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Design Rules for Cancer Nanomedicines

机译:癌症纳米胺的设计规则

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The use of nanotechnology has offered new hope for cancer detection, prevention and treatment. Nanoparticle formulations are advantageous over conventional chemotherapy because they can incorporate multiple diagnostic and therapeutic agents and are associated with significantly less adverse effects due to selective accumulation to tumor tissue. Despite their great promise, however, only a few nanoparticle formulations have been approved for clinical use in oncology. The failure of nano-scale drugs to enhance cancer therapy is in large part due to inefficient delivery. Indeed, physiological barriers posed by the tumor micro-environment inhibit homogeneous distribution of drugs to the interstitial space of tumors and compromise the efficacy of the treatment. To overcome this outstanding problem, a better understanding of how the physical properties (i.e., size, and surface charge) of nanoparticles affect their transport in tumors is required. Here we use a mathematical model to provide basic design guidelines for the optimal delivery of nanoparticle formulations.
机译:纳米技术的使用为癌症检测,预防和治疗提供了新的希望。纳米颗粒制剂超过常规化疗有利的,因为它们可以结合多种诊断和治疗剂,并与由于选择性积累到肿瘤组织显著更少副作用有关。然而,尽管他们有很大的希望,但只有少数纳米粒子配方被批准用于肿瘤学中的临床用途。由于效率低下,纳米级药物增强癌症治疗的失败是大部分。实际上,肿瘤微环境构成的生理障碍抑制药物的均匀分布到肿瘤的间质空间并损害治疗的疗效。为了克服这种突出的问题,需要更好地理解纳米颗粒的物理性质(即尺寸和表面电荷)如何影响其在肿瘤中的运输。在这里,我们使用数学模型来提供基本的设计指南,以获得纳米粒子制剂的最佳输送。

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