Tamayo-Angorrilla Marta, López de Andrés Julia, Jiménez Gema, Marchal Juan Antonio
Biopathology and Regenerative Medicine Institute (IBIMER), Centre for Biomedical Research (CIBM), University of Granada, Granada, Spain.
Biopathology and Regenerative Medicine Institute (IBIMER), Centre for Biomedical Research (CIBM), University of Granada, Granada, Spain; Instituto de Investigación Biosanitaria, ibs.GRANADA, University Hospitals of Granada- University of Granada, Granada, Spain; Excellence Research Unit "Modeling Nature" (MNat), University of Granada, Spain.
Transl Res. 2022 Sep;247:117-136. doi: 10.1016/j.trsl.2021.11.008. Epub 2021 Nov 27.
A deeper knowledge of the functional versatility and dynamic nature of the ECM has improved the understanding of cancer biology. Translational Significance: This work provides an in-depth view of the importance of the ECM to develop more mimetic breast cancer models, which aim to recreate the components and architecture of tumor microenvironment. Special focus is placed on decellularized matrices derived from tissue and cell culture, both in procurement and applications, as they have achieved great success in cancer research and pharmaceutical sector. The extracellular matrix (ECM) is increasingly recognized as a master regulator of cell behavior and response to breast cancer (BC) treatment. During BC progression, the mammary gland ECM is remodeled and altered in the composition and organization. Accumulated evidence suggests that changes in the composition and mechanics of ECM, orchestrated by tumor-stromal interactions along with ECM remodeling enzymes, are actively involved in BC progression and metastasis. Understanding how specific ECM components modulate the tumorigenic process has led to an increased interest in the development of biomaterial-based biomimetic ECM models to recapitulate key tumor characteristics. The decellularized ECMs (dECMs) have emerged as a promising in vitro 3D tumor model, whose recent advances in the processing and application could become the biomaterial by excellence for BC research and the pharmaceutical industry. This review offers a detailed view of the contribution of ECM in BC progression, and highlights the application of dECM-based biomaterials as promising personalized tumor models that more accurately mimic the tumorigenic mechanisms of BC and the response to treatment. This will allow the design of targeted therapeutic approaches adapted to the specific characteristics of each tumor that will have a great impact on the precision medicine applied to BC patients.
对细胞外基质(ECM)功能多样性和动态性质的更深入了解,增进了人们对癌症生物学的认识。转化意义:这项工作深入探讨了ECM在开发更具模拟性的乳腺癌模型中的重要性,这些模型旨在重现肿瘤微环境的组成和结构。特别关注从组织和细胞培养中获得的脱细胞基质,包括其获取和应用,因为它们在癌症研究和制药领域已取得了巨大成功。细胞外基质(ECM)越来越被认为是细胞行为和乳腺癌(BC)治疗反应的主要调节因子。在BC进展过程中,乳腺ECM在组成和组织上会发生重塑和改变。越来越多的证据表明,由肿瘤-基质相互作用以及ECM重塑酶精心编排的ECM组成和力学变化,积极参与了BC的进展和转移。了解特定的ECM成分如何调节肿瘤发生过程,引发了人们对开发基于生物材料的仿生ECM模型以概括关键肿瘤特征的兴趣日益浓厚。脱细胞ECM(dECM)已成为一种有前景的体外3D肿瘤模型,其在加工和应用方面取得的最新进展可能成为BC研究和制药行业的卓越生物材料。本综述详细阐述了ECM在BC进展中的作用,并强调了基于dECM的生物材料作为有前景的个性化肿瘤模型的应用,这些模型能更准确地模拟BC的肿瘤发生机制和对治疗的反应。这将有助于设计适应每个肿瘤特定特征的靶向治疗方法,这将对应用于BC患者的精准医学产生重大影响。