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October 16, 2025Biomimetics4 citationsOpen Access

Scaffolds Mimicking the Tumor Microenvironment for In Vitro Malignancy Models

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ERElisabetta RoselliniMCMaria Grazia Cascone

Key Points

  • Biomimetic scaffolds improve model accuracy by mimicking the tumor microenvironment, revolutionizing cancer research.
  • These 3D in vitro models enhance drug testing predictability, addressing limitations of traditional 2D systems in cancer studies.
  • Recent advancements in fabrication, including 3D bioprinting, are critical in creating physiologically relevant tumor models.
  • The integration of vascular components helps recapitulate the complex interactions within the tumor microenvironment, enhancing model relevance.

Abstract

The tumor microenvironment (TME) plays a crucial role in regulating cancer cell proliferation, invasion, and drug resistance. Traditional two-dimensional (2D) in vitro models and animal models often fail to replicate the biochemical and biophysical complexity of human tumors, leading to low predictive power in preclinical drug screening. In recent years, scaffold-based three-dimensional (3D) in vitro models have emerged as promising alternatives, offering a more physiologically relevant context for studying tumor behavior. Among these, biomimetic scaffolds capable of replicating the composition, stiffness, porosity, and signaling features of the tumor extracellular matrix (ECM) are of particular interest. This review provides a comprehensive overview of scaffold-based approaches for mimicking the TME in vitro. After outlining the key characteristics of the tumor ECM, we discuss various scaffold typologies, including those based on natural, synthetic, and hybrid biomaterials, as well as decellularized ECM. Recent advancements in fabrication technologies, such as electrospinning and 3D bioprinting, are also highlighted for their role in replicating the geometric and mechanical features of tumor tissues. Special attention is given to the integration of vascular components and stromal cells to recapitulate the complexity of the TME. Finally, we explore current limitations and future directions, emphasizing the need for standardized and reproducible models, particularly in the context of personalized cancer therapy.

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Cite This Study

Rosellini et al. (2025) studied this question.

synapsesocial.com/papers/68f17f111f11f0e857c5361ahttps://doi.org/10.3390/biomimetics10100695
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