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Killing Hypoxic Cell Populations in a 3D Tumor Model with EtNBS-PDT

机译:使用EtNBS-PDT在3D肿瘤模型中杀死低氧细胞群体

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摘要

An outstanding problem in cancer therapy is the battle against treatment-resistant disease. This is especially true for ovarian cancer, where the majority of patients eventually succumb to treatment-resistant metastatic carcinomatosis. Limited perfusion and diffusion, acidosis, and hypoxia play major roles in the development of resistance to the majority of front-line therapeutic regimens. To overcome these limitations and eliminate otherwise spared cancer cells, we utilized the cationic photosensitizer EtNBS to treat hypoxic regions deep inside in vitro 3D models of metastatic ovarian cancer. Unlike standard regimens that fail to penetrate beyond ∼150 µm, EtNBS was found to not only penetrate throughout the entirety of large (>200 µm) avascular nodules, but also concentrate into the nodules' acidic and hypoxic cores. Photodynamic therapy with EtNBS was observed to be highly effective against these hypoxic regions even at low therapeutic doses, and was capable of destroying both normoxic and hypoxic regions at higher treatment levels. Imaging studies utilizing multiphoton and confocal microscopies, as well as time-lapse optical coherence tomography (TL-OCT), revealed an inside-out pattern of cell death, with apoptosis being the primary mechanism of cell killing. Critically, EtNBS-based photodynamic therapy was found to be effective against the model tumor nodules even under severe hypoxia. The inherent ability of EtNBS photodynamic therapy to impart cytotoxicity across a wide range of tumoral oxygenation levels indicates its potential to eliminate treatment-resistant cell populations.
机译:癌症治疗中的一个突出问题是与抗药性疾病的斗争。这对于卵巢癌尤其如此,在卵巢癌中,大多数患者最终都屈服于对治疗有抵抗力的转移性癌变。有限的灌注和扩散,酸中毒和缺氧在对大多数一线治疗方案产生耐药性中起主要作用。为了克服这些局限性并消除多余的癌细胞,我们利用阳离子光敏剂EtNBS来治疗转移性卵巢癌的体外3D模型内部深处的缺氧区域。与无法穿透约150 µm的标准方案不同,发现EtNBS不仅可以穿透整个大型(> 200 µm)无血管结节,而且可以集中到结节的酸性和低氧核心。观察到用EtNBS进行光动力疗法即使在低治疗剂量下也能有效对抗这些缺氧区域,并且能够在较高的治疗水平下破坏常氧和缺氧区域。利用多光子和共聚焦显微镜检查以及时移光学相干断层扫描(TL-OCT)进行的影像学研究揭示了一种由内而外的细胞死亡模式,凋亡是细胞杀死的主要机制。至关重要的是,发现基于EtNBS的光动力疗法即使在严重缺氧的情况下也能有效对抗模型肿瘤结节。 EtNBS光动力疗法在广泛的肿瘤氧合水平上赋予细胞毒性的固有能力表明,它具有消除对治疗有抵抗力的细胞群的潜力。

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