3D Bioprinting and Microfluidic-Based Devices for Cancer Detection and Drug Treatment: Focus on Prostate Cancer.

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Jay Sibbits, Lucia Di Pietro, Anna Privitera, Vincenzo Cardaci, Salvatore Maugeri, Massimo Camarda, Giuseppe Caruso
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Abstract

The burden of increasing cancer incidence among the population, and, in particular, of prostate cancer in men living in highly developed countries, brings with it, on one hand, the need for new devices that allow a faster and earlier diagnosis, ideally in a non-invasive way and with low consumption of expensive reagents, and on the other the need for the assessment of new in vitro models that allow a more reliable assessment of cancer features, including its microenvironment and sensibility to different drugs. At the crossroads of these features, microfluidic devices are found. These, taking advantage of the chemical-physical properties of cells and human samples, have demonstrated great sensitivity and sensibility at an on-chip scale. Many fields of biomedical sciences have tried to exploit all their potentialities: from the detection of antigens in the early phases of the disease (when they are very low concentrated, but the treatment is more effective) to isolation and characterization of circulating tumor cells. However, the development of in vitro 3D models to better assess and comprehend the fundamental dynamics of tumor microenvironment and metastasis using 3D bioprinting techniques. The aim of the present review is to describe the potential of these two different cutting-edge technologies for the detection and treatment of prostate cancer, in the perspective of a possible future combination of them that allows scientists to fill the gaps present in the field to improve patient care and treatment.

用于癌症检测和药物治疗的三维生物打印和微流控设备:聚焦前列腺癌。
随着癌症发病率的上升,尤其是生活在高度发达的国家的男性患前列腺癌的人数不断增加,一方面,人们需要新的设备,以便更快、更早地进行诊断(最好是非侵入性诊断),同时减少昂贵试剂的消耗;另一方面,人们需要对新的体外模型进行评估,以便更可靠地评估癌症的特征,包括其微环境和对不同药物的敏感性。在这些特征的交汇点上,出现了微流控设备。这些装置利用细胞和人体样本的化学物理特性,在芯片上表现出极高的灵敏度和敏感性。生物医学的许多领域都试图利用它们的所有潜能:从疾病早期阶段的抗原检测(此时抗原浓度很低,但治疗效果更好)到循环肿瘤细胞的分离和特征描述。然而,利用三维生物打印技术开发体外三维模型,可以更好地评估和理解肿瘤微环境和转移的基本动态。本综述旨在描述这两种不同的前沿技术在前列腺癌检测和治疗方面的潜力,并展望未来它们可能的结合,使科学家们能够填补该领域的空白,改善患者护理和治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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