三维癌症模型中的微环境线索为靶向PDT组合提供信息(会议报告)

S. Nath, Huang‐Chiao Huang, M. Pigula, Christina Conrad, Amjad P. Khan, William Hanna, Sepideh Afsar, W. Franco, G. Scarcelli, U. Demirci, T. Hasan, I. Rizvi
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引用次数: 0

摘要

肿瘤微环境中的一系列细胞、建筑和物理线索影响导致治疗失败的内在和获得性耐药机制。利用光动力疗法(PDT),一种基于光化学的生物物理治疗方式,局部靶向和主要顽固肿瘤群体的策略可能是实现癌症管理持久改善的必要条件,同时最大限度地减少传统药物的毒性。通过合理设计组合捕获这些属性,可以在3D模型中协同减少肿瘤面积,并持久地控制体内肿瘤负荷。机械力(如流体动力剪切应力)对阻力的影响,以及考虑物理应力的3D肿瘤模型和体内模型的开发等领域仍未得到充分研究。为了评估和优化PDT方案,以及基于PDT的组合,旨在克服由于身体压力而对传统疗法的耐药性,需要采取多方面的方法。在这里,水动力应力的影响是评估在卵巢癌背景下的生物工程三维肿瘤模型。将介绍使用受生物学启发的体外模型来指导定制,合理设计基于pdp的联合方案的潜在价值。
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Microenvironmental cues in 3D cancer models to inform targeted PDT combinations (Conference Presentation)
A range of cellular, architectural, and physical cues in the tumor microenvironment influence the intrinsic and acquired resistance mechanisms that lead to treatment failure. Strategies that leverage photodynamic therapy (PDT), a photochemistry-based biophysical treatment modality, to regionally target and prime stubborn tumor populations may be essential to realizing durable improvements in cancer management while minimizing toxicity from traditional agents. Capturing these attributes in rationally-designed combinations has shown promise by synergistically reducing tumor area in 3D models, and durably controlling tumor burden in vivo. Among the areas that remain understudied is the influence of mechanical forces, such as hydrodynamic shear stress, on resistance, and the development of 3D tumor models and in vivo models that account for physical stress. To evaluate and optimize PDT regimens, and PDT-based combinations, designed to overcome resistance to conventional therapies due to physical stress, a multi-faceted approach is needed. Here the impact of hydrodynamic stress is evaluated in bioengineered 3D tumor models in the context of ovarian cancer. The potential value of using biologically inspired in vitro models to guide customized, rationally-designed PDT-based combination regimens will be presented.
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