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Quail Chorioallantoic Membrane - A Tool for Photodynamic Diagnosis and Therapy
Published on: April 28, 2022
Targeting endometrial cancer stem cells through aldehyde dehydrogenase-mediated photodynamic therapy based on
Beatriz Serambeque1, Bruna Costa2, Soraia Ferreira3
1Univ Coimbra, Coimbra Institute for Clinical and Biomedical Research (iCBR) Area of Environment, Genetics and Oncobiology (CIMAGO), Institute of Biophysics, Faculty of Medicine, Azinhaga de Santa Comba, Coimbra, 3000-548, Portugal; Univ Coimbra, Center for Innovative Biomedicine and Biotechnology (CIBB), Azinhaga de Santa Comba, Coimbra, 3000-548, Portugal.
Abstract:
This study presents the development of an aldehyde dehydrogenase (ALDH)-mediated photodynamic therapy (PDT) approach targeting endometrial cancer stem cells (CSC). Novel 4,5,6,7-tetrahydropyrazolo[1,5-a]pyridine-fused chlorins (APX) were synthesised incorporating aldehyde groups, which are enzymatically oxidised by endogenous ALDH, highly expressed in CSC-enriched populations, into carboxylic acids, thereby enhancing intracellular retention and improving PDT efficacy. APX molecules were characterised and evaluated in vitro using endometrial cancer cells and CSC-enriched populations, and in vivo using a xenograft model. Assessments included reactive oxygen species (ROS) generation, cell viability, photoactivation-induced cell death, cell cycle progression, and ALDH expression in endometrial cancer cells. In CSC, the interaction between APX and endogenous ALDH, APX subcellular localisation, and CSC-associated marker expression were evaluated post-treatment. APX3 exhibited high absorbance potential at 652 nm, a moderate fluorescence quantum yield of 0.21, and promising photodynamic activity in endometrial cancer cells. Our findings showed that APX3 produced a robust photodynamic effect, inducing cell death via both necrosis and apoptosis, primarily through Type 1 photodynamic reactions mediated by superoxide anion production, whilst also affecting ALDH expression. In vivo, APX3-PDT effectively suppressed tumour growth, increasing caspase-3 expression and decreasing ALDH1 levels, demonstrating its therapeutic potential. In endometrial CSC, endogenous ALDH interacted with APX in vitro, converting aldehyde moieties into carboxylic acids. APX accumulated preferentially in ALDH-enriched zones of endometrial CSC, decreasing their viability and inducing cell death through necrosis. These findings underscore the potential of targeted PDT using APX ring-fused chlorins as an effective strategy for selectively eliminating ALDH+ endometrial CSC.
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