cyclometalated Iridium(III) Photosensitizer into Nanosized Micelles for Oncosis-Inducing Photodynamic Therapy
Инкапсуляция циклометаллированного фотосенсибилизатора на основе иридия(III) в наноразмерные мицеллы для фотодинамической терапии, индуцирующей онкоз
2026-02-04
SCID: 54.1/vrmggjwu
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NADH oxidationPluronic F-127 nanosized micellescyclometalated iridium(III) photosensitizeroncosis-inducing photodynamic therapysinglet oxygen generation
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Abstract (AI)
The reliance of many anticancer agents on apoptosis often limits their therapeutic efficacy and contributes to the development of drug resistance. To overcome these challenges, alternative mechanisms of cell death such as oncosis have garnered increasing attention. However, few metal complexes capable of inducing oncosis have been reported to date. In this study, we describe the polymeric encapsulation of a cyclometalated iridium(III) complex within Pluronic F-127 to form nanosized micelles for oncosis-inducing photodynamic therapy. Upon light activation, these nanoparticles exhibited photocatalytic production of singlet oxygen and oxidation of NADH. The nanoparticles demonstrated potent therapeutic effects in cancer cells and tumor spheroids at low nanomolar concentrations under irradiation. Mechanistic investigations revealed that the therapeutic action was mediated by reactive oxygen species (ROS)-induced disruption of the cell membrane, mitochondrial dysfunction, ATP depletion, and morphological changes characteristic of oncotic cell death.
Key Findings
1
A cyclometalated iridium(III) complex was encapsulated in Pluronic F-127 to form nanosized micelles for photodynamic therapy.
2
Mechanism of action involves ROS-induced cell membrane disruption, mitochondrial dysfunction, ATP depletion, and morphological changes consistent with oncosis.
3
The nanoparticles showed potent therapeutic effects in cancer cells and tumor spheroids at low nanomolar concentrations under irradiation.
4
This work demonstrates a metal-complex-based approach that induces oncosis rather than apoptosis, offering a potential strategy to overcome apoptosis-associated drug resistance.
5
Upon light activation, the nanoparticles photocatalytically produced singlet oxygen and oxidized NADH.
Research Object
Nanosized Pluronic F-127 micelles encapsulating a cyclometalated iridium(III) photosensitizer
Research Subject
Photodynamic oncosis-inducing therapeutic efficacy and mechanisms including singlet-oxygen production, NADH oxidation, ROS-mediated membrane disruption, mitochondrial dysfunction, ATP depletion, and oncotic morphology under light activation
Publication Details
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2026-02-04
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