肿瘤芯片:用于肿瘤微环境研究的三维模型。

IF 5.7 3区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Elisa Cauli, Michela Anna Polidoro, Simona Marzorati, Claudio Bernardi, Marco Rasponi, Ana Lleo
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引用次数: 1

摘要

由于缺乏能够忠实地再现体内癌症生理的模型,抗癌治疗策略的批准仍然缓慢。一方面,传统的体外模型无法再现人体各部分的器官和组织结构、流体流动和机械刺激特征。另一方面,体内动物模型无法再现典型的人类肿瘤微环境,而这对于研究癌症的行为和进展至关重要。本研究综述了肿瘤芯片作为一种最有前途的工具来模拟和研究肿瘤微环境和转移。我们还描述了如何开发和实施芯片上的癌症设备来研究最常见的原发性癌症及其转移部位。然后讨论了这项技术的利弊,强调了未来的挑战,以缩小临床前和临床研究之间的差距,并加速批准新的人类抗癌疗法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cancer-on-chip: a 3D model for the study of the tumor microenvironment.

Cancer-on-chip: a 3D model for the study of the tumor microenvironment.

Cancer-on-chip: a 3D model for the study of the tumor microenvironment.

Cancer-on-chip: a 3D model for the study of the tumor microenvironment.

The approval of anticancer therapeutic strategies is still slowed down by the lack of models able to faithfully reproduce in vivo cancer physiology. On one hand, the conventional in vitro models fail to recapitulate the organ and tissue structures, the fluid flows, and the mechanical stimuli characterizing the human body compartments. On the other hand, in vivo animal models cannot reproduce the typical human tumor microenvironment, essential to study cancer behavior and progression. This study reviews the cancer-on-chips as one of the most promising tools to model and investigate the tumor microenvironment and metastasis. We also described how cancer-on-chip devices have been developed and implemented to study the most common primary cancers and their metastatic sites. Pros and cons of this technology are then discussed highlighting the future challenges to close the gap between the pre-clinical and clinical studies and accelerate the approval of new anticancer therapies in humans.

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来源期刊
Journal of Biological Engineering
Journal of Biological Engineering BIOCHEMICAL RESEARCH METHODS-BIOTECHNOLOGY & APPLIED MICROBIOLOGY
CiteScore
7.10
自引率
1.80%
发文量
32
审稿时长
17 weeks
期刊介绍: Biological engineering is an emerging discipline that encompasses engineering theory and practice connected to and derived from the science of biology, just as mechanical engineering and electrical engineering are rooted in physics and chemical engineering in chemistry. Topical areas include, but are not limited to: Synthetic biology and cellular design Biomolecular, cellular and tissue engineering Bioproduction and metabolic engineering Biosensors Ecological and environmental engineering Biological engineering education and the biodesign process As the official journal of the Institute of Biological Engineering, Journal of Biological Engineering provides a home for the continuum from biological information science, molecules and cells, product formation, wastes and remediation, and educational advances in curriculum content and pedagogy at the undergraduate and graduate-levels. Manuscripts should explore commonalities with other fields of application by providing some discussion of the broader context of the work and how it connects to other areas within the field.
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