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用于研究癌症中 YAP/TAZ 的工程化生物材料和模型系统。

Engineered Biomaterials and Model Systems to Study YAP/TAZ in Cancer.

机构信息

Department of Biomedical Engineering, Duke University, Durham, North Carolina 27705, United States.

出版信息

ACS Biomater Sci Eng. 2024 Sep 9;10(9):5550-5561. doi: 10.1021/acsbiomaterials.4c01170. Epub 2024 Aug 27.

Abstract

The transcriptional coactivators yes-associated protein (YAP) and transcriptional coactivator with PDZ-binding motif (TAZ) are master regulators involved in a multitude of cancer types and a wide range of tumorigenic events, including cancer stem cell renewal, invasion, metastasis, tumor precursor emergence, and drug resistance. YAP/TAZ are known to be regulated by several external cues and stimuli, such as extracellular matrix stiffness, cell spreading, cell geometry, and shear stress. Therefore, there is a need in the field of cancer research to develop and design relevant models that can accurately reflect the complex biochemical and biophysical cues of the tumor microenvironment central to the YAP/TAZ signaling nexus. While much progress has been made, this remains a major roadblock to advancing research in this field. In this review, we highlight the current engineered biomaterials and model systems that can be used to advance our understanding of how YAP/TAZ shapes several aspects of cancer. We begin by discussing current 2D and 3D hydrogel systems that model the YAP/TAZ response to ECM stiffness. We then examine the current trends in organoid culture systems and the use of microfluidics to model the effects of cellular density and shear stress on YAP/TAZ. Finally, we analyze the ongoing pitfalls of the present models used and important future directions in engineering systems that will advance our current knowledge of YAP/TAZ in cancer.

摘要

转录共激活因子 yes 相关蛋白 (YAP) 和含 PDZ 结合基序的转录共激活因子 (TAZ) 是参与多种癌症类型和广泛肿瘤发生事件的主要调节因子,包括癌症干细胞更新、侵袭、转移、肿瘤前体出现和耐药性。众所周知,YAP/TAZ 受多种外部线索和刺激的调节,如细胞外基质硬度、细胞铺展、细胞几何形状和切应力。因此,癌症研究领域需要开发和设计相关的模型,以准确反映肿瘤微环境中与 YAP/TAZ 信号枢纽相关的复杂生化和生物物理线索。尽管已经取得了很大进展,但这仍然是推进该领域研究的主要障碍。在这篇综述中,我们强调了当前可用于推进我们对 YAP/TAZ 如何塑造癌症几个方面的理解的工程生物材料和模型系统。我们首先讨论了当前模拟 ECM 硬度对 YAP/TAZ 响应的 2D 和 3D 水凝胶系统。然后,我们研究了类器官培养系统的当前趋势以及使用微流控技术来模拟细胞密度和切应力对 YAP/TAZ 的影响。最后,我们分析了当前模型使用的潜在问题,并分析了在工程系统中推进我们当前对癌症中 YAP/TAZ 认识的重要未来方向。

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